- Published on
Orthopaedic Surgery - Turf Toe
Basics
Turf toe is a:
Hyperextension sprain of the first metatarsophalangeal joint.
It involves injury to the:
Plantar capsuloligamentous complex
of the great toe MTP joint.
Historical Background
The term:
Turf toe
was introduced in 1976 after the injury was recognized frequently in collegiate football players competing on:
Artificial turf
while wearing relatively:
Flexible footwear.
Anatomy
The first MTP joint is stabilized by several plantar structures, including the:
Plantar plate
Joint capsule
Sesamoid complex
Flexor hallucis brevis
and surrounding:
Collateral ligaments.
Functional Importance
The first MTP joint is essential for:
Push-off
during walking, running, jumping, and:
Cutting maneuvers.
Injury can therefore significantly impair:
Athletic performance.
Classification
Turf toe is commonly divided into:
Grade I
Grade II
and
Grade III injuries
according to the severity of capsuloligamentous disruption and clinical instability.
Grade I
Grade I represents a:
Mild sprain or stretching injury
of the plantar capsuloligamentous complex.
Typical findings include:
Localized plantar or medial tenderness
Minimal swelling
and
No significant ecchymosis.
Joint stability is generally:
Preserved.
Grade II
Grade II represents a:
Partial tear
of the plantar capsuloligamentous complex.
Typical findings include:
More diffuse tenderness
Mild to moderate swelling
and
Mild to moderate ecchymosis.
There is usually greater pain with:
Great-toe motion
and temporary loss of:
Athletic participation.
Grade III
Grade III represents a:
Complete or severe capsuloligamentous disruption.
Typical findings include:
Severe diffuse tenderness
Marked swelling
Moderate to severe ecchymosis
and
Painful or restricted motion.
There may be:
Gross MTP instability
and significant loss of:
Push-off strength.
Epidemiology
Turf toe is particularly associated with:
Football
and other sports requiring repeated:
Acceleration
Cutting
and
Forefoot loading.
Incidence
Historical studies have reported a high prevalence among:
Professional football players.
One older series reported that approximately:
45% of professional football players
had experienced turf toe at some point.
Playing Surface
Historical series have reported that a large proportion of cases occurred on:
Artificial turf.
One report found approximately:
83%
of cases associated with synthetic playing surfaces.
Collegiate Football
An incidence of approximately:
0.062 injuries per 1,000 athlete exposures
has been reported in NCAA football players in one study.
Rates vary according to:
Sport
Surface
Position
and
Study methodology.
Risk Factors
Important risk factors include:
Artificial turf
Flexible footwear
Repeated cutting maneuvers
Previous turf toe injury
and high-intensity:
Game participation.
Competition Versus Practice
The injury is more commonly reported during:
Live competition
than during:
Practice
or preseason and postseason activities.
Athlete Characteristics
Risk may increase with:
Older age
and
More years of participation in the sport.
Football Positions
In football, positions requiring frequent acceleration and cutting may be particularly affected, including:
Running backs
Quarterbacks
and
Receivers.
Pathophysiology
The classic mechanism is forced:
Hyperextension of the first MTP joint.
Plantar Injury
As the great toe is forcibly dorsiflexed, the:
Plantar capsule
and
Plantar plate
are placed under excessive tension.
Tear Pattern
MRI studies commonly demonstrate tearing of the plantar structures:
Distal to the sesamoids.
Severity
The injury may range from:
Microscopic stretching
to
Partial tearing
or
Complete disruption.
Etiology
Turf toe was historically uncommon before widespread use of:
Artificial playing surfaces
and very:
Flexible athletic shoes.
Mechanism in Sports
A common mechanism occurs when an athlete’s:
Forefoot is fixed against the playing surface
while the heel is forced upward, producing:
Excessive dorsiflexion of the great toe.
Associated Conditions
Turf toe may occur with:
Sesamoid fracture
Diastasis of a bipartite sesamoid
Articular injury of the metatarsal head
or
Acute traumatic hallux valgus.
Sesamoid Injury
Because the sesamoids are incorporated into the plantar complex, severe hyperextension may produce:
Fracture
or
Separation of a bipartite sesamoid.
Chondral Injury
The metatarsal head may sustain:
Articular cartilage injury
or
Impaction damage.
Diagnosis
Diagnosis is based on:
Mechanism
Physical examination
and
Imaging.
Signs and Symptoms
Patients typically report:
Pain beneath the first MTP joint
after a hyperextension injury.
Swelling
There may be:
Localized or diffuse swelling
around the:
First MTP joint.
Ecchymosis
Bruising on the plantar or medial side of the joint suggests a more significant:
Capsuloligamentous injury.
Push-Off Weakness
Patients may complain of difficulty with:
Push-off
during:
Walking
Running
or
Jumping.
Physical Examination
Inspect the first MTP joint for:
Swelling
Ecchymosis
Deformity
and evidence of:
Instability.
Range of Motion
Assess:
Dorsiflexion
and
Plantarflexion
of the first MTP joint.
Compare the injured side with the:
Contralateral foot.
Hyperextension Pain
Pain with passive:
MTP dorsiflexion
is a common finding.
Plantar Tenderness
Palpate the:
Plantar plate
Sesamoids
and surrounding:
Capsule.
Great-Toe Lachman Test
A:
Great-toe Lachman test
or sagittal-plane drawer test can assess:
MTP instability.
Technique
The proximal phalanx is translated relative to the:
First metatarsal head.
Increased translation or loss of a firm endpoint suggests:
Plantar plate insufficiency.
Imaging
Weight-Bearing Radiographs
Initial imaging should include:
Weight-bearing foot radiographs
when tolerated.
Radiographic Findings
Radiographs may demonstrate:
Capsular avulsion fracture
Sesamoid fracture
Metatarsal head impaction
Proximal sesamoid migration
or
Diastasis of a bipartite sesamoid.
Sesamoid Position
Proximal migration of the sesamoid complex may indicate substantial disruption of the:
Plantar plate.
Dorsiflexion Stress View
A:
Dorsiflexion lateral stress radiograph
may help evaluate plantar complex integrity.
Sesamoid-to-Phalanx Relationship
The distance between the:
Distal sesamoid
and
Base of the proximal phalanx
should remain relatively constant as the MTP joint moves from:
Plantarflexion to dorsiflexion.
Abnormal change may suggest:
Plantar plate disruption.
MRI
MRI is particularly useful in:
Grade II
and
Grade III injuries
or when plain radiographs show:
Abnormal findings.
MRI Assessment
MRI can evaluate:
Plantar plate injury
Capsular disruption
Sesamoid injury
and
Chondral damage.
Differential Diagnosis
Important alternatives include:
Sesamoiditis
Bipartite sesamoid diastasis
Sesamoid fracture
Sesamoid stress fracture
Sesamoid osteonecrosis
Traumatic hallux valgus
First MTP osteochondral injury
Hallux fracture
and
MTP dislocation.
Treatment
Treatment depends on:
Injury grade
Instability
Associated injuries
and the patient’s:
Athletic demands.
Initial Measures
Acute treatment includes:
Rest
Ice
Compression
and
Elevation.
Grade I Treatment
Grade I injuries can usually be managed with:
Symptomatic treatment
and protection against:
Excessive dorsiflexion.
Footwear
A:
Stiff-soled shoe
or
Rigid insert
can reduce painful first-MTP motion.
Taping
The hallux may be taped to limit:
Hyperdorsiflexion.
Athletic Participation
Some athletes with mild Grade I injuries may continue participation as symptoms permit with:
Protective taping and stiff footwear.
Grade II Treatment
Grade II injuries usually require a period of:
Reduced activity
and often:
Walking-boot immobilization.
Crutches
Crutches may be used when:
Weight bearing is painful.
Immobilization
A:
Walking boot
helps protect the plantar complex while reducing stress across the:
First MTP joint.
Return to Play
Historical return-to-play estimates for Grade II injury are approximately:
3–14 days
although more significant injuries may require:
Longer recovery.
Grade III Treatment
Grade III injuries generally require more prolonged:
Immobilization
and careful evaluation for:
Surgical indications.
Nonoperative Grade III Treatment
Selected stable injuries may be treated with:
Boot or cast immobilization
followed by carefully controlled:
Range of motion.
Surgical Grade III Injury
Surgery may be considered when there is:
Gross instability
Complete plantar plate disruption
Persistent pain
or marked loss of:
Push-off strength.
Early Motion
Once the injury is sufficiently stable, gentle motion is encouraged to reduce the risk of:
MTP stiffness.
Physical Therapy
Therapy may include:
Active range of motion
Passive range of motion
Strengthening
and gradual:
Gait retraining.
Return to Sport
Return should be based on resolution of:
Pain
Swelling
Instability
and restoration of:
Push-off strength.
Surgery
Operative treatment is uncommon but appropriate for selected:
Severe injuries.
Indications
Potential indications include:
Grade III injury with gross instability
Persistent pain after appropriate conservative treatment
Persistent loss of push-off strength
and significant associated:
Sesamoid or chondral injury.
Plantar Plate Repair
Complete disruption of the plantar structures may be treated with:
Direct plantar plate repair.
Sesamoid Fracture
A displaced or symptomatic sesamoid fracture may require:
Internal fixation
or selected:
Sesamoidectomy.
Sesamoid Preservation
When possible, preservation of the sesamoid is desirable because the sesamoid complex contributes to:
Flexor hallucis brevis function
and
Great-toe biomechanics.
Abductor Hallucis Transfer
Selected severe medial plantar complex injuries may require:
Abductor hallucis transfer
as part of reconstruction.
Postoperative Care
Postoperative rehabilitation is:
Gradual
because excessive early dorsiflexion may stress the:
Repair.
Non-Weight-Bearing
After major repair, patients may remain:
Non-weight-bearing
in a boot for approximately:
4 weeks.
Early Motion
Gentle passive range of motion may begin at approximately:
1 week
depending on the:
Repair.
Protective Footwear
A:
Stiff-soled shoe
may be introduced around:
6–8 weeks
when healing is satisfactory.
Return to Sport
Protected return to sport with limitation of excessive MTP dorsiflexion may begin around:
4 months
in selected patients.
Full Recovery
Complete recovery after severe operative injuries may require approximately:
6–12 months.
Follow-Up
Follow-up should monitor:
Pain
MTP motion
Joint stability
Sesamoid position
and
Push-off strength.
Prognosis
Most Grade I and Grade II injuries have a:
Good prognosis
with nonoperative treatment.
Historical Athletic Outcomes
In one historical series of 19 collegiate and professional athletes, 9 required surgery and:
7 returned to full athletic activity.
Nonoperative Series
Another historical series of 56 collegiate athletes, mostly football players on synthetic turf, found that:
53 returned to sport within approximately 3 weeks
after treatment with:
Stiff footwear
Orthotics
and
Taping.
Only one patient required:
Surgery.
Larger Collegiate Series
A study of 147 turf toe injuries in collegiate football players reported an average loss of approximately:
10 days of athletic participation.
Fewer than:
2%
required surgery.
These figures reflect specific athletic populations and should not be assumed for every:
Patient.
Complications
Complications may be:
Early
or
Delayed.
Medial Plantar Nerve Injury
An uncommon short-term complication is injury to the:
Medial plantar nerve.
Persistent Pain
Long-term symptoms may include:
Persistent pain during athletic activity.
Reduced Athletic Performance
Some athletes are unable to return fully to their previous level of:
Performance.
Restricted Motion
Chronic injury may result in:
Reduced first-MTP motion.
Hallux Valgus
Instability of the medial or plantar structures may contribute to:
Hallux valgus deformity.
Hallux Rigidus
Articular injury and chronic degeneration may eventually lead to:
Hallux rigidus.
Cock-Up Deformity
Severe plantar plate insufficiency may permit excessive:
MTP dorsiflexion
and contribute to a:
Cock-up deformity of the hallux.
Patient Monitoring
Management depends on:
Injury grade
and clinical response.
Grade I Monitoring
Grade I injuries are treated symptomatically with:
Taping
Stiff-soled footwear
or a:
Rigid insert.
Grade II Monitoring
Grade II injuries may require:
Walking-boot protection
RICE
and progressive:
Range-of-motion exercises.
Return to play may occur in approximately:
3–14 days
for uncomplicated injuries.
Grade III Monitoring
Grade III injuries generally require:
Walking-boot or cast immobilization
with carefully controlled:
MTP motion.
Dorsiflexion exercises may begin after approximately:
2–3 weeks
when appropriate, while avoiding:
Hyperdorsiflexion.
Grade III Return to Sport
Historical return-to-play estimates are approximately:
2–6 weeks
for selected nonoperative Grade III injuries, although complete severe tears often require considerably:
Longer rehabilitation.
Clinical Summary
Typical mechanism: Forced hyperextension of the first MTP joint, often when the forefoot is fixed and the heel rises.
Key pathology: Injury to the plantar plate and plantar capsuloligamentous complex, sometimes with sesamoid or chondral injury.
Key examination: Plantar tenderness, pain with MTP dorsiflexion, assessment of push-off strength, and the great-toe Lachman test for instability.
Imaging: Obtain weight-bearing radiographs; MRI is particularly useful for Grade II–III injuries or suspected plantar plate disruption.
Grade I: Mild sprain; treat with taping, stiff-soled footwear, and symptomatic care.
Grade II: Partial tear; commonly requires a walking boot, temporary activity restriction, and gradual rehabilitation.
Grade III: Complete or severe tear with instability; prolonged immobilization or surgical repair may be required.
Surgical indications: Gross instability, complete plantar plate disruption, persistent pain, loss of push-off strength, or significant associated sesamoid injury.
Major long-term concerns: Persistent pain, reduced athletic performance, stiffness, hallux valgus, hallux rigidus, and cock-up deformity.
Key Principle
Turf toe is a hyperextension injury of the first MTP joint that damages the plantar capsuloligamentous complex.
The severity ranges from a mild:
Grade I sprain
to a complete:
Grade III plantar plate disruption with instability.
Diagnosis depends on:
Mechanism, examination of MTP stability, weight-bearing radiographs, and MRI when indicated.
Most mild and moderate injuries respond to:
Protection from excessive dorsiflexion, stiff-soled footwear, taping, immobilization, and rehabilitation.
Severe unstable injuries may require:
Plantar plate repair or treatment of associated sesamoid injury.
Successful recovery depends on restoring:
Joint stability, motion, and effective great-toe push-off.
- Published on
Orthopaedic Surgery - Tumors
⸻
Basics
A neoplasm is an abnormal proliferation of cells characterized by:
Unregulated growth.
Neoplasms are broadly classified as:
Benign
or
Malignant.
⸻
Benign Neoplasms
A benign neoplasm generally demonstrates:
Localized growth
without the ability to:
Metastasize to distant organs.
Although benign tumors do not metastasize, some may still become locally aggressive and can:
Compress
Replace
or
Damage adjacent tissues.
⸻
Malignant Neoplasms
Malignant tumors have the capacity for:
Local invasion
and
Metastatic spread.
Tumor cells may enter:
Blood vessels
or
Lymphatic channels
and disseminate to distant:
Organs and tissues.
⸻
Important Pathologic Distinction
The distinction between benign and malignant neoplasms is based on features such as:
Local invasiveness
Cellular atypia
Growth behavior
and
Metastatic potential.
The concept of crossing a basement membrane is particularly relevant to:
Epithelial malignancies
but is not a universal defining feature of all musculoskeletal tumors.
⸻
Epidemiology
Both benign and malignant neoplasms arise through accumulation of:
Genetic and epigenetic abnormalities.
Tumor development usually requires multiple alterations affecting cellular:
Growth
Survival
and
Genome regulation.
⸻
Genetic Instability
Neoplastic cells frequently demonstrate increasing:
Genetic instability
as the tumor evolves.
Historically, approximately:
4–6 important genetic alterations
have been described as sufficient to contribute to malignant transformation in some tumor models.
⸻
Hallmarks of Malignancy
Classic biologic characteristics of cancer include:
Sustained proliferative signaling
Resistance to growth-suppressive signals
Avoidance of programmed cell death
Replicative immortality
Angiogenesis
and
Tissue invasion with metastatic potential.
⸻
Incidence
Primary malignant tumors of bone are:
Rare.
Historical estimates in the United States have been approximately:
3,000 new malignant primary bone tumors per year.
