Fraktur Klavikula
Published on September 10, 2026
Risk Factors
Neonates (macrosomia, shoulder dystocia, instrumented delivery); children and young adults involved in contact sports or cycling; falls onto the lateral shoulder or outstretched hand; direct blow to the clavicle; high-energy trauma in adults
Etiology
Indirect force transmitted through the shoulder from a fall onto the lateral aspect of the shoulder (most common mechanism); direct impact to the clavicle; compressive forces during delivery in neonates
Presentation
Pain localized to the clavicle worsened by arm movement; in neonates, decreased movement of the affected arm (pseudoparalysis) and irritability with handling
Classic Exam
Visible or palpable deformity over the clavicle with focal tenderness, swelling, and ecchymosis; the affected shoulder appears drooped, shortened, and protracted; the patient supports the injured arm with the opposite hand and tilts the head toward the injured side; in neonates, an asymmetric Moro reflex is the hallmark finding
Diagnostics
AP radiograph of the clavicle shows fracture line and displacement; middle-third fractures account for roughly 80% of cases; serendipity view (40-degree cephalic tilt) or CT for medial-third fractures; always obtain a chest radiograph if displaced fracture is near the medial end to rule out pneumothorax or vascular injury
Management
Majority treated nonoperatively with a simple arm sling for 4 to 6 weeks in adults (shorter in children); surgery (open reduction internal fixation with plate and screws) reserved for open fractures, neurovascular compromise, significant displacement or shortening greater than 2 cm, skin tenting, or Neer Type II distal fractures; neonatal fractures require only gentle handling and heal spontaneously
01Pathophysiology
The clavicle is an S-shaped bone that serves as the only bony connection between the upper extremity and the axial skeleton, articulating medially with the sternum (sternoclavicular joint) and laterally with the acromion of the scapula (acromioclavicular joint). It functions as a strut that holds the shoulder girdle away from the thorax and provides attachment for muscles including the sternocleidomastoid, deltoid, and trapezius.
The middle third of the clavicle is its weakest point because it is the thinnest segment and sits at the junction of the two curves of the bone, lacking both the ligamentous support of the medial coracoclavicular and sternoclavicular ligaments and the muscular bulk that protects the lateral and medial ends. This is precisely why approximately 80% of all clavicle fractures occur in the middle third. When a patient falls onto the lateral shoulder, force is transmitted medially through the clavicle, concentrating stress at this vulnerable midpoint.
In displaced middle-third fractures, the sternocleidomastoid muscle pulls the proximal fragment superiorly and posteriorly, while the weight of the arm and the pull of the pectoralis major and deltoid drag the distal fragment inferiorly and medially. This explains the classic presentation of a visible or palpable "step-off" deformity and the patient's drooped, shortened shoulder.
In neonates, the clavicle is the most commonly fractured bone during delivery. The mechanism involves compression of the shoulders in the birth canal, particularly when there is shoulder dystocia or when the infant is large for gestational age (macrosomia). The periosteum in neonates is thick and often incompletely disrupted, producing greenstick fractures that heal rapidly. The infant demonstrates pseudoparalysis, meaning the arm is not truly paralyzed but rather voluntarily held still because movement produces pain. This directly explains why the Moro reflex is asymmetric: the infant does not abduct and extend the affected arm during the startle response because doing so stretches the fracture site.
The proximity of the clavicle to the subclavian vessels and the brachial plexus, which run directly posterior and inferior to the middle third of the bone, means that significantly displaced fractures carry a risk of neurovascular injury. This anatomic relationship is why a thorough neurovascular examination of the upper extremity is mandatory in every clavicle fracture assessment.
