Scalp Laceration, Skull Fractures, and Facial Fractures


Algorithm: Scalp laceration, skull Fractures, and facial fractures

Must-Know Essentials: Evaluation of Skull and Maxillofacial Injuries

Airway and C-spine Protection

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    Complex skull and facial injuries are usually complicated by a compromised airway.

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    Contributing factors

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      Head injury with diminished level of consciousness

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      Alcohol, and/or drug intoxication

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      High risk of aspiration

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      Presence of broken teeth, dentures, foreign bodies, avulsed tissues

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      Multiple mandibular fractures

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      Massive edema of glottis

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      Maxillofacial injury where there is constant risk of the displacement of tissue, bleeding, and swelling

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    Consider airway protection and early definitive airway.

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      Nasotracheal intubation is not indicated in comminuted midface or skull base injury.

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      Nasotracheal intubation may be indicated in the injury of lower face, or where mouth opening is inadequate.

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      Traction movements during intubation may increase the risk of bleeding and associated damage.

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      Bag-mask ventilation may be potentially hazardous in Le Fort type II, Le Fort type III, and nasoethmoidal fractures with suspected fracture of the anterior cranial fossa due to risk of:

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        forcing infectious material into a basilar skull fracture.

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        displacing nasal debris and foreign particles into the brain.

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        tension pneumocephalus due to associated dural tear with basilar skull fracture leading to rapid deterioration of neuro status.

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    C-spine protection

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      Complex maxillofacial trauma has a high risk of associated cervical spine fracture.

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      Almost 15% of skull fractures are associated with cervical spine injury.

Circulation

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    Sources of massive bleeding

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      Maxillofacial fractures

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        Cause oral and nasal bleeding

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        Source of bleeding may be from ethmoid artery, ophthalmic artery, vidian branch of maxillary artery

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        Most bleeding is easily controlled, but rarely, severe epistasis from the maxillary artery, may be difficult to control.

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      Skull base fractures, and laceration of pharynx causing oral bleeding

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      Scalp laceration

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    Methods to control bleeding

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      Extraoral/face/scalp laceration

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        Pressure at the bleeding site(s)

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        Repair of laceration

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        Suture ligation of bleeders

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      Nasal bleeding due to maxillofacial fracture

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        Pressure packing: First choice is usually anterior and posterior packing.

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        Balloon tamponade using Foley catheter

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          Balloon tamponade should be used with caution in comminuted midface fracture because it may cause displacement of fractured fragment into orbits and brain.

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        Manual reduction of fractures

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        Selective angioembolization for continued bleeding control with packing

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          Complications

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            Cranial nerve VII palsy

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            Trismus

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            Necrosis of tongue

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            Blindness

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            Migration of emboli into internal carotid, and eventually stroke

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        Direct external carotid artery (ECA) ligation

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          May be ineffective in nasoorbital ethmoidal fracture due to collaterals from the internal carotid artery

Must-Know Essentials: Scalp Laceration

Anatomy of the Scalp

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    Layers of the scalp from superficial to deep

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      S: Skin

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      C: Connective tissue: dense tissue with vessels and nerves

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      A: Aponeurosis: galea (aponeurosis of occipitofrontal muscle)

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      L: Loose areolar tissue: emissary veins (dangerous zone for extracranial and intracranial infections)

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      P: Pericranium

Repair of Scalp Laceration

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    Deep lacerations may result in massive bleeding from the vessels between galea and deep dermal layer, leading to hemorrhagic shock.

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    Galea must be repaired to prevent:

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      facial asymmetry and asymmetrical facial expression in frontal scalp laceration.

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      subgaleal infections leading to diffuse scalp infection.

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    Technique of scalp laceration repair

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      Galea is involved in:

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        single-layer repair including both galea and skin together with sutures.

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        two-layers repair: repair of galea with 3/0 or 4/0 absorbable sutures (Vicryl or Monocryl) followed by skin closure with sutures or staples.

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      Simple scalp laceration

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        Repair with staples or sutures.

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      Significant tissue loss

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        May require Z-Plasty or other plastic surgery techniques

Must-Know Essentials: Skull Fractures

Classification

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    Based on anatomical location

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      Basilar skull fracture

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      Skull vault fracture

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    Based on fracture lines/fragments

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      Linear

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      Comminuted

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    Based on overlying wound

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      Open (compound)

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      Closed

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    Based on degree of displacement

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      Nondisplaced

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      Displaced (depressed)

Complications of Skull Fractures

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    Vascular injuries

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      Arterial dissection, occlusion, or rupture

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      Arterial epidural hematoma (EDH): middle meningeal artery injury in squamous temporal bone fracture

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      Arteriovenous fistula (e.g., caroticocavernous fistula)

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      Dural venous injury

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      Venous EDH

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      Dural venous sinus thrombosis

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        Common in patients with fractures extending to a dural venous sinus or the jugular foramen

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    Cerebral hemorrhagic contusion

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    Extension through cranial nerve foramina or canals with neural damage

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    Dural tear leading to cerebrospinal fluid (CSF) leak and intracranial hypotension

Specific Skull Fractures

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    Linear skull fracture

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      Most common

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      Involves full thickness of the skull from the outer to the inner table

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      Complications

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        Suture diastasis

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        Venous sinus thrombosis

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          If fractures involve venous sinus groove

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          Frontal bone fracture associated with frontal sinus thrombosis

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        Epidural hematoma

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          If fracture involves vascular channels

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          Temporal bone linear fracture commonly associated with middle meningeal artery causing EDH; rare in elderly, likely due to adherence of dura to the bone

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        Cerebral contusion

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        Subarachnoid hemorrhage

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    Depressed skull fracture

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      Bone fragments depressed inward into the cerebral parenchyma

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      High risk of associated injuries to the meninges, blood vessels, and brain

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      Complications

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        High incidence of compound fractures

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        Seizures

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        Neurological deficit

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        Intracranial hematoma

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        Venous sinus thrombosis

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    Diastatic fracture

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      Fracture through the sutures of the skull

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      Common in infants and children under age 3 where sutures are not fused.