⸻
Soft-Tissue Sarcoma
Primary malignant soft-tissue tumors are more common than primary bone malignancies but remain:
Uncommon.
Historical estimates have been approximately:
9,000 new cases annually in the United States.
Incidence estimates vary by:
Year
Tumor definition
and
Data source.
⸻
Risk Factors
For most neoplasms, particularly benign musculoskeletal tumors, the exact cause is:
Unknown.
Some malignant tumors have identifiable:
Genetic
Environmental
or
Infectious risk factors.
⸻
Genetic Risk Factors
Important tumor suppressor abnormalities include:
TP53
and
RB1.
⸻
TP53
Germline TP53 mutation is associated with:
Li-Fraumeni syndrome
and an increased risk of multiple malignancies, including some:
Sarcomas.
⸻
RB1
Germline mutation of:
RB1
causes hereditary:
Retinoblastoma
and also increases the later risk of certain:
Bone and soft-tissue sarcomas.
⸻
Environmental Risk Factors
Environmental exposures associated with malignancy include:
Tobacco use
Excessive alcohol consumption
Obesity
and
Ultraviolet radiation.
⸻
Tobacco
Tobacco exposure is strongly associated with malignancies such as:
Lung cancer.
⸻
Alcohol
Heavy alcohol consumption increases the risk of several cancers, including:
Esophageal malignancy.
⸻
Obesity
Obesity is associated with increased risk of several malignancies, including:
Colorectal cancer.
⸻
Ultraviolet Exposure
Excessive ultraviolet light exposure increases the risk of:
Skin malignancy.
⸻
Infectious Risk Factors
Some malignancies are associated with specific:
Infectious agents.
⸻
Human Papillomavirus
High-risk HPV strains are strongly associated with:
Cervical cancer
and several other:
Anogenital and oropharyngeal malignancies.
⸻
Epstein-Barr Virus
EBV is associated with several malignancies, including certain:
B-cell lymphomas.
⸻
Hepatitis Viruses
Chronic:
Hepatitis B
and
Hepatitis C
infection increase the risk of:
Hepatocellular carcinoma.
⸻
Helicobacter pylori
Chronic infection with:
Helicobacter pylori
is associated with:
Gastric adenocarcinoma
and
Gastric MALT lymphoma.
⸻
Pathophysiology
Both benign and malignant tumors demonstrate:
Abnormal cellular proliferation.
Their biologic behavior differs primarily in:
Local invasiveness
Growth rate
Histologic aggressiveness
and
Ability to metastasize.
⸻
Benign Tumor Behavior
Benign tumors generally remain:
Localized.
However, some may become locally destructive because of:
Expansion
or
Pressure on surrounding structures.
⸻
Malignant Tumor Behavior
Malignant tumors can invade surrounding tissues and may disseminate through:
Bloodstream
Lymphatics
or other anatomic pathways.
⸻
Hematogenous Metastasis
Many primary bone sarcomas spread predominantly through the:
Bloodstream.
A common metastatic destination is the:
Lung.
⸻
Associated Conditions
Certain inherited disorders predispose patients to specific tumor types.
⸻
Gardner Syndrome
Gardner syndrome is associated with:
Familial adenomatous polyposis
and may include:
Osteomas
Desmoid tumors
and other:
Soft-tissue lesions.
⸻
Neurofibromatosis
Neurofibromatosis may be associated with:
Neurofibromas
and an increased risk of:
Malignant peripheral nerve sheath tumors.
⸻
Diagnosis
Evaluation begins with:
History
Physical examination
and appropriate:
Imaging.
Definitive diagnosis often requires:
Tissue biopsy.
⸻
Signs and Symptoms
Possible systemic or local symptoms include:
Fever
Night sweats
Unintentional weight loss
Bone pain
Soft-tissue mass
Abdominal pain
Visual symptoms
Abnormal bleeding
and
Persistent cough.
⸻
Bone Pain
Persistent unexplained bone pain, particularly when:
Progressive
Nocturnal
or unrelated to activity, warrants further:
Evaluation.
⸻
Soft-Tissue Mass
A newly enlarging or persistent soft-tissue mass should be assessed carefully, particularly when it is:
Deep
Firm
Painful
or
Progressively enlarging.
⸻
Physical Examination
Examination should be directed by the patient’s:
Symptoms
and
Tumor risk profile.
⸻
General Examination
The examination may include assessment of:
Skin
Lymph nodes
and other organ systems where clinically appropriate.
⸻
Musculoskeletal Examination
For suspected orthopaedic tumors, assess:
Mass size
Location
Depth
Mobility
Tenderness
Neurovascular status
and relationship to surrounding:
Bone and soft tissue.
⸻
Laboratory Tests
There is no single blood test that reliably diagnoses most:
Bone or soft-tissue tumors.
⸻
Selected Laboratory Studies
Depending on the suspected diagnosis, testing may include:
CBC
ESR
CRP
Serum calcium
Alkaline phosphatase
SPEP/UPEP
or other disease-specific:
Studies.
⸻
Imaging
Imaging plays a central role in:
Detection
Characterization
Local staging
and
Metastatic assessment.
⸻
Plain Radiographs
Plain radiographs should be obtained for areas of:
Persistent focal bone pain
or suspected:
Bone lesions.
⸻
Radiographic Assessment
Important features include:
Lesion location
Margins
Pattern of bone destruction
Matrix mineralization
Periosteal reaction
and presence of:
Soft-tissue extension.
⸻
Chest Imaging
Chest radiography or, more commonly for sarcoma staging:
CT of the chest
may be used to assess for pulmonary:
Metastases.
⸻
CT
CT is useful for:
Cortical detail
Mineralized matrix
and staging of:
Chest, abdomen, and pelvis
when clinically indicated.
⸻
MRI
MRI with and without contrast is the preferred local imaging study for many:
Soft-tissue masses
and complex:
Bone tumors.
⸻
Role of MRI
MRI helps define:
Tumor extent
Relationship to neurovascular structures
Marrow involvement
and
Soft-tissue extension.
⸻
Staging
Staging systems vary according to:
Tumor type.
⸻
Staging Methods
Staging may incorporate:
Clinical findings
Imaging
and
Histopathology.
⸻
Primary Tumor Assessment
Local tumor extent is commonly evaluated using:
MRI
or
CT.
⸻
Metastatic Evaluation
Metastatic staging may include:
CT chest
Bone scintigraphy
PET/CT
or other imaging tailored to the:
Specific malignancy.
⸻
Biopsy
When malignancy is suspected, biopsy should generally be performed:
After complete imaging
and ideally planned by the team that will perform definitive:
Tumor resection.
⸻
Biopsy Principles
The biopsy tract should be positioned so that it can be:
Removed during definitive surgery.
Poorly planned biopsy can contaminate:
Uninvolved tissue planes
and complicate future:
Limb-sparing surgery.
⸻
Differential Diagnosis
A bone or soft-tissue lesion may represent:
Benign neoplasm
Primary malignancy
Metastatic disease
Hematologic malignancy
Infection
or a:
Tumor-like condition.
⸻
Benign Bone Lesions
Common benign or incidental bone lesions include:
Bone islands
Enchondromas
and
Bone infarcts.
⸻
Treatment
The primary goals of cancer treatment are:
Local tumor control
and prevention or treatment of:
Metastatic disease.
⸻
Multidisciplinary Care
Treatment often requires collaboration among:
Orthopaedic oncology
Medical oncology
Radiation oncology
Pathology
and
Radiology.
⸻
Chemotherapy
Chemotherapy is important for selected malignancies such as:
Osteosarcoma
Ewing sarcoma
and many:
Hematologic cancers.
⸻
Immunotherapy
Immunotherapy may be effective for selected tumors with appropriate:
Biologic or molecular targets.
⸻
Radiation Therapy
Radiation may be used for:
Definitive local control
Adjuvant treatment
or
Palliation
depending on tumor type.
⸻
Surgical Resection
Surgery remains central to treatment of many:
Primary bone and soft-tissue sarcomas.
The goal is usually complete removal with an appropriate:
Oncologic margin.
⸻
Limb Salvage
When possible, malignant musculoskeletal tumors may be treated with:
Limb-sparing resection
followed by reconstruction.
⸻
Amputation
Amputation remains appropriate in selected cases involving:
Extensive neurovascular invasion
Uncontrollable infection
or when limb salvage would not provide acceptable:
Function or oncologic control.
⸻
Follow-Up
Patients require ongoing:
Clinical surveillance
and
Restaging imaging.
⸻
Purpose of Surveillance
Follow-up aims to detect:
Local recurrence
and
Metastatic disease
at an early stage.
⸻
Duration of Follow-Up
The frequency and duration of surveillance depend on:
Tumor type
Grade
Stage
and time since:
Treatment.
⸻
Prognosis
Prognosis varies widely according to:
Histologic diagnosis
Tumor grade
Tumor size
Location
Resectability
and presence or absence of:
Metastatic disease.
⸻
Patient Monitoring
Surveillance may include:
Physical examination
Local imaging
and imaging of common metastatic sites such as the:
Lungs.
⸻
Patient Teaching
Patients should be educated to recognize possible signs of:
Local recurrence.
⸻
Warning Symptoms
They should seek medical evaluation for:
New pain
New swelling
or development of a:
New mass
near the site of a previous tumor.
⸻
Frequently Asked Questions
Are all bone lesions cancerous?
No. Most incidentally discovered bone lesions are:
Benign.
Examples include:
Bone islands
Enchondromas
and
Bone infarcts.
Their appearance and behavior are assessed primarily with:
Imaging characteristics.
⸻
Can an orthopaedic oncologist determine whether a bone lesion is aggressive?
Often, yes. Features such as:
Margins
Bone destruction
Periosteal reaction
Cortical involvement
and
Soft-tissue extension
help determine whether a lesion appears:
Nonaggressive or aggressive.
Musculoskeletal radiologists can provide important additional:
Imaging interpretation.
⸻
Is a bone scan always needed to determine whether a lesion is active?
No. Bone scintigraphy may be useful in selected situations, but activity is often assessed with:
Plain radiographs
MRI
CT
or other imaging depending on the:
Lesion.
⸻
Can staging studies determine whether a malignant tumor has metastasized?
Staging studies are useful for identifying:
Macroscopic metastatic disease.
However, they cannot reliably detect:
Microscopic metastases.
Therefore, apparently localized disease on imaging does not prove that no microscopic tumor cells are:
Present elsewhere.
⸻
Clinical Summary
Definition: A neoplasm is an abnormal proliferation of cells classified as benign or malignant according to its biologic behavior.
Benign tumors: Usually remain localized and do not metastasize, although some may be locally aggressive.
Malignant tumors: Invade surrounding tissues and may metastasize, often hematogenously in primary bone sarcomas.
Key warning features: Progressive bone pain, enlarging soft-tissue mass, constitutional symptoms, or an aggressive lesion on imaging.
Initial imaging: Plain radiographs for bone lesions and MRI with contrast for suspicious soft-tissue masses or local tumor staging.
Staging: Often includes local MRI or CT plus metastatic evaluation such as CT chest, PET/CT, or bone scintigraphy, depending on tumor type.
Biopsy principle: Biopsy should be planned after imaging and ideally by the team performing definitive tumor surgery.
Treatment: May include surgical resection, chemotherapy, radiation therapy, and immunotherapy, depending on the specific malignancy.
Follow-up: Requires surveillance for both local recurrence and metastatic disease.
⸻
Key Principle
Musculoskeletal tumors range from common benign incidental lesions to rare but potentially lethal:
Primary bone and soft-tissue malignancies.
The most important early steps are:
Recognizing aggressive clinical or imaging features
Obtaining appropriate local imaging
and
Planning biopsy correctly before definitive treatment.
Most bone lesions are:
Benign, but suspected malignant tumors should be evaluated using a coordinated:
Multidisciplinary oncologic approach.
For malignant disease, treatment aims to achieve:
Local control
while preventing or treating:
Metastatic spread.
- Published on
Orthopaedic Surgery - Trigger Finger
Basics
Trigger finger is a form of:
Stenosing flexor tenosynovitis
that causes painful:
Catching
Clicking
or
Locking
of a digit during flexion and extension.
The condition develops when normal gliding between the:
Flexor tendon
and its surrounding:
Tendon sheath
becomes impaired.
Pathophysiology
The most common site of mechanical obstruction is the:
A1 pulley.
A thickened flexor tendon or tendon nodule passes with difficulty through this relatively narrowed pulley, producing:
Triggering.
Self-Perpetuating Mechanism
Repeated catching produces additional:
Mechanical irritation
and
Tendon swelling.
This may further worsen the mismatch between the tendon and:
A1 pulley.
Tendinopathy Rather Than Tendinitis
Histologic studies generally demonstrate:
Degenerative tendon and pulley changes
rather than prominent inflammatory-cell infiltration.
Therefore, adult trigger finger is more accurately considered a:
Stenosing tendinopathy
than a true inflammatory:
Tendinitis.
Quinnell Classification
Trigger finger severity may be graded using the:
Quinnell classification.
Grade 0
Pain with movement
without mechanical:
Catching or triggering.
Grade 1
There is:
Uneven movement
or
Clicking during flexion
but no true locking.
Grade 2
The digit:
Triggers
but the patient can actively:
Correct or extend it.
Grade 3
The digit triggers or locks and requires:
Passive correction
using the opposite hand.
Grade 4
The digit is:
Locked
or has developed a fixed:
Flexion contracture.
Pediatric Triggering
Pediatric trigger thumb and trigger fingers are now regarded as predominantly:
Acquired
rather than truly:
Congenital.
Their underlying mechanism differs from typical adult trigger finger.
Epidemiology
Triggering can involve:
Any digit.
Adults
In adults, the most commonly affected digits are:
Thumb
Ring finger
and
Middle finger.
Children
In children, the:
Thumb
is affected most frequently.
The:
Middle finger
is among the more frequently involved non-thumb digits.
Age
Trigger finger is particularly common in:
Middle-aged adults.
Pediatric cases usually present during:
Early childhood.
Sex
Adult trigger finger is more common in:
Women
than in men.
Incidence
The lifetime incidence in adults is approximately:
2.6%.
Diabetes
Among patients with diabetes, the incidence is substantially higher, historically reported around:
4–10%.
Multiple-digit involvement is also more common in:
Diabetes.
Pediatric Incidence
Pediatric trigger thumb occurs in approximately:
1–3 per 1,000 children.
Pediatric trigger fingers are much less common and have been reported to occur roughly:
10 times less frequently
than pediatric trigger thumb.
Pregnancy
Triggering may occur more frequently during:
Pregnancy
because of soft-tissue and fluid-related changes.
Symptoms may improve after:
Pregnancy.
Risk Factors
Important risk factors include:
Increasing age
Diabetes mellitus
and
Rheumatoid arthritis.
Other Associated Disorders
Trigger finger may also be associated with:
Gout
and other systemic conditions affecting:
Connective tissue or tendon sheaths.
Etiology
In adults, a thickened area or nodule may develop in the:
Flexor tendon.
Mechanical Impingement
The thickened tendon catches as it passes beneath the:
A1 pulley
at the level of the:
MCP joint.
Triggering
As the patient flexes and extends the digit, the tendon may suddenly pass through the narrowed pulley, producing:
Snapping
or
Locking.
Pediatric Trigger Thumb
In children approximately:
1–4 years of age
a nodular thickening of the flexor pollicis longus may be present.
This is commonly called a:
Notta node.
Notta Node
A Notta node may be palpable near the:
MCP flexion crease
and can prevent smooth passage of the tendon through the:
A1 pulley.
Pediatric Trigger Finger
Non-thumb trigger digits in children have a more complex and less well-understood:
Etiology.
Possible abnormalities include:
Anomalous lumbrical insertion into the flexor digitorum superficialis
or an abnormal relationship between the:
FDS
and
FDP tendons.
Associated Conditions in Children
Pediatric trigger fingers may be associated with:
Mucopolysaccharidoses
Juvenile idiopathic arthritis
Ehlers-Danlos syndrome
and
Down syndrome.
Associated Conditions in Adults
Adults may have associated conditions such as:
Carpal tunnel syndrome
or
de Quervain tenosynovitis.
Diagnosis
Trigger finger is primarily a:
Clinical diagnosis.