02Classification and Clinical Manifestation
Allman Classification (By Location)
GROUP | LOCATION | FREQUENCY | CLINICAL SIGNIFICANCE |
|---|---|---|---|
Group I | Middle third | ~80% | Most common overall; usually heals well with nonoperative management; displaced fractures with shortening >2 cm may benefit from surgical fixation |
Group II | Lateral (distal) third | ~15% | Further classified by Neer system; Type II (medial to coracoclavicular ligaments) is unstable with a high rate of nonunion and often requires surgery |
Group III | Medial (proximal) third | ~5% | Rare; associated with high-energy trauma; posterior displacement can injure great vessels, trachea, or esophagus; CT imaging often required |
Neer Classification (Distal Third Fractures)
TYPE | DESCRIPTION | STABILITY | MANAGEMENT IMPLICATION |
|---|---|---|---|
Type I | Fracture lateral to intact coracoclavicular ligaments | Stable (ligaments hold proximal fragment) | Nonoperative; sling immobilization |
Type II | Fracture medial to coracoclavicular ligaments (ligaments detached from proximal fragment) | Unstable; proximal fragment displaces superiorly | High nonunion rate (~30%); strong indication for surgical fixation |
Type IIA | Both conoid and trapezoid ligaments attached to distal fragment | Unstable | Surgical fixation often recommended |
Type IIB | Conoid ligament torn; trapezoid remains on distal fragment | Unstable | Surgical fixation often recommended |
Type III | Intra-articular fracture extending into the acromioclavicular joint | Variable | Risk of post-traumatic arthritis; may require surgical intervention |
Clinical Manifestation by Population
POPULATION | TYPICAL MECHANISM | FRACTURE PATTERN | DISTINGUISHING FEATURES |
|---|---|---|---|
Neonate | Birth trauma (shoulder dystocia, macrosomia) | Greenstick or complete middle-third fracture | Pseudoparalysis, asymmetric Moro reflex, irritability with dressing changes; callus may be palpable at 1 to 2 weeks |
Child | Fall from playground equipment, bicycle, or sports | Greenstick middle-third fracture | Rapid healing (3 to 4 weeks); extensive remodeling capacity; nonoperative management almost always sufficient |
Adolescent/Adult | Fall onto lateral shoulder during sports; direct blow; cycling accident | Displaced middle-third fracture | Visible deformity, swelling, ecchymosis; evaluate for shortening and neurovascular injury |
Elderly/High-energy | Motor vehicle collision, fall from height | Comminuted or medial-third fracture | Higher risk of associated injuries (rib fractures, pneumothorax, vascular injury); CT often needed |
03Diagnostic Workup
TEST | ROLE | KEY FINDINGS |
|---|---|---|
AP radiograph of the clavicle | Best initial test for all suspected clavicle fractures | Fracture line, displacement, shortening, comminution; identifies the involved third |
15 to 20 degree cephalic tilt view | Supplementary view to better evaluate middle-third displacement | Eliminates overlap of ribs and scapula; better demonstrates vertical displacement |
Serendipity view (40-degree cephalic tilt) | Best initial imaging for suspected medial-third fractures | Evaluates sternoclavicular joint and direction of medial fragment displacement (anterior vs posterior) |
CT scan of the chest/clavicle | Most accurate test for medial-third fractures and surgical planning | Defines fracture geometry, comminution, posterior displacement toward great vessels; essential before surgery on medial-third injuries |
Chest radiograph (PA) | Required adjunct for displaced medial or middle-third fractures | Rules out pneumothorax, hemothorax, or widened mediastinum suggesting vascular injury |
Ultrasound | Useful in neonates | Identifies fracture without radiation; can detect callus formation during follow-up |
Neurovascular examination (clinical, not imaging) | Mandatory in all cases | Evaluate radial pulse, capillary refill, hand sensation (all five nerve territories), and motor function of the upper extremity |
The evaluation of a suspected clavicle fracture begins with a standard AP radiograph of the clavicle, which is the best initial test and is sufficient to confirm the diagnosis in the great majority of cases. The radiograph reveals the fracture line, the degree of displacement or comminution, and the involved third of the clavicle. For middle-third fractures, a 15 to 20 degree cephalic tilt view may be added to better assess the degree of vertical displacement by moving overlying bony structures out of the field.
When a medial-third fracture is suspected, the standard AP view is often inadequate because the sternoclavicular region is obscured by overlapping structures. In this setting, a serendipity view (AP radiograph with 40-degree cephalic tilt) helps determine whether the medial fragment is displaced anteriorly or posteriorly. However, CT scanning is the most accurate test for medial-third fractures and should be obtained whenever posterior displacement is suspected, because a posteriorly displaced fragment can compress or lacerate the subclavian vessels, brachiocephalic vein, trachea, or esophagus.