Signs and Symptoms
Typical findings include:
Pain
Tenderness
Clicking
and
Locking.
Palmar Nodule
A palpable nodule may be present along the:
Flexor tendon
near the:
Distal palmar crease.
A1 Pulley Tenderness
Tenderness is usually maximal over the:
A1 pulley.
Painful Locking
The digit may become locked in:
Flexion
and then release suddenly during:
Extension.
Snapping
Patients may describe a painful:
Snap
or
Pop
during movement.
Radiation of Pain
Pain may occasionally radiate proximally into the:
Palm
or
Forearm.
Physical Examination
Palpate the flexor tendon sheath at the level of the:
A1 pulley
while asking the patient to repeatedly:
Flex and extend the digit.
Palpable Triggering
The examiner may feel:
Tendon thickening
A nodule
or the actual:
Triggering event.
Examine All Digits
All digits should be examined because:
Multiple trigger digits
may occur, particularly in patients with systemic:
Disease.
Bilateral Pediatric Disease
Approximately:
25% of pediatric trigger-thumb cases
may have bilateral involvement.
Fixed Contracture
Chronic disease may produce a fixed:
PIP or IP flexion contracture.
Laboratory Tests
No serum laboratory study is specific for:
Trigger finger.
Systemic Disease Evaluation
Laboratory investigation is not routinely required but may be appropriate when an underlying systemic disorder such as:
Rheumatoid arthritis
Gout
or another metabolic disease is suspected.
Imaging
Imaging is usually:
Unnecessary.
Radiographs
Plain radiographs may be helpful when a fixed deformity raises concern for:
Arthritis
Joint contracture
Loose body
or other:
Bony pathology.
Ultrasound
Ultrasound can demonstrate thickening of the:
Flexor tendon
or
A1 pulley
but is not routinely required for diagnosis.
Differential Diagnosis
Important alternatives include:
Flexor tendon rupture
Joint contracture or ankylosis
Congenital clasped thumb
Extensor tendon deficiency
Tumor of the tendon sheath
and
Loose body within the MCP joint.
Treatment
Management depends on:
Age
Severity
Number of involved digits
and whether symptoms are:
Adult or pediatric in origin.
General Measures
Mild symptoms may temporarily improve with:
Rest
and
Activity modification.
Multiple Trigger Digits
Multiple symptomatic trigger digits may suggest:
Systemic disease
and may increase the likelihood that:
Surgical treatment
will eventually be required.
Pediatric Trigger Thumb
Many pediatric trigger thumbs may resolve:
Spontaneously.
Resolution may take as long as:
Several years.
Observation in Children
Observation is appropriate in selected young children without:
Fixed deformity
or progressive:
Contracture.
Timing of Pediatric Surgery
Persistent pediatric trigger thumb may require surgery, particularly when there is:
Fixed IP flexion contracture
or failure to improve with:
Growth.
Historically, release has often been considered before approximately:
4 years of age
when contracture is persistent.
Pediatric Trigger Finger
Non-thumb pediatric trigger fingers may be treated initially with:
Observation
or
Splinting
but are more likely than trigger thumb to involve:
Complex tendon abnormalities.
Adult Trigger Finger
In adults, first-line treatment commonly includes:
Corticosteroid injection.
Splinting
Splinting may be useful for:
Mild cases
particularly when the patient can comply consistently with:
Orthotic use.
Activity After Injection
Routine activity restrictions are usually unnecessary after:
Corticosteroid injection
although temporary avoidance of painful repetitive use may improve:
Comfort.
Physical Therapy
Formal physical therapy is generally:
Not required.
Hand Therapy
Selected patients may benefit from instruction regarding:
Splinting
Tendon gliding
and
Activity modification.
Medication
The principal medication treatment in adults is:
Corticosteroid injection.
Injection Technique
Corticosteroid, often combined with:
Local anesthetic
is injected into or adjacent to the:
Flexor tendon sheath
at the level of the:
A1 pulley.
Avoid Intratendinous Injection
Medication should not be injected directly into the:
Flexor tendon
because this may increase the risk of:
Tendon injury or rupture.
Injection Success
A single corticosteroid injection has historically produced improvement in approximately:
45–92% of patients.
Factors Associated With Injection Failure
Injection is less likely to succeed in patients with:
Diabetes
Multiple trigger digits
and sometimes younger patients with:
Long-standing symptoms.
Injection Complications
Potential complications include:
Skin depigmentation
Subcutaneous fat atrophy
Transient hyperglycemia
and, rarely,
Tendon attrition or rupture.
Surgery
Surgical release is indicated when symptoms persist despite appropriate:
Nonoperative treatment
or when the digit is:
Fixed or severely locked.
A1 Pulley Release
The standard procedure is:
Release of the A1 pulley.
Open Release
Open surgical release remains the most established and reliable:
Procedure.
Surgical Incision
A small:
Longitudinal
Transverse
or
Oblique incision
is made over the affected:
A1 pulley.
Pulley Division
The A1 pulley is carefully divided while protecting the adjacent:
Digital nerves
and
Digital vessels.
Persistent Triggering
If triggering persists after complete A1 pulley release, selected patients may require excision of the:
Ulnar slip of the FDS tendon.
Percutaneous Release
Some surgeons use:
Percutaneous A1 pulley release
in appropriately selected:
Adult patients.
Pediatric Trigger Finger Surgery
Pediatric non-thumb trigger fingers may require more extensive procedures, including:
Partial A2 pulley release
A3 pulley release
or
FDS slip excision.
Pediatric Trigger Thumb Surgery
Trigger-thumb release requires particular care because the:
Radial digital nerve
crosses near the operative:
Field.
Postoperative Care
The hand is usually covered with a:
Light dressing
for several days.
Motion
Early:
Finger motion
is generally encouraged after surgery to prevent:
Stiffness.
Activity
Normal activity is resumed:
Gradually
as wound healing and comfort permit.
Follow-Up
Follow-up after injection is based on:
Persistence or recurrence of symptoms.
After Surgery
After uncomplicated release, prolonged monitoring is usually:
Not necessary.
Prognosis
Overall prognosis is:
Good to excellent.
Corticosteroid Injection
Injection is less successful in patients with:
Diabetes mellitus
and may also be less effective when several digits are involved.
Surgical Success
Open A1 pulley release has a reported success rate exceeding:
97%.
Pediatric Prognosis
Open release provides highly reliable outcomes in:
Pediatric trigger thumb
and
Pediatric trigger finger.
Pediatric Recurrence
Recurrence after surgery is more common in pediatric:
Trigger fingers
than in pediatric:
Trigger thumbs.
Complications
Potential injection complications include:
Digital nerve injury
Vascular injury
Tendon injury
and
Skin changes.
These are generally:
Uncommon.
Surgical Complications
Potential surgical complications include:
Digital nerve laceration
Flexor tendon injury
Infection
Stiffness
Persistent triggering
and
Complex regional pain syndrome.
Recurrence
Incomplete release of the:
A1 pulley
or unrecognized additional pathology may lead to:
Persistent or recurrent triggering.
Patient Monitoring
Following successful surgical release, extensive long-term monitoring is usually:
Unnecessary.
Patients should return if they develop:
Recurrent triggering
Wound problems
Neurologic symptoms
or persistent:
Stiffness.
Clinical Summary
Typical presentation: Painful clicking, catching, or locking of a finger during flexion and extension, with tenderness over the A1 pulley.
Key pathology: Thickening of the flexor tendon and/or A1 pulley causes impaired tendon gliding.
Most commonly affected adult digits: Thumb, ring finger, and middle finger.
Diagnosis: Primarily clinical; imaging and laboratory tests are usually unnecessary.
First-line adult treatment: Corticosteroid injection into or around the flexor tendon sheath, with splinting as an option in mild cases.
Surgery: A1 pulley release is indicated for persistent, recurrent, fixed, or severe triggering and has a very high success rate.
Pediatric trigger thumb: Often observed initially because spontaneous resolution can occur, but persistent fixed contracture may require surgical release.
Important association: Trigger finger is more common and often more resistant to injection in patients with diabetes mellitus.
Key Principle
Trigger finger is a stenosing flexor tenosynovial disorder caused by impaired passage of the flexor tendon through the A1 pulley.
The characteristic findings are:
Tenderness over the A1 pulley, a palpable tendon nodule, and painful clicking, catching, or locking.
Diagnosis is almost always:
Clinical.
In adults, treatment usually begins with:
Corticosteroid injection, while persistent or severe disease is treated with:
A1 pulley release.
Children, particularly those with:
Trigger thumb, have a different natural history and may initially be observed, but persistent fixed contracture warrants:
Surgical evaluation.
- Published on
Orthopaedic Surgery - Triangular Fibrocartilage Complex Tear
Basics
The:
Triangular fibrocartilage complex
or
TFCC
is a group of ligamentous and fibrocartilaginous structures located on the:
Ulnar side of the wrist.
It is an important stabilizer of the:
Distal radioulnar joint
during:
Pronation
and
Supination.
Load Transmission
The TFCC also contributes to transmission of axial load across the:
Ulnocarpal wrist.
Approximately:
20% of load across the wrist
may normally be transmitted through the:
Ulnar-sided structures.
Anatomy
The TFCC extends broadly between the:
Distal radius
and
Ulna
with attachments extending from the region of the:
Ulnar styloid and fovea
toward the:
Sigmoid notch of the distal radius.
Components
The TFCC includes the:
Triangular fibrocartilage disc proper
Dorsal distal radioulnar ligament
Volar distal radioulnar ligament
Meniscus homolog
Ulnar collateral ligament
Ulnotriquetral ligament
Ulnolunate ligament
and
Extensor carpi ulnaris tendon subsheath.
Deep Component
The deep portion of the radioulnar ligament complex inserting into the:
Ulnar fovea
has historically been termed the:
Ligamentum subcruentum.
This component is especially important for:
Distal radioulnar joint stability.
Meniscal Variant
Some wrists contain a true:
Meniscal-like structure
with a free edge that may be visible during:
Arthroscopy.
Clinical Importance
TFCC injury may produce:
Acute
or
Chronic ulnar-sided wrist pain.
Symptoms are often aggravated by:
Forearm rotation
Grip
and
Axial loading.
Classification
The:
Palmer classification
divides TFCC lesions into:
Traumatic Class 1
and
Degenerative Class 2 injuries.
Palmer Class 1
Class 1 lesions are:
Traumatic.
Type 1A
Type 1A is a:
Central perforation.
Because the central TFCC is relatively:
Avascular
these tears have limited spontaneous healing capacity.
Type 1B
Type 1B is a tear of the:
Ulnar attachment.
These peripheral injuries may involve the:
Foveal or styloid attachment
and can produce:
Distal radioulnar joint instability.
Type 1C
Type 1C represents detachment of the TFCC from its:
Carpal attachment
including injury to the:
Volar ulnocarpal ligaments.
Type 1D
Type 1D is a tear involving the:
Radial attachment
of the TFCC.
Palmer Class 2
Class 2 lesions are:
Degenerative.
They often result from chronic:
Ulnocarpal loading
and may be associated with:
Positive ulnar variance.
Ulnar Positive Variance
When the ulna projects farther distally than expected relative to the radius, increased loading across the:
TFCC
and
Ulnocarpal joint
may contribute to:
Degenerative tearing.
Epidemiology
TFCC tears are increasingly recognized because of improvements in:
Clinical examination
MRI
and
Wrist arthroscopy.
Age
Symptomatic tears are commonly encountered between approximately:
30 and 60 years of age.
Risk Factors
Activities that repeatedly load the wrist during:
Pronation-supination
Radial-ulnar deviation
or
Heavy lifting
increase stress on the:
TFCC.
Sports and Occupational Exposure
Examples include activities involving:
Racquet sports
Gymnastics
Weight lifting
Manual labor
or repetitive:
Forearm rotation.
Etiology
Traumatic tears may result from forceful:
Hyperpronation
or
Wrist dorsiflexion.
Mechanism
A fall onto the hand or twisting injury can produce excessive stress across the:
TFCC
and
Distal radioulnar joint.
Associated Fractures
TFCC injury may occur with fractures of the:
Distal radius
Distal ulna
or both bones.
Distal Radioulnar Joint
A major TFCC tear may function biomechanically like disruption of the:
Distal radioulnar stabilizers
and produce:
DRUJ instability.
Diagnosis
Diagnosis is based on:
History
Focused physical examination
and
Imaging.
Arthroscopy
Wrist arthroscopy remains the:
Gold standard
for directly identifying and characterizing a:
TFCC tear.
However, many patients can initially be evaluated using:
Clinical examination and MRI.
Signs and Symptoms
The most common complaint is:
Ulnar-sided wrist pain.
Provocative Activities
Pain is often worsened by:
Pronation
Supination
Gripping
and
Axial loading of the wrist.
Trauma History
Many patients recall a specific:
Traumatic event.
Others, particularly those with degenerative tears, may describe more gradual:
Symptom onset.
Clicking
Patients may experience:
Clicking
Snapping
or
Catching
particularly during:
Forearm rotation.
Physical Examination
The examination should carefully localize the source of:
Ulnar-sided wrist pain.
Range of Motion
Assess wrist and forearm:
Flexion
Extension
Radial deviation
Ulnar deviation
Pronation
and
Supination.
Crepitus and Snapping
Examine for:
Crepitus
Clicking
Painful snapping
and
Instability.
TFCC Compression Test
The TFCC compression test is a provocative maneuver.
The examiner applies:
Axial load
while rotating the:
Ulnar-deviated wrist.
Positive Compression Test
Reproduction of:
Ulnar-sided pain
or a painful:
Click
supports TFCC or ulnocarpal pathology.
Foveal Tenderness
Tenderness in the soft spot between the:
Ulnar styloid
and
Flexor carpi ulnaris tendon
near the ulnar fovea may support a:
Peripheral TFCC injury.
DRUJ Examination
Assess the distal radioulnar joint for:
Translation
Pain
and
Instability
in:
Neutral
Pronation
and
Supination.
ECU Examination
The:
Extensor carpi ulnaris tendon
should be palpated during wrist flexion-extension and:
Pronation-supination.
This helps identify:
ECU tendinitis
or
ECU tendon subluxation
as alternative causes of:
Ulnar-sided pain.
Imaging
Plain Radiographs
Standard:
AP
and
Lateral wrist radiographs
are obtained initially.
Purpose of Radiographs
Radiographs help identify:
Fracture
Arthritis
Malalignment
and abnormalities of:
Ulnar variance.
DRUJ Instability
Radiographs obtained in different forearm positions may occasionally help assess:
Distal radioulnar joint alignment.
Ulnar Variance
Ulnar variance should be measured on appropriately positioned:
Neutral-rotation radiographs.
A standardized:
90-90 view
may also be used, with the shoulder abducted approximately 90° and the elbow flexed:
90°.
CT
CT of both wrists may help assess:
DRUJ congruity
and
Rotational instability
particularly when comparison with the contralateral side is useful.
MRI
MRI is commonly used for detailed evaluation of:
TFCC morphology
and associated:
Wrist pathology.
3-Tesla MRI
High-resolution:
3-Tesla MRI
may improve visualization of:
TFCC tears.
MR Arthrography
MR arthrography may be useful when conventional MRI is:
Equivocal.
Arthrography
A full-thickness TFCC tear may permit contrast to pass between the:
Radiocarpal joint
and
Distal radioulnar joint.
Normally, these spaces do not freely:
Communicate.
Differential Diagnosis
The differential diagnosis for ulnar-sided wrist pain includes:
Distal radius fracture
Distal ulna fracture
Carpal fracture
ECU tendinitis
ECU subluxation
FCU tendinitis
Lunotriquetral ligament injury
Ulnocarpal arthritis
Pisotriquetral arthritis
DRUJ arthritis
Ulnar impaction syndrome
and
Ulnar artery thrombosis.
Treatment
Treatment depends on:
Traumatic versus degenerative origin
Fracture association
DRUJ stability
Tear location
and
Ulnar variance.
Associated Fracture
If a TFCC injury occurs with a distal forearm fracture, the fracture should first be:
Reduced and stabilized.
DRUJ Assessment
After reduction of a distal radius or ulna fracture, the:
Distal radioulnar joint
should be checked for:
Congruity and stability.
Acute Repair With Fracture Surgery
When operative fracture fixation is required and significant TFCC instability remains, acute:
TFCC repair
may be performed.
Injury Without Fracture
Initial treatment for an isolated stable TFCC injury is usually:
Nonoperative.
Immobilization
A:
Below-elbow cast or brace
may be used with the forearm near:
Neutral rotation.
Duration
Immobilization may continue for approximately:
4–6 weeks
depending on symptoms and:
Stability.
Long-Arm Immobilization
When control of:
Pronation and supination
is particularly important, some clinicians use:
Long-arm immobilization
or a brace that limits:
Forearm rotation.
Analgesia
Short-term:
Analgesic medication
may be used during the acute phase.
Range of Motion
After immobilization, gentle:
Wrist
and
Forearm range of motion
is gradually reintroduced.
Corticosteroid Injection
In chronic stable TFCC pain, a:
Corticosteroid injection
may provide temporary:
Symptom relief.
Persistent Symptoms
Continued:
Pain
or
Instability
despite adequate conservative treatment should prompt further:
Assessment
and consideration of:
Surgery.
Physical Therapy
Hand therapy is useful when injury or immobilization has caused:
Wrist stiffness
or reduced:
Forearm rotation.
Rehabilitation Goals
Therapy focuses on restoring:
Wrist ROM
Pronation-supination
Grip strength
and controlled return to:
Activity.
Medication
Oral analgesics are generally required only during the:
Acute symptomatic period.
Surgery
Surgical treatment depends heavily on:
Tear location
and whether the DRUJ is:
Stable or unstable.
Peripheral TFCC Tear
A repairable peripheral tear may be treated with:
Arthroscopic
or
Open repair.
Healing Potential
Peripheral TFCC tissue has a better:
Blood supply
than the central disc.
Therefore, peripheral tears are more suitable for:
Repair.
Central Tear
Central TFCC tears without instability are generally treated with:
Arthroscopic debridement
rather than:
Repair.
Reason for Debridement
The central TFCC is relatively:
Avascular
and has limited capacity for:
Biologic healing.
Ulnar Positive Variance
When degenerative tearing is associated with substantial:
Positive ulnar variance
treatment may need to reduce:
Ulnocarpal loading.
Ulnar Shortening Osteotomy
An:
Ulnar shortening osteotomy
may be performed to decrease:
Ulnocarpal contact pressure
and unload the:
TFCC.
Wafer Procedure
When only a small amount of shortening is required, typically less than approximately:
2–3 mm
a:
Wafer procedure
may be considered.
DRUJ Reconstruction
Chronic instability with irreparable TFCC tissue may require reconstruction of the:
Distal radioulnar joint stabilizers
using:
Tendon graft
or
Fascial tissue.
Advanced DRUJ Arthritis
In severe cases with advanced:
Distal radioulnar arthritis
a salvage procedure may be required.
Sauvé-Kapandji Procedure
One option is the:
Sauvé-Kapandji procedure
which combines:
DRUJ arthrodesis
with creation of a proximal ulnar:
Pseudoarthrosis
to preserve:
Forearm rotation.
Follow-Up
Postoperative immobilization varies according to:
Repair type
and
Stability.
Immobilization Duration
Patients may be immobilized for approximately:
2–8 weeks
after surgery.
Rehabilitation
After sufficient healing, therapy progresses through:
Range of motion
Strengthening
and
Functional loading.
Return to Sports
Return to unrestricted sports is often expected at approximately:
5–6 months
after major repair, although timing depends on:
Healing
Strength
and
Procedure performed.
Prognosis
The overall prognosis is generally:
Fair to good.
Persistent Pain
Some patients continue to experience:
Ulnar-sided wrist pain
despite adequate:
Treatment.
Long-Term Degeneration
Posttraumatic degenerative change may develop:
Years or decades
after the initial injury.
Complications
Potential complications of surgery include:
Infection
Nerve injury
Iatrogenic cartilage damage
Tendon injury
Persistent pain
and
Complex regional pain syndrome.
Persistent Instability
Failure of repair or unrecognized deep foveal injury may lead to persistent:
DRUJ instability.
Stiffness
Prolonged immobilization may result in:
Wrist stiffness
or loss of:
Pronation-supination.
Clinical Summary
Typical presentation: Ulnar-sided wrist pain after trauma or repetitive loading, often worsened by pronation-supination, gripping, or axial loading.
Key anatomy: The TFCC stabilizes the distal radioulnar joint and transfers part of the load across the ulnar wrist.
Key examination: Localize ulnar-sided tenderness, perform the TFCC compression test, assess DRUJ stability, and examine the ECU tendon.
Imaging: Start with AP and lateral wrist radiographs and assess ulnar variance; MRI is useful for soft-tissue evaluation, while arthroscopy remains the diagnostic gold standard.
Treatment: Stable injuries are initially treated with immobilization, analgesia, and gradual rehabilitation.
Surgery: Peripheral tears may be repaired, whereas central avascular tears are usually arthroscopically debrided.
Positive ulnar variance: Degenerative tears associated with ulnar impaction may require ulnar shortening or a wafer procedure.
Main complications: Persistent pain, DRUJ instability, stiffness, posttraumatic arthritis, and CRPS.
Key Principle
The TFCC is a complex ulnar-sided stabilizing structure of the wrist and distal radioulnar joint.
TFCC tears typically present with:
Ulnar-sided wrist pain, clicking, and pain during forearm rotation or axial loading.
Diagnosis combines:
Focused clinical examination, radiographs, and MRI, while:
Wrist arthroscopy
remains the most definitive diagnostic method.
Stable acute injuries are usually treated with:
Immobilization and rehabilitation.
When surgery is necessary:
Peripheral vascular tears are repaired, whereas:
Central avascular tears are usually debrided.
Associated:
Positive ulnar variance, ulnar impaction, or DRUJ instability
must be recognized and addressed to optimize long-term outcome.
- Published on
Orthopaedic Surgery - Torticollis
Basics
Torticollis is a condition in which the:
Head and neck are held in an abnormal tilted and rotated position.
The deformity may result from:
Muscular
Skeletal
Neurologic
or other systemic abnormalities.
Typical Posture
The characteristic posture consists of:
Lateral flexion of the head toward one side
with rotation of the:
Chin toward the opposite side.
Classification
Torticollis can broadly be divided into:
Congenital
and
Acquired forms.
Congenital Torticollis
Congenital causes include:
Congenital muscular torticollis
and
Congenital cervical skeletal abnormalities.
Acquired Torticollis
Acquired torticollis may result from:
Trauma
Inflammation
Atlantoaxial rotatory subluxation
Neurologic disease
Ocular disorders
or other:
Systemic conditions.
Synonyms
Historical terms include:
Wry neck
Congenital wry neck
Skeletal wry neck
and
Cock-robin deformity.
Sandifer Syndrome
Sandifer syndrome refers to episodic torticollis or abnormal head positioning associated with:
Gastroesophageal reflux
and sometimes:
Hiatal hernia.
Prevention
Prompt recognition and treatment of the underlying cause may prevent:
Fixed deformity
and reduce the need for:
Surgery.
Epidemiology
Torticollis can occur at:
Any age
depending on the underlying cause.
Congenital Muscular Torticollis
Congenital muscular torticollis usually becomes apparent during the first:
6–8 weeks of life.
Atlantoaxial Rotatory Subluxation
In children, one important acquired cause is:
Atlantoaxial rotatory subluxation.
This may follow:
Upper respiratory infection
Pharyngitis
or
Trauma.
Sex
Males and females are affected approximately:
Equally.
Incidence
Because torticollis has many causes, the exact incidence is difficult to define.
Historical estimates range from approximately:
1 in 100
to
1 in 1,000 individuals.
Risk Factors
Risk factors depend on the specific:
Etiology.
Congenital Muscular Torticollis Risk Factors
Potential associations include:
Difficult delivery
Birth trauma
and localized injury or ischemia involving the:
Sternocleidomastoid muscle.
Atlantoaxial Rotatory Subluxation Risk Factors
Potential triggers include:
Upper respiratory infection
Pharyngitis
and
Neck trauma.
Genetics
Several congenital disorders associated with torticollis have:
Genetic components.
Down Syndrome
Down syndrome is an important genetic condition associated with:
Cervical instability
including abnormalities involving the:
Atlantoaxial joint.
Etiology
The cause depends on whether the disorder is:
Muscular
Skeletal
Neurologic
Inflammatory
or
Traumatic.
Congenital Muscular Torticollis
Congenital muscular torticollis results from shortening and fibrosis of the:
Sternocleidomastoid muscle.
Sternocleidomastoid Effect
Contracture of one sternocleidomastoid causes the head to:
Tilt toward the affected side
while the chin rotates:
Away from the affected side.
Congenital Bony Torticollis
Congenital skeletal causes include abnormalities of the:
Occipitocervical junction
and
Cervical vertebrae.
Bony Abnormalities
Examples include:
Cervical hemivertebrae
Congenital vertebral fusion
and
Asymmetry of the occipital condyles.
Atlantoaxial Rotatory Subluxation
This condition involves abnormal rotation of:
C1 relative to C2.
It may occur after:
Trauma
Inflammation
or occasionally as part of a:
Congenital abnormality.
Diagnosis
Diagnosis begins with careful assessment of:
Head position
Neck motion
Neurologic status
and possible:
Underlying systemic disease.
Signs and Symptoms
The hallmark feature is:
Head tilt with restricted cervical range of motion.
Direction of Motion
The patient may be able to rotate the head farther:
Away from the neutral position
but may have difficulty rotating toward:
Correction.
Neck Mass
Infants with congenital muscular torticollis may have a palpable:
Sternocleidomastoid mass.
This represents localized:
Fibrosis or thickening.
Pain
Pain is less prominent in infants but is more common in:
Older children and adults.
Occipital Symptoms
Some patients report:
Occipital pain
Vertigo
or
Dizziness
that worsens with certain:
Head movements.
Plagiocephaly
Persistent torticollis in infancy may cause secondary:
Plagiocephaly
or facial:
Asymmetry.
Physical Examination
Observe the patient’s:
Head
Face
Neck
and
Shoulder alignment.
Characteristic Position
The ear is typically tilted toward the:
Affected side
while the chin points toward the:
Opposite side.
Range of Motion
Assess:
Active
and
Passive cervical rotation
and
Lateral flexion.
Sternocleidomastoid Examination
Palpate the sternocleidomastoid for:
Tightness
Fibrosis
or a localized:
Mass.
Craniofacial Asymmetry
Longstanding torticollis may produce:
Flattening of the skull
Facial asymmetry
or altered:
Ear position.
Cervical Skeletal Abnormality
A patient with congenital cervical fusion may have a:
Short neck
Low posterior hairline
and reduced:
Cervical motion.
These findings may suggest:
Klippel-Feil syndrome.
Neurologic Examination
A complete neurologic examination should assess:
Strength
Sensation
Reflexes
and
Coordination.
Laboratory Tests
There are no laboratory tests specific for:
Torticollis.
Inflammatory or Neoplastic Evaluation
If infection, inflammatory disease, or malignancy is suspected, laboratory studies may include:
CBC
ESR
and
C-reactive protein.
Additional Specialist Evaluation
When no obvious musculoskeletal cause is present, additional assessment may be needed by:
Ophthalmology
Audiology
or
Gastroenterology.
Imaging
Plain Radiographs
AP and lateral cervical spine radiographs may be used to identify:
Congenital bony abnormalities
Fracture
Dislocation
or abnormal:
Alignment.
CT
CT is particularly useful for evaluating:
Atlantoaxial rotatory subluxation
Occipitocervical injury
Fracture
or
Dislocation.
Rotatory Subluxation
CT may demonstrate persistent abnormal rotational alignment between:
C1
and
C2.
MRI
MRI is indicated when there is concern for:
Spinal cord
Brainstem
Soft-tissue
or other:
Neurologic lesions.
Pathological Findings
In congenital muscular torticollis, the:
Sternocleidomastoid muscle
typically demonstrates:
Fibrosis
and
Shortening.
Differential Diagnosis
The differential diagnosis is broad.
Neurogenic Causes
Potential neurologic causes include:
Brainstem tumor
Cervical spinal cord tumor
Cerebellar tumor
and
Syringomyelia.
Ocular Causes
An ocular disorder may cause compensatory:
Head tilt
to optimize:
Vision.
Traumatic Causes
Traumatic causes include:
Atlantoaxial subluxation
Cervical fracture
and
Occipitocervical dislocation.
Inflammatory Causes
Potential causes include:
Cervical lymphadenitis
and
Rheumatoid arthritis.
Congenital Skeletal Causes
Examples include:
Hemivertebra
Congenital fusion
and
Occipital condyle asymmetry.
Gastrointestinal Cause
In infants, episodic abnormal head positioning may result from:
Sandifer syndrome
associated with:
Gastroesophageal reflux.
Treatment
Treatment depends on the:
Underlying cause
and duration of the:
Deformity.
Congenital Muscular Torticollis
Early treatment consists primarily of:
Stretching exercises.
Early Prognosis
When treatment begins before approximately:
1 year of age
stretching is successful in the vast majority of:
Infants.
Positioning
Parents can position:
Toys
Lights
or other points of interest so the child is encouraged to rotate the head toward the:
Restricted side.
Home Program
A structured home stretching program should focus on:
Gentle cervical rotation
and
Lateral flexion.
Atlantoaxial Rotatory Subluxation
Recent-onset atlantoaxial rotatory subluxation may respond to:
Rest
Analgesics
Physical therapy
and a:
Soft cervical collar.
Early Treatment
Patients treated within approximately the:
First week
often recover without:
Surgery.
Muscle Relaxants
Selected patients may require:
Muscle relaxants
when painful spasm prevents:
Reduction.
Rigid Immobilization
Persistent symptoms may require a:
Hard collar
or another form of:
Cervical bracing.
Traction
If treatment is delayed or the deformity becomes fixed, reduction may require:
Cervical traction.
Activity
Contact sports and strenuous activity should be restricted until the:
Cause is identified
and cervical stability is:
Confirmed.
Physical Therapy
Physical therapy can be curative for many cases of:
Congenital muscular torticollis
and
Recent-onset atlantoaxial rotatory subluxation.
Stretch Direction
The therapist should receive clear instructions regarding:
Direction of stretching
and whether:
Traction
is appropriate.
Medication
Pain may be treated with:
Acetaminophen
or
Ibuprofen
when medically appropriate.
Surgery
Surgery is reserved for selected cases that fail appropriate:
Nonoperative treatment.
Muscular Torticollis Surgery
Persistent congenital muscular torticollis may require:
Sternocleidomastoid release
or
Lengthening.
Timing
Surgery is generally considered when:
Persistent contracture
Restricted motion
or progressive:
Craniofacial asymmetry
remains despite adequate:
Stretching.
Atlantoaxial Rotatory Subluxation Surgery
Severe or chronic atlantoaxial rotatory subluxation that cannot be reduced with:
Traction
may require:
Reduction and C1–C2 fusion.
Congenital Bony Abnormality
Selected congenital cervical abnormalities causing severe persistent deformity or instability may also require:
Spinal fusion.
Follow-Up
Follow-up should assess:
Head position
Range of motion
Neurologic findings
and development of:
Craniofacial asymmetry.
Prognosis
Most cases of torticollis improve:
Spontaneously
or with appropriate:
Treatment.
Early Muscular Torticollis
Congenital muscular torticollis treated early generally has an:
Excellent prognosis.
Delayed Treatment
Delayed treatment increases the risk of:
Persistent contracture
and
Plagiocephaly.
Complications
Potential complications include:
Fixed atlantoaxial subluxation
Persistent neck deformity
and
Plagiocephaly.
Fixed Subluxation
Untreated atlantoaxial rotatory subluxation may become:
Fixed
and increasingly difficult to:
Reduce.
Plagiocephaly
Persistent head positioning in infancy may cause permanent:
Cranial or facial asymmetry
if treatment is delayed beyond the period of active:
Remodeling.
Patient Monitoring
Neurologic status should be followed:
Closely.
Imaging Follow-Up
Bony abnormalities such as persistent:
Atlantoaxial rotatory subluxation
may require repeat:
Imaging.
CT use should be balanced against cumulative:
Radiation exposure, particularly in children.
Clinical Summary
Typical presentation: Head tilted toward one side with the chin rotated to the opposite side and restricted neck motion.