A chest radiograph should be obtained for all displaced fractures, particularly those involving the medial third or high-energy mechanisms, to evaluate for pneumothorax, hemothorax, or signs of vascular injury. In neonates, ultrasound is a practical and radiation-free alternative for confirming a clavicle fracture and monitoring callus formation.
The clinical neurovascular examination is just as important as the imaging. Every patient with a clavicle fracture must have documented evaluation of the brachial plexus (motor and sensory testing of the upper extremity) and the subclavian/axillary vasculature (radial pulse, capillary refill, upper extremity color and temperature). An absent pulse or expanding hematoma at the base of the neck warrants emergent CT angiography and surgical consultation.
04Management and Treatment
SCENARIO | TREATMENT | DETAILS |
|---|---|---|
Nondisplaced or minimally displaced middle-third fracture (most common scenario) | Arm sling for comfort | Duration: 4 to 6 weeks in adults, 3 to 4 weeks in children; progressive range of motion as pain allows; avoid contact sports until radiographic union and full strength return (typically 8 to 12 weeks) |
Neonatal clavicle fracture | Gentle handling, supportive care | Pin sleeve of the shirt to immobilize the arm loosely; heals spontaneously in 2 to 3 weeks; no sling or figure-of-eight required |
Displaced middle-third fracture with shortening >2 cm, significant comminution, or skin tenting | Open reduction internal fixation (ORIF) with a superior locking plate and screws | Allows anatomic restoration of clavicle length; return to activity at 8 to 12 weeks post-operatively |
Neer Type II distal-third fracture | Surgical fixation (hook plate, suture fixation, or distal locking plate) | High nonunion rate with nonoperative management; surgery restores stability by addressing the detached coracoclavicular ligaments |
Open fracture or neurovascular compromise | Emergent surgical exploration and fixation | Address vascular injury first; debridement and fixation of the fracture; broad-spectrum antibiotics (cefazolin 2 g IV) |
Floating shoulder (ipsilateral clavicle fracture + scapular neck fracture) | Surgical fixation of the clavicle (usually sufficient to restore stability) | Restores the suspensory mechanism of the shoulder; fixation of the scapula is rarely needed if the clavicle is anatomically repaired |
Medial-third fracture with posterior displacement | Closed or open reduction with possible fixation | Posterior displacement threatens great vessels and airway; thoracic surgery standby may be required |
Nonoperative management is the standard of care for the majority of clavicle fractures. A simple arm sling is preferred over the figure-of-eight bandage, as studies have demonstrated equivalent outcomes with better patient comfort and compliance using the sling. The patient is instructed to wear the sling for comfort for the first 2 to 3 weeks, then begin gentle pendulum exercises and progressive range of motion as pain subsides. Full activity and contact sports are restricted until there is radiographic evidence of union and the patient has regained symmetric strength, typically at 8 to 12 weeks.
Pain control consists of acetaminophen (1 g every 6 to 8 hours as needed) and NSAIDs such as ibuprofen (400 to 600 mg every 6 to 8 hours with food). There has been debate about whether NSAIDs impair fracture healing, but current evidence does not support withholding short-course NSAIDs for pain management in clavicle fractures. Opioids should be reserved for breakthrough pain in the acute period only.
Surgical fixation is indicated when nonoperative management is unlikely to achieve satisfactory union or functional outcomes. The clearest indications include: open fractures, neurovascular injury, displacement with shortening exceeding 2 cm, complete displacement with no cortical contact between fragments, skin tenting with threatened breakdown, Neer Type II distal fractures, floating shoulder, and polytrauma patients who need early mobilization. The standard surgical approach for middle-third fractures is ORIF with a precontoured superior locking plate, which provides excellent stability and predictable union rates above 95%.
For neonatal clavicle fractures, the management is exclusively supportive. No immobilization device is necessary beyond gentle handling and pinning the sleeve of the infant's clothing to limit arm movement. Parents should be counseled that a palpable callus (a firm lump at the fracture site) will develop at 1 to 2 weeks and is a sign of normal healing, not a complication. Complete healing occurs within 2 to 3 weeks, and long-term outcomes are uniformly excellent with full remodeling.