Most common infant cause: Congenital muscular torticollis from sternocleidomastoid fibrosis or contracture.
Important acquired cause in children: Atlantoaxial rotatory subluxation, often after trauma or an upper respiratory infection.
Key examination: Assess cervical ROM, palpate the sternocleidomastoid, look for plagiocephaly, and perform a complete neurologic examination.
Imaging: Plain cervical radiographs for bony abnormalities; CT for suspected C1–C2 rotatory subluxation or fracture; MRI for suspected spinal cord, brainstem, or other neurologic disease.
Initial treatment: Early muscular torticollis responds to stretching and positioning; recent atlantoaxial rotatory subluxation may respond to analgesics, therapy, and cervical immobilization.
Surgery: Reserved for persistent muscular contracture or irreducible/fixed atlantoaxial abnormalities.
Red flags: New neurologic deficits, severe pain, trauma, fever, progressive deformity, or acquired torticollis without an obvious benign explanation.
Key Principle
Torticollis is a clinical posture characterized by lateral head tilt with rotation of the chin in the opposite direction.
It may arise from:
Muscular, skeletal, neurologic, inflammatory, traumatic, ocular, or gastrointestinal causes.
In infants, the most common form is:
Congenital muscular torticollis, which usually responds well to early:
Stretching and positioning.
In older children with acute painful torticollis, especially after:
Trauma or upper respiratory infection, consider:
Atlantoaxial rotatory subluxation.
Persistent, painful, neurologically abnormal, or atypical torticollis requires evaluation for an underlying:
Structural or neurologic cause.
- Published on
Orthopaedic Surgery - Toe Walking
Basics
Toe walking describes a gait pattern in which a child walks predominantly on the:
Forefoot
with limited or absent:
Heel strike.
Idiopathic toe walking is relatively common in:
Toddlers and young children.
Idiopathic Toe Walking
Many children who toe walk have no identifiable:
Neurologic
Orthopaedic
or
Neuromuscular disorder.
When other causes have been excluded, the condition is termed:
Idiopathic toe walking.
Achilles Tendon Tightness
Some children develop or have an associated shortened:
Achilles tendon
or tight:
Gastrocnemius-soleus complex.
This may restrict:
Ankle dorsiflexion
and reinforce the toe-walking pattern.
Natural History
Some children spontaneously develop a normal:
Heel-toe gait
as they:
Grow.
Persistent Toe Walking
Persistent, nearly exclusive toe walking beyond approximately:
5 years of age
should prompt careful assessment for an underlying:
Neurologic or neuromuscular disorder.
Epidemiology
Toe walking is usually first noticed when the child begins:
Independent walking.
Incidence
Transient toe walking is:
Common
during early childhood.
Sex
Boys and girls are affected approximately:
Equally.
Risk Factors
Potential associations include:
Positive family history
Premature birth
Low Apgar score
and other:
Neuromotor abnormalities.
Genetics
A familial tendency is relatively common.
Historical studies have reported a positive family history in up to approximately:
50% of patients.
Etiology
Idiopathic toe walking is thought to involve a combination of:
Neuromotor patterning
and, in some children,
Achilles tendon shortening.
Diagnosis
Idiopathic toe walking is primarily a:
Clinical diagnosis.
Importantly, it is a:
Diagnosis of exclusion.
A neurologic, neuromuscular, or structural cause should be excluded before labeling the gait:
Idiopathic.
History
The clinician should establish:
When toe walking began
Whether it has always been present
and whether the child can voluntarily walk with:
Heel strike.
Developmental History
Ask about:
Birth history
Prematurity
Developmental milestones
and any history of:
Motor delay.
Family History
Ask whether parents or siblings had:
Toe walking
Neuromuscular disease
or abnormal:
Gait development.
New-Onset Toe Walking
Toe walking that begins after a period of normal:
Heel-toe gait
is more concerning than toe walking present from the onset of:
Walking.
This pattern warrants evaluation for an acquired:
Neurologic
Spinal
or
Musculoskeletal cause.
Physical Examination
The child should ideally be examined wearing:
Shorts
with the lower extremities fully visible.
Gait Observation
Observe the feet throughout:
Standing
Walking
and, when possible,
Running.
Heel Strike
Determine whether the child demonstrates:
Heel strike
at any point during the gait cycle.
Voluntary Correction
Ask the child to attempt:
Heel-toe walking.
The ability to correct the gait voluntarily may support a diagnosis of:
Idiopathic toe walking.
Neurologic Examination
A complete neurologic examination should assess for:
Spasticity
Weakness
Hyperreflexia
Abnormal tone
and other signs of:
Neuromuscular disease.
Ankle Range of Motion
Measure ankle:
Dorsiflexion
with the knee:
Flexed
and
Extended.
Silfverskiöld Principle
Comparing ankle dorsiflexion with the knee flexed and extended helps distinguish:
Gastrocnemius tightness
from combined:
Gastrocnemius-soleus contracture.
Calf Examination
Palpate and inspect the calf for:
Atrophy
Abnormal masses
or
Pseudohypertrophy.
Pseudohypertrophy
Prominent calf enlargement can be a clue to conditions such as:
Muscular dystrophy.
Hamstrings and Adductors
Examine the:
Hamstrings
and
Hip adductors
for abnormal:
Tightness.
This may suggest an underlying:
Neurologic disorder.
Passive and Active Motion
Document both:
Passive
and
Active ankle range of motion.
Testing
Additional investigations are usually unnecessary when the history and physical examination are entirely consistent with:
Idiopathic toe walking.
Neuromuscular Testing
When muscular dystrophy or another myopathic process is suspected, testing may include:
Creatine kinase
and selected:
Genetic studies.
Muscle biopsy is now reserved for selected cases when the diagnosis remains:
Uncertain.
Imaging
MRI of the spine may be appropriate when examination suggests:
Spinal cord pathology
Tethered cord
or another cause of:
Spasticity.
Differential Diagnosis
Important conditions to exclude include:
Cerebral palsy
Muscular dystrophy
Tethered cord syndrome
Hereditary spastic paraplegia
Charcot-Marie-Tooth disease
and
Arthrogryposis.
Cerebral Palsy
Toe walking from cerebral palsy is often accompanied by:
Spasticity
Hyperreflexia
and other abnormalities of:
Motor control.
Muscular Dystrophy
Muscular dystrophy may produce:
Proximal weakness
Gower sign
and
Calf pseudohypertrophy.
Tethered Cord
Tethered cord or other spinal pathology may present with:
New gait abnormality
Weakness
Spasticity
or abnormalities of:
Bladder or bowel function.
Charcot-Marie-Tooth Disease
Charcot-Marie-Tooth disease may cause:
Distal weakness
Pes cavus
and altered:
Gait mechanics.
Treatment
Treatment depends on:
Age
Severity
Ankle range of motion
and whether the child can voluntarily achieve:
Heel-toe gait.
General Measures
Initial management usually consists of:
Observation
Stretching
and
Encouragement of normal heel-toe walking.
Mild Cases
Young children with:
Flexible ankles
and no underlying disorder may simply be:
Observed.
Stretching
Regular stretching of the:
Gastrocnemius-soleus complex
may help preserve or improve:
Ankle dorsiflexion.
Orthotics
Orthotic devices may help guide gait in selected children but, when used alone, do not reliably correct persistent:
Toe walking.
Serial Casting
Serial casting may be used when ankle dorsiflexion is:
Restricted.
Casting Technique
The ankle is gradually positioned into increasing:
Dorsiflexion.
The goal is often to achieve at least approximately:
10° of dorsiflexion
while facilitating development of a:
Heel-toe gait.
Cast Changes
Casts are typically changed approximately:
Weekly
until the desired:
Range of motion
is obtained.
Night Bracing
Night splints holding the ankle in:
Dorsiflexion
may help preserve gains achieved through:
Casting
or
Surgery.
Physical Therapy
Physical therapy may be helpful in children with:
Mild or flexible toe walking.
Range-of-Motion Exercises
Therapy may include:
Passive ankle stretching
and
Active dorsiflexion exercises.
Gait Training
Children who can dorsiflex beyond neutral may practice:
Heel walking
and
Heel-toe gait.
This can reinforce a more typical:
Motor pattern.
Strengthening
Therapy may also focus on strengthening the:
Ankle dorsiflexors
and improving:
Balance and gait control.
Surgery
Surgery is considered when conservative measures fail and persistent:
Achilles contracture
prevents normal:
Heel strike.
Achilles Lengthening
The principal operative procedure is:
Achilles tendon lengthening.
Techniques
Lengthening may be performed using:
Percutaneous
or
Open techniques.
A:
Z-lengthening
is one traditional approach.
Timing
Surgery is generally considered when a child has persistent toe walking approaching the:
School-age years
and fails to develop a functional:
Heel-toe gait.
Goal of Surgery
The objective is to restore sufficient:
Ankle dorsiflexion
to permit normal:
Heel contact during gait.
Avoiding Overlengthening
Excessive Achilles lengthening must be avoided because it may produce:
Weak plantarflexion
and a:
Calcaneal or crouched gait.
Referral
Referral to a pediatric orthopaedic specialist is appropriate when:
Toe walking begins after previously normal gait
or when the child fails to improve by:
Kindergarten or early school age.
Neurologic Referral
Neurology or other specialist evaluation may be required when examination suggests:
Spasticity
Weakness
Developmental delay
or another:
Neuromuscular disorder.
Follow-Up
Children should be reassessed for changes in:
Gait pattern
Ankle dorsiflexion
and
Achilles tendon flexibility.
Prognosis
Many children with idiopathic toe walking spontaneously develop a normal:
Heel-toe gait.
Early Resolution
A substantial number improve by approximately:
3 years of age.
Persistent Toe Walking
Persistent toe walking into adolescence or adulthood may result in:
Metatarsal calluses
Achilles contracture
and impaired:
Balance.
Complications
Important complications include:
Failure to recognize an underlying neurologic disorder
Recurrence after treatment
and complications of:
Achilles lengthening.
Missed Neurologic Diagnosis
The most important diagnostic complication is incorrectly labeling pathologic toe walking as:
Idiopathic.
Recurrence
Toe walking may recur after:
Casting
or
Surgery
particularly if the underlying gait pattern persists.
Achilles Overlengthening
Excessive surgical lengthening can produce:
Plantarflexion weakness
and abnormal:
Calcaneal or crouch gait.
Patient Monitoring
Follow-up should document:
Heel strike
Ankle dorsiflexion
Gait symmetry
Muscle strength
and any emerging:
Neurologic findings.
Clinical Summary
Typical patient: Toddler who has walked on the toes since beginning independent ambulation but otherwise has normal development and neurologic examination.
Key diagnostic principle: Idiopathic toe walking is a diagnosis of exclusion; cerebral palsy, muscular dystrophy, tethered cord, hereditary spastic disorders, and peripheral neuropathy must be considered.
Key examination: Observe gait and measure ankle dorsiflexion with the knee both flexed and extended while performing a complete neurologic examination.
Testing: Usually unnecessary unless the examination suggests a neurologic, spinal, or myopathic disorder.
Natural history: Many children improve spontaneously, particularly by about 3 years of age.
Initial treatment: Observation, Achilles stretching, gait training, and selected physical therapy.
Persistent contracture: Serial casting and night bracing may improve ankle dorsiflexion.
Surgery: Achilles lengthening is reserved for persistent toe walking with fixed equinus that fails conservative management.
Red flag: New-onset toe walking after a previously normal heel-toe gait warrants further investigation.
Key Principle
Idiopathic toe walking is a common childhood gait pattern characterized by forefoot walking without an identifiable neurologic or orthopaedic cause.
It is a:
Diagnosis of exclusion.
Persistent toe walking beyond approximately:
5 years of age, new-onset toe walking, weakness, spasticity, abnormal reflexes, or developmental abnormalities should prompt evaluation for:
Neuromuscular or spinal disease.
Children with flexible ankles often improve with:
Observation, stretching, and gait retraining.
Persistent equinus may be treated with:
Serial casting and night bracing, while:
Achilles tendon lengthening
is reserved for selected children with fixed contracture and persistent functional toe walking.
- Published on
Orthopaedic Surgery - Tibial Torsion
Basics
Tibial torsion describes rotational alignment of the:
Tibia
together with the:
Ankle and foot
either internally or externally around the longitudinal axis of the leg.
Some degree of tibial rotation is part of:
Normal development.
The condition becomes clinically abnormal when rotation is markedly outside the normal range for:
Age.
Definition of Abnormality
Abnormal torsion is often defined as rotational alignment greater than approximately:
Two standard deviations from the age-adjusted mean.
Classification
Tibial torsion may be classified as:
Internal tibial torsion
External tibial torsion
or
Neuromuscular tibial torsion.
Internal Tibial Torsion
Internal tibial torsion produces:
In-toeing
with the foot directed inward relative to the:
Knee.
External Tibial Torsion
External tibial torsion produces:
Out-toeing
with the foot directed outward relative to the:
Knee.
Neuromuscular Torsion
Abnormal tibial rotation may occur with neuromuscular conditions such as:
Cerebral palsy
or
Spina bifida.
Synonyms
Internal tibial torsion may be referred to as:
In-toeing
or historically:
Pigeon-toeing.
External tibial torsion produces:
Out-toeing.
Epidemiology
Abnormal tibial rotation is a common reason for:
Pediatric orthopaedic evaluation.
Age
Internal tibial torsion is most commonly noticed after the child begins:
Walking
and is especially frequent in children younger than approximately:
3 years.
Normal Development
Younger children normally have relatively greater:
Internal tibial rotation.
With growth, the tibia progressively rotates:
Externally.
Sex
No important consistent difference has been demonstrated between:
Boys and girls.
Persistence
Persistent clinically significant torsion occurs in fewer than approximately:
1–2% of children.
Genetics
Internal tibial torsion is believed to reflect a combination of:
Genetic influences
and
Intrauterine positioning.
Family History
A family history of persistent abnormal torsion may influence the likelihood of:
Spontaneous correction.
Etiology
Most idiopathic internal tibial torsion appears to result from normal developmental variation influenced by:
Genetics
and
Fetal position.
Associated Conditions
In infants, internal tibial torsion may coexist with:
Metatarsus adductus
or
Developmental genu varum.
Diagnosis
Diagnosis is primarily:
Clinical.
A careful rotational profile should assess the child from:
Hip to foot.
Signs and Symptoms
Parents commonly become concerned because the child’s walking pattern looks different from that of:
Siblings or peers.
Cosmetic Concern
The principal concern is usually:
Appearance during walking or running.
Tripping
Parents may report:
Frequent tripping
or
Falling.
In young children, however, some of this may simply reflect:
Normal motor development.
Pain
Pain is:
Unusual.
A painful gait suggests that another diagnosis should be:
Considered.
Apparent Limp
Parents may describe a limp, but uncomplicated tibial torsion usually does not produce a true:
Painful limp.
Physical Examination
Examination begins with observation of:
Standing
and
Walking.
Gait
If the child is ambulatory, observe for:
Heel-toe progression
In-toeing
Out-toeing
and
Limp.
Neurologic Warning Sign
Absence of a normal:
Heel-toe gait
may be an early clue to an underlying:
Neuromuscular disorder
such as:
Cerebral palsy.
Foot Progression Angle
The:
Foot progression angle
is the angle between the long axis of the foot and the direction in which the child is:
Walking.
Normal Foot Progression
The normal angle is usually slightly:
External
but there is a broad normal range extending approximately:
15° internally to 15° externally.
Supine Examination
Before focusing on torsion, examine the hips for:
Stability
and
Abduction.
Prone Examination
The child is then placed:
Prone
to evaluate:
Hip rotation
and
Tibial torsion.
The pelvis must remain:
Level and stationary
for accurate measurement.
Femoral Anteversion
Femoral anteversion can be estimated by determining the hip position in which the:
Greater trochanter
is most prominent laterally.
Tibial Torsion Measurement
Tibial torsion is commonly estimated using the:
Thigh-foot angle
or
Transmalleolar axis.
Thigh-Foot Angle
With the child prone and the knee flexed approximately 90°, compare the long axis of the:
Thigh
with the long axis of the:
Foot.
Internal deviation suggests:
Internal tibial torsion.
Bimalleolar Axis
The relationship between the:
Medial malleolus
Lateral malleolus
and the proximal tibia can also estimate:
Tibial rotation.
Foot Examination
The shape of the foot should be assessed carefully because:
Metatarsus adductus
may itself be responsible for:
In-toeing.
Imaging
Imaging is usually:
Not required.
The clinical rotational profile generally provides sufficient information for:
Management.
Pelvic Radiograph
An AP pelvis radiograph is appropriate when there is:
Asymmetric hip abduction
or markedly restricted:
Hip abduction.
In a toddler, abduction below approximately:
60°
raises concern for:
Developmental hip dysplasia.
Foot Radiographs
Foot radiographs may help evaluate suspected:
Metatarsus adductus
when clinical findings are unclear.
Long-Leg Radiographs
Full-length lower-extremity radiographs may be useful when there is associated:
Genu varum
or another:
Angular deformity.
CT
CT can measure tibial rotation accurately but is usually:
Unnecessary
because most childhood torsional abnormalities can be evaluated:
Clinically.
Differential Diagnosis
Important alternatives include:
Blount disease
Excessive femoral anteversion
Metatarsus adductus
Cerebral palsy
and
Developmental dysplasia of the hip.
Blount Disease
Blount disease may combine:
Pathologic genu varum
with
Internal tibial torsion.
Unlike physiologic torsion, it represents a progressive:
Growth disorder.
Femoral Anteversion
Persistent in-toeing in an older child may result from increased:
Femoral anteversion
rather than ongoing tibial torsion.
Treatment
Most cases require:
Observation and reassurance.
General Measures
Internal tibial torsion is the most common cause of in-toeing in children younger than approximately:
3 years.
Natural History
With growth, the tibia normally rotates externally so that by later childhood the:
Lateral malleolus
lies approximately:
20–30° posterior
to the:
Medial malleolus.
Spontaneous Improvement
Almost all children with idiopathic internal tibial torsion demonstrate substantial improvement by approximately:
3–5 years of age.
Parental Education
The most important intervention is often:
Explanation of the natural history.
Parents should understand that most cases improve through:
Normal growth and development.
Braces and Orthotics
Devices such as:
Night splints
Denis Browne bars
Shoe wedges
Special shoes
or
Orthotics
have not been shown to alter the natural rotational development of the:
Tibia.
External Tibial Torsion
Marked external torsion is less likely to correct spontaneously, particularly when it is:
Asymmetric.
Selected persistent cases may eventually require:
Derotational osteotomy.
Persistent In-Toeing
If in-toeing persists or becomes more obvious after approximately:
3–4 years
the cause may increasingly be:
Femoral anteversion
rather than tibial torsion.
Activity
No routine activity restriction is:
Required.
Children may participate normally in:
Play
Sports
and
Physical education.
Physical Therapy
Formal physical therapy generally does not correct:
Bony tibial rotation.
Reason Therapy Is Limited
The natural change occurs over:
Years
rather than over the shorter time frame expected from:
Therapy.
Recreational Activities
Some clinicians encourage activities requiring awareness of foot position, such as:
Ice skating
Roller skating
Track
or
Ballet.
There is little evidence that these activities directly change:
Tibial torsion.
Surgery
The only operation used to correct persistent severe tibial torsion is:
Derotational tibial osteotomy.
Timing of Surgery
Surgery is rarely considered before approximately:
8–10 years of age.
Indications
Surgery may be considered when there is:
Persistent severe rotational deformity
Functional difficulty
or major:
Cosmetic concern
after the age at which spontaneous improvement is expected.
Rotational Thresholds
Historical guidelines suggest considering osteotomy when the:
Thigh-foot angle remains internally rotated by approximately 20° or more
or when external tibial torsion measures approximately:
35° or more.
These values should be interpreted together with:
Symptoms
Function
and
Age.
Neuromuscular Patients
Children with:
Cerebral palsy
have a greater risk of recurrent torsion after:
Early surgery.
Osteotomy Level
Derotational osteotomy is often performed near the:
Distal tibial metaphysis
while avoiding injury to the:
Growth plate.
Postoperative Immobilization
The leg is commonly immobilized in a cast for approximately:
6–8 weeks.
Follow-Up
Observation may be performed:
Annually
or
Every 1–2 years
when parents desire documentation of:
Rotational improvement.
Prognosis
Tibial torsion is usually:
Self-limiting
and represents part of normal:
Childhood development.
Family Alignment
If the parents and older siblings demonstrate normal rotational alignment, spontaneous correction in the child is:
Highly likely.
Familial Persistence
A strong family history of persistent tibial torsion may slightly reduce the probability of:
Complete spontaneous correction.
Arthritis Risk
Isolated idiopathic tibial torsion in childhood has not been shown to produce a significant increased risk of:
Hip
Knee
or
Spinal arthritis.
Complications
Complications are primarily related to:
Surgical treatment.
Surgical Complications
Potential complications include:
Physeal injury
Neurovascular injury
Nonunion
Malunion
and
Implant-related problems.
Patient Monitoring
Follow-up should document:
Foot progression angle
Thigh-foot angle
Hip rotation
and overall:
Gait.
Patient Teaching
Parental education is central to management.
Most children improve naturally without:
Braces
Special shoes
or
Surgery.
Showing families how rotational alignment normally changes with age may provide useful:
Reassurance.
Frequently Asked Questions
When should my child’s tibial torsion improve?
Most children progressively improve during early childhood. Continued observation is appropriate as long as improvement is occurring. Persistent severe deformity after approximately:
8–10 years of age
may justify consideration of surgery if it is functionally or cosmetically important.
Does tibial torsion cause arthritis later in life?
Isolated developmental tibial torsion has not been convincingly shown to increase the risk of:
Hip, knee, or back arthritis.
Clinical Summary
Typical patient: Toddler with painless in-toeing noticed after beginning to walk.
Key examination: Observe gait and measure the foot progression angle and thigh-foot angle while also assessing hip rotation and foot shape.
Most important differential: Femoral anteversion, metatarsus adductus, Blount disease, hip dysplasia, and neurologic disease.
Imaging: Usually unnecessary unless the examination suggests another abnormality.
Natural history: Internal tibial torsion usually improves substantially by 3–5 years of age.
Treatment: Observation and parental reassurance; braces, special shoes, and orthotics do not alter tibial rotation.
Surgery: Rarely required and generally reserved for persistent severe deformity after about 8–10 years of age.
Key Principle
Tibial torsion is usually a developmental rotational variation of the tibia, most often presenting as:
In-toeing in toddlers.
Diagnosis is primarily:
Clinical, using gait observation and measurement of the:
Foot progression and thigh-foot angles.
Most internal tibial torsion resolves spontaneously with:
Growth, and treatment consists primarily of:
Observation and reassurance.
Bracing and special footwear have not been shown to accelerate:
Correction.
Derotational osteotomy is reserved for rare cases of:
Persistent severe symptomatic torsion in older children.
- Published on
Orthopaedic Surgery - Tibial Spine Fracture
Basics
A tibial spine fracture is an avulsion fracture involving the:
Intercondylar eminence of the proximal tibia.
It is also referred to as a:
Tibial eminence fracture.
Anatomy
The:
Anterior tibial spine
provides an important attachment site for the:
Anterior cruciate ligament.
Pediatric Mechanism
In the skeletally immature knee, the ACL may be stronger than the incompletely ossified:
Tibial spine.
Therefore, traumatic force may produce:
Bony avulsion of the tibial spine
rather than a midsubstance:
ACL tear.
ACL Injury in Children
Although tibial spine avulsion is characteristic of the immature knee, children can still sustain:
Midsubstance ACL tears.
Femoral Notch Anatomy
A relatively narrow:
Femoral intercondylar notch
may predispose some children toward:
Midsubstance ACL injury
rather than:
Tibial spine avulsion.
Classification
The classic:
Meyers and McKeever classification
is based primarily on the degree of:
Fracture displacement.
Type I
Type I is:
Minimally displaced or essentially nondisplaced.
The fragment remains near its normal:
Anatomic position.
Type II
Type II is a:
Hinged fracture.
The anterior portion of the fragment is elevated while the posterior portion remains attached, creating an intact:
Posterior hinge.
Type III
Type III demonstrates:
Complete separation of the fragment
with:
Upward displacement
and often:
Rotation.
Epidemiology
Tibial spine fractures are considerably more common in:
Children
than in adults.
Incidence
Historical data suggest that these fractures occur approximately:
Four times more often in children than adults.
Etiology
The injury usually results from forces that tension the:
ACL.
Common Mechanisms
Mechanisms include:
Twisting injury
Varus-valgus stress
and
Hyperextension.
Typical Causes
Common causes include:
Bicycle falls
Athletic injuries
and
Motor vehicle collisions.
Diagnosis
Diagnosis is based on:
Traumatic history
Physical examination
and
Imaging.
Signs and Symptoms
Patients usually report:
Knee pain
after trauma.
Weight Bearing
The patient often refuses or is unable to:
Bear weight.
Swelling and Hemarthrosis
Typical findings include:
Knee swelling
Effusion
and
Hemarthrosis.
Loss of Extension
The patient may lack full:
Knee extension
because the elevated fracture fragment creates a:
Mechanical block.
Physical Examination
The knee should be examined for:
Tenderness
Effusion
Range of motion
and
Stability.
Stability Testing
Gently assess:
Anterior
Posterior
Varus
and
Valgus stability.
In the acute setting, reliable testing may be difficult because of:
Pain
and
Guarding.
Anterior Laxity
Some patients demonstrate increased:
Anterior tibial translation
because the ACL remains attached to the:
Avulsed fragment.
Hemarthrosis
A tense hemarthrosis may significantly increase:
Pain
and limit the examination.
Imaging
Plain Radiographs
Standard:
AP
and
Lateral knee radiographs
are usually sufficient to identify the injury.
Importance of the Lateral View
The fracture is often best appreciated on the:
Lateral radiograph.
The degree of displacement seen on this view forms the basis of the:
Meyers and McKeever classification.
Small Fragments
The avulsed fragment may occasionally be:
Quite small
and can be subtle on:
Plain radiographs.
Additional Views
A:
Tunnel view
or an image oriented parallel to the slope of the:
Tibial plateau
may improve visualization.
MRI
MRI is useful for evaluating associated:
Meniscal
Ligamentous
and
Chondral injuries.
Adults
Adults with tibial spine fractures have a higher incidence of associated:
Meniscal tears
and other injuries that may require:
Operative treatment.
MRI is therefore particularly useful in:
Adult patients.
Pediatric MRI
MRI may also be helpful in children when there is concern for:
Meniscal entrapment
ACL injury
or unexplained failure of:
Closed reduction.
Pathological Findings
The fundamental injury is an:
Avulsion at the tibial attachment of the ACL.
ACL Footprint
The ACL has a broad tibial attachment and may blend with structures around the:
Anterior intercondylar region.
Meniscal Interposition
The:
Anterior horn of the medial meniscus
or other soft tissue may become trapped in the:
Fracture site.
This can prevent successful:
Reduction.
Differential Diagnosis
Important alternatives or associated injuries include:
Isolated ACL injury
PCL injury
MCL injury
LCL injury
Patellar fracture
Patellar tendon rupture
Tibial tubercle fracture
Tibial plateau fracture
and
Meniscal injury.
Treatment
Treatment depends primarily on:
Fracture displacement
Reducibility
Associated injuries
and
Skeletal maturity.
Initial Measures
Initial treatment includes:
Ice
Elevation
and
Immobilization.
Painful Hemarthrosis
If a large hemarthrosis is producing severe pain, aspiration may provide:
Symptomatic relief
and facilitate:
Examination.
Type I Fractures
Type I injuries are usually treated:
Nonoperatively.
Type II Fractures
Type II fractures may also be treated nonoperatively if they can be:
Completely reduced
and remain:
Stable.
Closed Reduction
Reduction is usually attempted by bringing the knee into:
Extension
or slight:
Hyperextension.
This can help restore the avulsed fragment toward its:
Anatomic position.
Immobilization Position
After successful closed reduction, the knee is generally immobilized near:
Full extension
typically around:
0–10° of flexion.
Immobilization Duration
Traditional immobilization is approximately:
6 weeks.
Modern treatment aims to balance fracture healing with avoidance of excessive:
Knee stiffness.
Type III Fractures
Type III fractures usually require:
Operative reduction and fixation.
Reason for Surgery
Surgery helps restore:
Articular anatomy
ACL tension
and
Knee stability.
Irreducible Type II Injury
A Type II fracture that cannot be reduced because of:
Soft-tissue interposition
should also be considered for:
Operative treatment.
Weight Bearing
Selected patients may be allowed:
Protected weight bearing
with the knee immobilized in:
Extension.
Exact weight-bearing status depends on:
Fracture stability
and
Treatment method.
Physical Therapy
Rehabilitation begins after adequate fracture:
Healing and stability.
Range of Motion
Therapy focuses on restoring:
Full knee extension
and progressive:
Flexion.
Strengthening
Progressive strengthening emphasizes the:
Quadriceps
and other muscles supporting:
Knee function.
Medication
Pain after injury may be treated with:
Acetaminophen
NSAIDs when appropriate
or other short-term:
Analgesics.
Surgery
Operative treatment is indicated for fractures that remain:
Displaced
or
Unreduced.
Arthroscopic Treatment
Arthroscopic reduction and fixation has become the preferred approach for many:
Displaced tibial spine fractures.
Advantages of Arthroscopy
Arthroscopy allows:
Direct visualization of the fracture
Removal of interposed tissue
and assessment of associated:
Meniscal or chondral injury.
Open Surgery
Open reduction remains an option when:
Arthroscopic reduction is not possible
or the fracture pattern requires:
Direct exposure.
Reduction
The fragment should be restored to its normal:
Anatomic position.
Any interposed:
Meniscus
Intermeniscal ligament
or other:
Soft tissue
must be removed from the fracture site.
Fixation
Fixation may be achieved using:
Screws
or
Heavy sutures.
Screw Fixation
Screw fixation can provide strong compression when the fragment is:
Large enough.
Suture Fixation
Suture fixation is particularly useful for:
Small
Comminuted
or
Cartilaginous fragments.
Physeal Considerations
In skeletally immature patients, implants should avoid crossing the:
Proximal tibial physis
whenever possible.
Near Skeletal Maturity
Crossing the physis may be acceptable in selected patients who are:
Close to skeletal maturity.
Postoperative Care
Postoperative management commonly includes a period of:
Protected motion
and
Bracing.
Early Motion
Because postoperative stiffness is an important complication, controlled:
Range-of-motion exercises
are generally begun once fixation permits.
Referral
Tibial spine fractures should be evaluated by an:
Orthopaedic surgeon.
Follow-Up
Patients should be followed closely to ensure:
Maintenance of reduction
and
Fracture healing.
Radiographic Follow-Up
Serial radiographs help assess:
Fragment position
and progression toward:
Union.
After Healing
Once the fracture has healed, the knee should be examined for residual:
ACL laxity
and
Functional instability.
Prognosis
When the fragment is anatomically reduced and securely fixed, functional results are generally:
Excellent.
ACL Stability
Most patients recover satisfactory:
ACL function
after successful healing.
Residual Laxity
Some patients retain measurable:
Anterior laxity
despite fracture union.
This may be asymptomatic.
Symptomatic Instability
Persistent symptomatic instability may eventually require:
ACL reconstruction.
Complications
Potential complications include:
Loose bodies
ACL laxity
Knee stiffness
Postoperative infection
and
Venous thromboembolism.
Knee Stiffness
Loss of motion is one of the most important complications, particularly when immobilization is:
Prolonged.
Arthrofibrosis
Severe postoperative stiffness may develop from:
Arthrofibrosis.
Prevention emphasizes:
Stable fixation
and appropriately timed:
Early motion.
ACL Laxity
Residual ACL laxity may result from:
Ligament stretching
Imperfect reduction
or altered:
Ligament tension.
Loose Body
A displaced osseous or osteochondral fragment may remain within the:
Joint
and become a:
Loose body.
Infection
Postoperative infection is uncommon but may involve:
Superficial tissues
or the:
Knee joint.
DVT
Venous thromboembolism is uncommon in children but remains a potential complication, particularly in:
Older or higher-risk patients.