05Differential Diagnosis and Distractors
DIFFERENTIAL | WHY IT IS SIMILAR | KEY DISCRIMINATOR |
|---|---|---|
Acromioclavicular (AC) joint separation | Both cause pain and deformity in the shoulder/clavicle region after a fall onto the shoulder | AC separation produces tenderness and a "step-off" at the lateral end of the clavicle over the AC joint, not over the clavicular shaft; cross-body adduction test is positive; radiograph shows widened AC joint space rather than a fracture line through the bone |
Erb-Duchenne palsy (upper brachial plexus injury) in neonates | Both present with decreased arm movement after a difficult delivery | Erb palsy produces a "waiter's tip" posture (arm adducted, internally rotated, forearm pronated, wrist flexed) with true neurologic deficit (absent biceps reflex, weakness of deltoid and rotator cuff); clavicle fracture produces focal tenderness, swelling, crepitus, and a normal neurologic exam; radiograph is confirmatory |
Sternoclavicular joint dislocation | Both can present with medial clavicular pain and deformity after trauma | SC dislocation shows asymmetry at the sternoclavicular joint without a fracture line on the clavicle; posterior SC dislocation can cause dysphagia, dyspnea, or venous congestion of the ipsilateral arm; serendipity view or CT shows joint displacement, not fracture |
Proximal humerus fracture | Both cause shoulder pain and difficulty moving the arm after a fall | Humerus fracture produces tenderness, swelling, and ecchymosis over the proximal arm and deltoid region, not over the clavicle; the clavicle is nontender; shoulder radiograph (not clavicle view) confirms the diagnosis |
Pathologic fracture through a clavicular lesion | Can present as clavicle fracture after minimal or no trauma | History of atraumatic or low-energy mechanism in an older adult should raise suspicion; radiograph may show a lytic or blastic lesion at the fracture site; further workup includes CT, bone scan, and biopsy |
Shoulder contusion or muscular strain | Overlapping pain and limited shoulder motion after trauma | No deformity, no crepitus, nontender clavicle; full passive range of motion is preserved; radiograph is normal |
06Traps and High-Yield Pearls
The single most tested concept around clavicle fractures is the neonatal presentation. A vignette describing a large-for-gestational-age newborn delivered after a prolonged second stage or shoulder dystocia, who now has decreased movement of one arm and an asymmetric Moro reflex, is pointing you toward a clavicle fracture. The trap is selecting Erb palsy instead, which is the most common wrong answer. The discriminator is straightforward: Erb palsy produces a characteristic "waiter's tip" posture with true neurologic findings (absent biceps reflex, weakness in shoulder abduction and elbow flexion), while a clavicle fracture produces focal bony tenderness and crepitus with an intact neurologic examination. If the vignette describes swelling, a palpable lump, or crepitus over the clavicle and does not mention a specific posture or reflex loss beyond the Moro, clavicle fracture is the answer.
A second common pitfall involves the management of Neer Type II distal clavicle fractures. Students often apply the general rule that "clavicle fractures are treated conservatively" and select nonoperative management for all subtypes. However, Type II distal fractures have a nonunion rate approaching 30% with conservative treatment because the coracoclavicular ligaments remain attached to the distal fragment while the proximal fragment is free to displace superiorly. When a vignette describes a fracture of the lateral clavicle with superior displacement of the medial fragment, the correct answer is surgical fixation.
Third, be alert to the vignette that embeds a pneumothorax or vascular injury alongside a clavicle fracture. A patient with a displaced medial-third clavicle fracture who develops dyspnea, decreased breath sounds, or subcutaneous emphysema requires a chest radiograph and potentially CT angiography before any orthopedic intervention. The "next best step" in that scenario is addressing the life-threatening complication, not applying a sling.
Finally, remember that for typical nondisplaced or minimally displaced middle-third fractures in adults, the answer is always a simple sling and not a figure-of-eight bandage. The figure-of-eight bandage appears frequently as a distractor, but contemporary evidence and guidelines favor the sling for better comfort and equivalent outcomes.