Patient Monitoring
Monitoring should include assessment of:
Pain
Range of motion
Fracture alignment
Knee stability
and
Strength.
Key Principle
A tibial spine fracture is an avulsion fracture of the ACL attachment at the tibial intercondylar eminence, occurring most commonly in the:
Skeletally immature knee.
The classic:
Meyers and McKeever classification
describes Type I minimally displaced, Type II hinged, and Type III completely displaced fractures.
Plain:
AP and lateral knee radiographs
usually establish the diagnosis, while MRI is useful for identifying associated:
Meniscal and ligamentous injuries.
Nondisplaced or successfully reduced Type I and selected Type II injuries may be managed with:
Immobilization, whereas displaced, irreducible, or unstable fractures generally require:
Arthroscopic or open reduction and internal fixation.
The major long-term concerns are:
Knee stiffness, residual ACL laxity, and symptomatic instability.
- Published on
Orthopaedic Surgery - Tibial Shaft Fracture
Basics
A tibial shaft fracture is a fracture involving the:
Diaphysis of the tibia.
It is one of the most common major:
Orthopaedic fractures.
Anatomic Definition
The tibial shaft generally refers to the portion of the tibia extending from approximately:
5 cm distal to the knee joint
to approximately:
5 cm proximal to the ankle joint.
Fractures outside this region are more appropriately classified as:
Proximal tibial
or
Distal tibial fractures.
Clinical Importance
The tibia has relatively limited soft-tissue coverage, particularly along its:
Anteromedial surface.
As a result, tibial shaft fractures have an important association with:
Open injury
Soft-tissue compromise
Compartment syndrome
and
Delayed or nonunion.
Epidemiology
Tibial shaft fractures occur across all age groups but are particularly common in:
Young adults.
Sex
Historically, the highest incidence has been reported among:
Young adult males
because of greater exposure to:
High-energy trauma.
Prevalence
Tibial shaft fracture has historically been described as one of the most common long-bone fractures in:
Young adult men.
Risk Factors
Common mechanisms include:
Motor vehicle collisions
Pedestrian-versus-vehicle trauma
Falls from height
and
Skiing injuries.
Etiology
A substantial amount of energy is usually required to fracture the:
Tibial diaphysis.
The fracture pattern partly reflects:
Magnitude
Direction
and
Rate of application of force.
Rapidly Applied Force
A sudden high-energy force may produce a relatively simple:
Transverse fracture.
Rotational or Slower Energy Transfer
When energy is transmitted through the bone over a longer period or with a rotational component, the fracture may become:
Spiral
Oblique
or
Comminuted.
Associated Conditions
Important associated injuries include:
Compartment syndrome
Fibular fracture
and, less commonly,
Peripheral nerve injury.
Fibular Fracture
An associated fibular fracture is common.
Most fibular fractures do not require separate treatment unless they influence:
Alignment
Ankle stability
or
Surgical strategy.
Compartment Syndrome
Tibial shaft fractures are among the injuries most strongly associated with:
Acute compartment syndrome.
Bleeding and muscle edema may increase pressure within the:
Leg compartments
and compromise:
Muscle and nerve perfusion.
Neural Injury
Major nerve injury is relatively:
Uncommon
but the neurologic examination must be documented carefully.
Diagnosis
Diagnosis is usually straightforward because the injury often produces:
Severe pain
Deformity
and inability to:
Bear weight.
Signs and Symptoms
Patients commonly report:
Severe leg pain
Swelling
and
Inability to walk.
Functional Loss
Most displaced fractures prevent:
Weight bearing
and make movement of the injured leg:
Extremely painful.
Physical Examination
The examination should focus on:
Skin integrity
Alignment
Neurovascular function
and signs of:
Compartment syndrome.
Skin Examination
Carefully inspect the entire leg for:
Lacerations
Puncture wounds
Abrasions
and
Skin tenting.
Open Fracture
Any wound that communicates with the fracture makes the injury an:
Open fracture.
A small skin opening may communicate with a much larger:
Underlying injury.
Deformity
Document:
Angulation
Rotation
Shortening
and gross:
Translation.
Rotational Alignment
Rotational deformity should be compared with the:
Contralateral leg
when possible.
Neurologic Examination
Document motor and sensory function of the major nerves of the:
Lower leg and foot.
Common Peroneal Nerve
Assess:
Ankle dorsiflexion
and
Great-toe extension.
These functions primarily evaluate the:
Deep peroneal nerve.
Tibial Nerve
Assess:
Ankle plantarflexion
and
Toe plantarflexion.
Sensory Testing
Sensation should be examined over the distributions of the:
Superficial peroneal
Deep peroneal
Tibial
Sural
and
Saphenous nerves.
Vascular Examination
Document:
Dorsalis pedis pulse
Posterior tibial pulse
Capillary refill
Skin temperature
and
Foot color.
Compartment Syndrome Assessment
Every patient with a tibial shaft fracture should be repeatedly evaluated for:
Acute compartment syndrome.
Incidence
Historical series have reported compartment syndrome in approximately:
10% of tibial shaft fractures
although the risk varies according to:
Mechanism and fracture pattern.
Most Important Symptom
A key warning feature is:
Pain out of proportion to the apparent injury.
However, because displaced tibial fractures are intrinsically painful, the more concerning finding is pain that is:
Progressively worsening
or unexpectedly severe despite:
Appropriate analgesia and stabilization.
Pain With Passive Stretch
An early and important finding is:
Pain with passive stretch of muscles within the affected compartment.
Toe Motion
Passive movement of the toes may reproduce compartment pain.
For example, passive:
Toe extension
stretches the deep posterior flexor musculature, while passive:
Toe flexion
stretches the anterior compartment extensors.
Important Limitation
Pain with ankle motion may be difficult to interpret because a displaced tibial fracture itself can cause substantial:
Pain.
Serial examination is therefore essential.
Late Findings
Late findings may include:
Sensory loss
Motor weakness
and eventually:
Absent pulses.
Pulse loss is a very late sign and should never be awaited before treatment.
Imaging
Plain Radiographs
Plain radiographs are usually sufficient to establish the diagnosis.
Required Views
Obtain:
AP and lateral radiographs of the entire tibia and fibula.
Adjacent Joints
Imaging should include the:
Knee
and
Ankle
because associated injuries can occur at either end of the bone.
Dedicated radiographs of these joints may be necessary when the initial tibia/fibula images do not adequately show:
Joint anatomy.
CT
CT is not routinely required for an isolated midshaft fracture but may be useful when the fracture extends into the:
Knee
or
Ankle
or when complex anatomy requires further definition.
Compartment Pressure Measurement
If acute compartment syndrome is suspected but the clinical examination is:
Uncertain
or unreliable, intracompartmental pressures may be:
Measured.
Clinical Diagnosis
Compartment syndrome remains primarily a:
Clinical diagnosis.
Pressure measurement should support, not delay, urgent treatment when the diagnosis is:
Clear.
Differential Diagnosis
The fracture itself is usually obvious.
Important issues are determining whether the fracture is:
Open
Pathologic
or associated with another:
Major injury.
Pathologic Fracture
Radiographs should be reviewed for:
Lytic lesions
Abnormal sclerosis
Cortical destruction
or other evidence of an underlying:
Bone lesion.
Open Versus Closed Injury
Careful skin inspection is essential because even a small puncture may convert the injury from:
Closed
to
Open.
Treatment
Treatment depends on:
Open versus closed status
Fracture alignment
Soft-tissue injury
Patient factors
and the ability to maintain:
Reduction.
Initial Stabilization
The injured leg should be:
Immobilized
with adequate:
Analgesia
and repeated:
Neurovascular checks.
Reduction
Grossly displaced fractures may require prompt:
Closed reduction
to restore:
Length
Alignment
and relieve pressure on:
Skin and neurovascular structures.
Closed Fractures
Selected closed fractures may be treated:
Nonoperatively
when acceptable alignment can be achieved and maintained.
Traditional Alignment Criteria
Historical criteria for nonoperative treatment include approximately:
Less than 5–7° of angulation
Less than 1 cm of shortening
and
Less than 15° of rotational deformity.
Modern decisions also consider:
Translation
Patient demands
Fracture stability
and ability to maintain alignment during:
Healing.
Long-Leg Casting
Traditional nonoperative management may begin with a:
Long-leg cast
for approximately:
3–4 weeks.
Functional Bracing
After early fracture stability develops, patients may transition to a:
Functional fracture brace
for an additional:
Several weeks.
Total duration depends on:
Radiographic and clinical healing.
Weight Bearing in Closed Treatment
Weight bearing is often restricted initially during:
Long-leg immobilization.
Progressive:
Weight bearing as tolerated
may be introduced in a functional brace when:
Fracture stability allows.
Open Fractures
Open tibial fractures require urgent:
Antibiotic administration
Tetanus assessment
Surgical irrigation and debridement
and appropriate:
Fracture stabilization.
Debridement
Surgical debridement should remove:
Contaminated
Devitalized
and clearly nonviable:
Tissue.
Open Fracture Classification
Open fractures are often described using the:
Gustilo-Anderson classification.
Type I Open Fracture
Type I generally consists of a relatively small wound with:
Limited contamination
and
Minimal soft-tissue injury.
Type II Open Fracture
Type II involves a larger wound with:
Moderate soft-tissue injury
without the extensive tissue destruction characteristic of:
Type III injuries.
Type III Open Fracture
Type III injuries involve:
High-energy trauma
with severe:
Soft-tissue damage
Contamination
or
Vascular injury.
Type IIIA
Type IIIA injuries have major soft-tissue damage but generally retain enough tissue for:
Bone coverage.
Type IIIB
Type IIIB injuries involve extensive:
Periosteal stripping
and
Soft-tissue loss
often requiring:
Flap coverage.
Type IIIC
Type IIIC fractures include an associated:
Arterial injury requiring repair.
Fixation of Open Fractures
Intramedullary nailing is commonly used for many:
Type I
Type II
and selected:
Type IIIA open fractures.
Severe Open Injuries
External fixation may be preferred initially when there is:
Severe contamination
Extensive soft-tissue loss
Vascular injury
or the need for staged:
Limb reconstruction.
Modern Staged Care
In severe open fractures, treatment frequently involves:
Serial debridement
Temporary external fixation
Soft-tissue reconstruction
and later definitive:
Internal fixation
when appropriate.
Activity
Activity depends on the method of:
Treatment.
Nonoperative Patients
Patients treated in a long-leg cast are usually initially:
Non-weight-bearing
or protected weight bearing.
Functional Brace
Once transitioned to a functional brace, progressive:
Weight bearing
may be permitted if alignment and symptoms allow.
Intramedullary Nail
After stable intramedullary fixation, many fractures can begin:
Early weight bearing as tolerated
depending on:
Fracture pattern
Fixation stability
and surgeon preference.
External Fixation
Patients with severe open fractures managed with external fixation may initially remain at:
Touch-down
or
Protected weight bearing.
Physical Therapy
Rehabilitation depends on:
Fracture stability
and
Treatment method.
Gait Training
Physical therapy assists with:
Crutches
Walker use
and progressive:
Gait training.
Knee Range of Motion
Maintaining knee motion helps prevent:
Stiffness.
Ankle Range of Motion
Ankle motion should also be preserved whenever fixation and soft-tissue conditions:
Permit.
Strengthening
Progressive strengthening is introduced as:
Fracture healing
and weight-bearing status allow.
Medication
Analgesia is required for:
Acute fracture pain.
Pain Control
Treatment may include:
Acetaminophen
NSAIDs when appropriate
and short-term:
Opioid medication
for severe pain.
Open Fracture Antibiotics
Open fractures require prompt:
Systemic antibiotics.
Antibiotic selection depends on:
Open-fracture grade
Contamination
and local:
Trauma protocols.
Surgery
Most displaced adult tibial shaft fractures are treated with:
Intramedullary nail fixation.
Intramedullary Nail
A tibial nail is a:
Load-sharing implant
placed within the:
Medullary canal.
Advantages
Intramedullary fixation provides:
Stable alignment
Preservation of soft tissues
and often allows earlier:
Mobilization and weight bearing.
Locking Screws
Proximal and distal locking screws help maintain:
Length
Rotation
and
Alignment.
External Fixation
External fixation is particularly useful for:
Severe open fractures
Major soft-tissue injury
or
Damage-control orthopaedics.
Plate Fixation
Plate fixation may be selected for certain very:
Proximal
or
Distal shaft fractures
when intramedullary fixation would not provide optimal:
Alignment or stability.
Compartment Syndrome Surgery
Confirmed acute compartment syndrome requires:
Emergency fasciotomy.
Four-Compartment Fasciotomy
Standard decompression releases all four compartments of the leg:
Anterior
Lateral
Superficial posterior
and
Deep posterior.
Follow-Up
Clinical and radiographic follow-up should continue until there is clear evidence of:
Fracture union.
Radiographic Healing
Serial radiographs assess:
Alignment
Callus formation
Hardware integrity
and progression toward:
Union.
Prognosis
Most closed tibial shaft fractures have a:
Good to excellent prognosis.
Lower-Grade Open Fractures
Type I and II open fractures also often achieve:
Good outcomes
when treated promptly and appropriately.
Severe Open Fractures
Type III open fractures carry a more:
Guarded prognosis
because of:
Soft-tissue loss
Infection risk
Vascular injury
and increased likelihood of:
Nonunion.
Complications
Major complications include:
Compartment syndrome
Anterior knee pain
Infection
Delayed union
Nonunion
Malunion
and
Chronic disability.
Compartment Syndrome
The most urgent complication is:
Acute compartment syndrome.
Failure to recognize and decompress the compartments promptly may produce:
Muscle necrosis
Permanent nerve injury
Contracture
and severe:
Functional loss.
Anterior Knee Pain
Anterior knee pain is a common complaint after:
Tibial intramedullary nailing.
Historical series have reported symptoms in up to approximately:
Half of patients.
Rates vary with:
Surgical technique
Entry point
and
Patient factors.
Infection
Infection is especially concerning after:
Open fracture.
Severe infection may progress to:
Osteomyelitis.
Delayed Union
Tibial fractures may heal slowly because of:
Soft-tissue injury
Limited blood supply in some regions
and the severity of:
Trauma.
Nonunion
Nonunion is more common in patients with:
Smoking exposure
Severe open injury
Infection
and certain:
Systemic illnesses.
Smoking
Smoking is a major modifiable risk factor for:
Delayed union
and
Nonunion.
Smoking cessation should be strongly encouraged during:
Fracture healing.
Malunion
Residual:
Varus
Valgus
Procurvatum
Recurvatum
or
Rotational deformity
may impair gait and increase stress on the:
Knee and ankle.
Functional Disability
Severe high-energy injuries may produce prolonged:
Work disability
and limitations in:
Mobility.
Historical series suggest that return to work can be substantially reduced in patients with severe:
Open fractures and major soft-tissue injury.
Patient Monitoring
Patients must be watched particularly closely during the early period for development of:
Compartment syndrome.
Serial Examinations
Repeated assessments should document:
Pain pattern
Compartment firmness
Pain with passive stretch
Motor function
Sensation
and
Perfusion.
Longer-Term Monitoring
Follow-up should also evaluate:
Fracture alignment
Union
Infection
Knee and ankle motion
and return to:
Weight bearing and function.
Key Principle
A tibial shaft fracture is a diaphyseal fracture of the tibia, most commonly produced by substantial trauma and frequently associated with fibular fracture and soft-tissue injury.
Every patient requires careful assessment for:
Open fracture, neurovascular compromise, and particularly acute compartment syndrome.
Plain radiographs of the:
Entire tibia and fibula, including the knee and ankle
are usually sufficient for diagnosis.
Stable, acceptably aligned fractures may be treated with:
Casting followed by functional bracing, whereas most displaced adult fractures are managed with:
Intramedullary nail fixation.
Open fractures require:
Prompt antibiotics, debridement, stabilization, and appropriate soft-tissue management.
The most time-critical complication is:
Compartment syndrome, while important long-term concerns include:
Infection, malunion, delayed union, nonunion, anterior knee pain, and chronic functional limitation.
- Published on
Orthopaedic Surgery - Tibial Plateau Fracture
Basics
The tibial plateau is the:
Proximal weight-bearing articular surface of the tibia.
It articulates with the:
Femoral condyles
to form the:
Knee joint.
The plateau is divided into:
Medial
and
Lateral compartments.
Definition
A tibial plateau fracture is any fracture involving the:
Proximal articular surface of the tibia.
The injury may involve:
One condyle
Both condyles
or separation of the entire articular segment from the:
Tibial shaft.
Clinical Importance
These fractures can disrupt:
Joint congruity
Mechanical alignment
and
Knee stability.
They are also frequently associated with injury to:
Ligaments
Menisci
and other:
Soft-tissue structures.
Schatzker Classification
Tibial plateau fractures are commonly described using the:
Schatzker classification.
Schatzker Type I
Type I is a:
Lateral plateau split fracture.
It consists primarily of a vertical cleavage through the:
Lateral tibial plateau
without substantial:
Articular depression.
Schatzker Type II
Type II is a:
Lateral split-depression fracture.
There is both:
Cortical splitting
and
Depression of the articular surface.
Schatzker Type III
Type III is a predominantly:
Articular depression fracture
of the lateral plateau, traditionally described as a:
Central depression injury.
There may be minimal cortical:
Splitting.
Schatzker Type IV
Type IV involves the:
Medial tibial plateau.
The fracture may or may not involve the:
Intercondylar eminence.
Importance of Type IV Injuries
Medial plateau fractures often result from substantial:
Varus or high-energy force
and may behave like:
Fracture-dislocations.
They have an increased association with:
Neurovascular injury
and
Ligamentous disruption.
Schatzker Type V
Type V is a:
Bicondylar fracture
involving both the:
Medial
and
Lateral tibial plateaus.
Schatzker Type VI
Type VI consists of a plateau fracture with:
Metaphyseal-diaphyseal dissociation.
The entire articular segment is separated from the:
Tibial shaft.
High-Energy Injury
Type VI fractures are commonly produced by:
High-energy trauma.
Associated injuries may involve the:
Chest
Abdomen
Pelvis
Spine
Head
or other parts of the:
Musculoskeletal system.
Neurovascular Risk
Neurovascular injury and:
Compartment syndrome
can occur with any tibial plateau fracture.
The risk is greatest with:
High-energy Type IV, V, and VI injuries.
Associated Soft-Tissue Injury
Tibial plateau fractures frequently occur with significant injury to the:
Menisci
Cruciate ligaments
Collateral ligaments
and
Posterolateral corner.
Historical Soft-Tissue Injury Rates
Advanced imaging studies have reported associated injury to one or more:
Cruciate or collateral ligaments
in up to approximately:
77% of patients.
Meniscal Injury
Historical series have reported:
Lateral meniscal abnormalities in up to 91%
and
Medial meniscal tears in up to 44%.
Posterolateral Corner
Injury to one or more structures of the:
Posterolateral corner
has been reported in as many as approximately:
68% of selected patients.
These figures vary considerably according to:
Fracture pattern and imaging technique.
Epidemiology
Tibial plateau fractures account for approximately:
1% of all fractures.
Older Adults
Among elderly patients, tibial plateau fractures account for a larger proportion of fractures, historically reported at approximately:
8%.
Mechanism in the Elderly
In older adults, these injuries often occur after:
Low-energy falls
because of:
Reduced bone density.
Lateral Plateau Fractures
Isolated lateral plateau fractures are the most common pattern and account for approximately:
55–70%
of tibial plateau fractures in historical series.
Medial Plateau Fractures
Isolated medial plateau fractures account for approximately:
10–23%.
Bicondylar Fractures
Combined medial and lateral plateau fractures account for approximately:
11–31%.
Risk Factors
Risk depends strongly on:
Age
Bone quality
and exposure to:
Trauma.
High-Energy Risk Group
High-energy injuries are more frequent among people exposed to:
Motor vehicle collisions
Pedestrian trauma
Falls from height
and other:
High-velocity mechanisms.
Older Patients
Older adults with:
Osteopenia
or
Osteoporosis
may fracture the plateau after relatively minor:
Falls.
Etiology
The fracture may result from:
Varus force
Valgus force
Axial compression
or a combination of these:
Loading patterns.
Common Causes
Frequent mechanisms include:
Motor vehicle collisions
Pedestrian-versus-vehicle trauma
and
Falls from height.
Sports Causes
Less commonly, injuries result from:
Skiing
Cycling
or other:
Sports-related trauma.
Diagnosis
Diagnosis is based on:
Mechanism
Physical examination
and
Imaging.
Signs and Symptoms
Patients typically present with:
Knee pain
Swelling
and sometimes:
Visible deformity.
Weight Bearing
Patients may be unable to:
Bear weight
or may tolerate only:
Partial weight bearing.
Motion
Knee motion is usually:
Painful
and may be substantially:
Restricted.
Displaced Fractures
Patients with displaced fractures often resist:
Any knee movement
because of severe:
Pain.
Trauma Assessment
High-energy injuries require a complete:
Trauma evaluation
before focusing exclusively on the:
Knee.
Soft-Tissue Examination
Carefully inspect the:
Skin
and
Subcutaneous tissues.
Open Versus Closed Injury
Determine whether the fracture is:
Open
or
Closed.
Any nearby wound should be assumed potentially to communicate with the:
Fracture.
Skin Quality
Look for:
Swelling
Fracture blisters
Tenting
Ecchymosis
and threatened:
Skin necrosis.
Neurologic Examination
Perform a detailed neurologic examination.
The nerve most commonly at risk is the:
Common peroneal nerve.
Peroneal Nerve Function
Assess:
Ankle dorsiflexion
Great-toe extension
and sensation over the:
Dorsum of the foot.
Vascular Examination
Assess:
Dorsalis pedis pulse
Posterior tibial pulse
Capillary refill
and overall:
Limb perfusion.
Asymmetric Pulses
If pulses are diminished or asymmetric, obtain an:
Ankle-brachial index.
Abnormal findings require urgent further assessment and often:
Vascular surgical consultation.
Vascular Imaging
When vascular injury is suspected, evaluation may include:
CT angiography
or other vascular imaging.
Urgent:
Revascularization
may be required if arterial injury is confirmed.
Compartment Syndrome
Every patient should be evaluated for:
Acute compartment syndrome.
Warning Signs
Concerning findings include:
Increasing pain
Pain with passive toe or ankle motion
Tense compartments
and progressive:
Sensory or motor changes.
Ligamentous Examination
Varus and valgus stability may be assessed:
Carefully
when the patient’s pain and fracture pattern permit.
Pseudolaxity
Apparent ligamentous laxity may result from:
Articular collapse
rather than true ligament rupture.
This is termed:
Pseudolaxity.
Imaging
Plain Radiographs
High-quality:
AP
and
Lateral radiographs
are the initial studies.
Radiographic Assessment
Radiographs help identify:
Fracture lines
Condyle involvement
Articular depression
Widening
and
Alignment.
Oblique Views
Oblique radiographs may provide additional information about:
Fracture orientation
but CT has largely replaced them for detailed:
Preoperative assessment.
CT
CT is a critical adjunct in evaluating:
Tibial plateau fractures.
Role of CT
CT helps define:
Articular depression
Comminution
Posteromedial or posterolateral fragments
and overall:
Fracture morphology.
Surgical Planning
CT frequently changes:
Operative strategy
because it more accurately demonstrates the:
Three-dimensional fracture pattern.
CT Technique
Thin-section imaging with multiplanar reconstruction is preferred.
Modern CT protocols are generally more detailed than the historical recommendation for cuts of:
5 mm or less.
MRI
MRI is useful for evaluating associated:
Meniscal
Ligamentous
and other:
Soft-tissue injuries.
Occult Fractures
MRI can also identify:
Nondisplaced or occult fractures
when radiographs are negative but clinical suspicion remains:
High.
Differential Diagnosis
Important alternatives or associated injuries include:
Distal femur fracture
Supracondylar femur fracture
Femoral condyle fracture
Proximal tibial metaphyseal fracture
and
High tibial shaft fracture.
Soft-Tissue Differential Diagnosis
Isolated injuries involving the:
ACL
PCL
MCL
LCL
or
Menisci
may produce similar pain and swelling.
Treatment
Treatment depends on:
Fracture displacement
Articular congruity
Mechanical alignment
Stability
Soft-tissue condition
and
Patient factors.
Initial Measures
Initial management includes:
Ice
Elevation
and
Immobilization.
Bulky Dressing
A bulky dressing with splinting or a:
Well-padded knee immobilizer
can help control:
Pain
and
Swelling.
Nondisplaced Fractures
Stable nondisplaced fractures may often be treated:
Nonoperatively.
Hinged Knee Brace
After the acute swelling decreases, patients may transition to a:
Hinged knee brace.
This permits controlled:
Range of motion
while protecting the:
Fracture.
Weight Bearing
Weight bearing is generally restricted until there is sufficient:
Fracture healing.
The exact duration depends on:
Fracture pattern
Treatment
and
Radiographic progression.
Physical Therapy
Physical therapy focuses on:
Knee range of motion
and
Quadriceps strengthening.
Early Motion
Once the fracture is adequately stabilized, early controlled motion is encouraged to reduce:
Knee stiffness.
Rehabilitation Goals
Therapy progresses toward:
Full knee motion
Restoration of strength
and eventual normalization of:
Gait.
Medication
Acute fractures can produce substantial:
Pain.
Analgesia
Short-term opioid analgesics may be required initially for:
Severe pain.
As symptoms improve, treatment should transition toward:
Nonopioid analgesia
when appropriate.
Surgery
Operative treatment is indicated when the fracture produces unacceptable:
Articular incongruity
Instability
or
Malalignment.
Absolute Indications
Strong indications include:
Open fracture
and associated:
Vascular injury
or other urgent:
Limb-threatening conditions.
Historical Relative Indications
Traditional operative thresholds have included:
Articular step-off greater than approximately 3–5 mm
Condyle tilt greater than 5°
and clinically important:
Varus or valgus instability.
These values are not absolute and should be interpreted together with:
Fracture morphology
Patient age
Soft-tissue status
and
Functional demands.
Floating Knee
A tibial plateau fracture associated with an ipsilateral:
Femoral fracture
may create a:
Floating knee.
This high-energy pattern frequently requires:
Operative stabilization.
External Fixation
External fixation may be:
Temporary
or, in selected circumstances,
Definitive.
Bridging External Fixator
A temporary spanning fixator uses pins in the:
Distal femur
and
Tibial shaft
to stabilize the knee while allowing the:
Soft tissues
to recover.
Role of Temporary External Fixation
It is particularly useful in:
High-energy fractures
with major:
Swelling
Fracture blisters
or
Soft-tissue compromise.
Hybrid External Fixation
A hybrid frame may combine:
Tensioned periarticular wires
with more distal:
Tibial half-pins.
This can provide definitive fixation in selected:
Complex fractures.
Staged Treatment
High-energy fractures are frequently managed using:
Initial spanning external fixation
followed by:
Delayed internal fixation.
Benefit of Staging
Staged management allows time for:
Swelling to decrease
and the:
Soft-tissue envelope
to recover before major surgical exposure.
Internal Fixation
Internal fixation aims to restore:
Articular congruity
Mechanical alignment
and
Knee stability.
Elevation of Depressed Fragments
Depressed articular fragments are carefully:
Elevated
to restore the:
Joint surface.
Bone Graft or Substitute
The metaphyseal void created beneath an elevated fragment may be filled using:
Bone graft
or a:
Bone substitute
to maintain:
Articular support.
Percutaneous Fixation
Selected fractures may be treated with:
Cannulated screws
inserted percutaneously under:
Fluoroscopic guidance.
Limited Open Reduction
Percutaneous fixation may be combined with:
Limited open reduction
to elevate and restore:
Depressed articular fragments.
Arthroscopic Assistance
Arthroscopy may assist with:
Joint-surface visualization
and identification of associated:
Meniscal injury.
Caution With Arthroscopy
Fluid extravasation in a recently fractured limb may increase compartment pressures.
Care must therefore be taken to avoid:
Compartment syndrome.
Buttress Plating
A:
Medial or lateral buttress plate
may be used according to the:
Fracture pattern.
Subchondral Raft Screws
A row of subchondral screws, often called a:
Raft construct
can support the elevated:
Articular surface.
Locking Plates
Anatomically contoured:
Locking plates
can provide strong fixation in:
Comminuted
or
Osteoporotic fractures.
Bicondylar Fractures
Bicondylar injuries may require:
Dual-column fixation
depending on:
Fracture morphology.
Dual Plating
When two plates are used, meticulous soft-tissue handling is essential to avoid excessive:
Periosteal stripping
and devascularization.
Dead Bone Sandwich
Extensive bilateral soft-tissue stripping can compromise bone vascularity, historically described as creating a:
“Dead bone sandwich.”
Modern approaches aim to minimize this complication through:
Careful surgical exposure.
Postoperative Motion
When fixation is sufficiently stable, patients should begin:
Early knee range of motion.
Weight Bearing After Surgery
Weight bearing is delayed until adequate:
Clinical and radiographic healing
is present.
Progression depends on:
Fracture severity
Bone quality
and
Fixation stability.
Follow-Up
Serial clinical and radiographic follow-up is necessary until:
Fracture union.
Prognosis
Tibial plateau fractures range from relatively minor injuries to:
Severe joint-threatening trauma.
Prognostic Factors
Outcome depends on:
Patient age
Initial displacement
Fracture location
Quality of reduction
Mechanical alignment
and associated:
Soft-tissue injury.
Posttraumatic Arthritis
The risk of posttraumatic arthritis increases with:
Articular cartilage injury
Residual incongruity
Malalignment
and
Instability.
Staged High-Energy Treatment
Historical studies of staged treatment using initial:
External fixation
followed by delayed reconstruction have reported relatively low rates of:
Major wound complications
in selected patients.
Functional Outcome
Despite severe initial injury, some patients with high-energy fractures treated appropriately can recover:
Good long-term knee function.
Complications
Potential complications include:
Skin compromise
Infection
Compartment syndrome
Loss of fixation
Malunion
Nonunion
Knee stiffness
Chronic pain
and
Posttraumatic arthritis.
Skin Compromise
High-energy fractures may cause severe damage to the:
Soft-tissue envelope.
Surgery should be timed according to:
Skin condition
rather than radiographs alone.
Infection
Infection risk increases with:
Open fractures
Extensive soft-tissue injury
and overly aggressive surgery through:
Swollen tissues.
Compartment Syndrome
Acute compartment syndrome is a major concern and has historically been reported in up to approximately:
10% of tibial plateau fractures
with higher rates in:
High-energy patterns.
Loss of Fixation
Fixation failure may result from:
Severe comminution
Poor bone quality
or premature:
Weight bearing.
Malunion
Residual:
Varus
Valgus
or abnormal plateau slope may alter:
Knee biomechanics
and contribute to:
Posttraumatic arthritis.
Nonunion
Nonunion is less common than malunion but may occur in:
High-energy
Open
or highly:
Comminuted fractures.
Stiffness
Prolonged immobilization and extensive soft-tissue injury may result in:
Loss of knee motion.
Early controlled rehabilitation helps reduce this risk.
Patient Monitoring
After fixation, patients should be monitored for:
Wound healing
Neurovascular status
Alignment
Fracture union
and restoration of:
Knee motion.
Radiographic Monitoring
Serial radiographs are often obtained approximately:
Monthly during early healing
or according to the treating surgeon’s protocol until adequate:
Union
has occurred.
Key Principle
A tibial plateau fracture is an intra-articular fracture of the proximal tibia that may disrupt joint congruity, mechanical alignment, and knee stability.
The:
Schatzker classification
describes six major patterns ranging from an isolated lateral split fracture to bicondylar and metaphyseal-diaphyseal dissociation injuries.
High-energy fractures require careful assessment for:
Soft-tissue damage, peroneal nerve injury, vascular injury, compartment syndrome, and associated ligament or meniscal injury.
CT is essential for defining:
Fracture morphology and surgical planning, while MRI is useful when detailed assessment of:
Ligaments and menisci
is required.
Stable nondisplaced fractures may be managed with:
Protected non-weight-bearing and hinged bracing, whereas displaced or unstable injuries often require:
Reduction and internal fixation, frequently using a staged protocol when the soft tissues are compromised.
Long-term outcome depends heavily on restoration of:
Articular congruity, limb alignment, knee stability, and early controlled motion.