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      In adults

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        Usually caused by severe injuries

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        Mainly affects the lambdoidal suture because this suture fuses late

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        May cause widening of the suture and collapse of the surrounding bones

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    Basilar skull fractures

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      Linear factures at the base of the skull

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      Common in severe head injury

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      Manifestations/complications of basilar skull fractures

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        Anterior cranial fossa

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          CSF rhinorrhea due to dural tear

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          Periorbital ecchymosis (raccoon eyes) due to blood leakage from the fracture site

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          Blood in the sinuses

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        Middle cranial fossa

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          Retroauricular ecchymosis (Battle sign) due to bruising of the mastoid process

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          CSF otorrhea: cerebrospinal fluid leak from the ear due to tear in dura

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          Otorrhagia: bleeding from external acoustic meatus

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          Sensorineural hearing loss

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          Facial palsy due to facial (cranial nerve VII) injury

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      Posterior cranial fossa

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        Occipital condyle fracture

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          Asymmetry in tongue protrusion due to cranial nerve XII injury

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        Clivus fracture

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          Most anterior portion of the basilar occipital bone

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          Problem with abduction of eye movement due to cranial nerve VI palsy.

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        Transsphenoidal basilar fracture

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          Internal carotid artery injury

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          Carotid-cavernous fistula

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          Cranial nerve injury including optic cranial nerve injury (cranial nerve II), oculomotor (cranial nerve III), trochlear (cranial nerve IV), and abducens (cranial nerve VI)

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          High incidence of dural tear with CSF leak

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          Cerebral venous thrombosis involving dural venous thrombosis, cortical vein thrombosis, and deep cerebral vein thrombosis

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    Compound skull fracture

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      Associated with:

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        scalp laceration.

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        CSF otorrhea or rhinorrhea due to meningeal tear.

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        involvement of paranasal sinuses.

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        intracranial air (pneumocephalus).

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      High risk of meningitis

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    Temporal bone fracture

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      Fracture of squamous part may cause epidural hematoma due to middle meningeal artery injury.

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      Features of fracture of the Petrous part

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        Retroauricular ecchymosis (Battle sign) due to bruising of the mastoid process

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        CSF otorrhea: cerebrospinal fluid leak from the ear due to tear in dura

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        Otorrhagia: bleeding from external auditory canal

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        Injury to ear ossicles leading to deafness

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        Facial palsy due to facial (cranial nerve VII injury

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        Trigeminal nerve (cranial nerve V) injury: Fracture of the tip of the petrous temporal bone may involve the Gasserian ganglion of the trigeminal nerve.

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        Injury to otic capsule

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          Sensorineural hearing loss

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          Vestibular dysfunction including vertigo, and balance disturbance

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        Posttraumatic cholesteatoma

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      Computed tomography (CT) of the temporal bone is the imaging of choice.

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    Occipital condyle fracture

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      May cause lower cranial injuries including glossopharyngeal nerve (IX), vagus nerve (X), accessory nerve (XI), and hypoglossal nerve (XII)

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      May have associated cervical spine fracture

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      May be unilateral or bilateral

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      May result in occipitocervical dissociation (atlantooccipital dislocation)

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        Occipital condyle articulates with lateral mass of C1 (atlas) vertebra, which is stabilized by:

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          atlantooccipital joint capsule ligament (anterior and posterior atlantooccipital ligaments)

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          lateral atlantooccipital ligaments

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          alar ligaments (dens to each occipital condyle)

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          apical dental ligament

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      CT scan is the best imaging for the evaluation of fracture.

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      MRI is recommended to evaluate spinal cord and ligament injuries.

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      Classification

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        Based on the mechanism of injury (Anderson and Montesano classification)

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          Type I

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            Nondisplaced comminuted

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            Impaction fracture of occipital condyle

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            Associated with axial compression injury

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            Stable fracture

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          Type II

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            Basilar skull fracture extending into occipital condyle

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            Associated with direct blow to lower skull

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            Stable injury

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          Type III

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            Condylar avulsion fracture at the alar ligament attachment

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            Caused by forced contralateral bending and rotation

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            Potentially unstable injury

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        Clinical classification (Tuli classification):

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          Type I: nondisplaced fracture; does not require stabilization

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          Type II: displaced fracture

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            IIA: no ligamentous instability; treated with external stabilization

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            IIB: ligamentous instability; should be treated with surgical fixation

Management of Skull Fractures

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    Nonoperative management

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      Nondisplaced linear fractures of the vault of skull in neurologically intact patients

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      Linear basilar fractures in neurologically intact patients

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      Depressed fracture over the venous sinus in neurologically intact patient

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      Depressed skull fractures with depressed segment <5 mm below the inner table of adjacent bone

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      Temporal bone fractures

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      Types I and II (Anderson and Montesano classification) occipital condyle fractures; external stabilization with cervical collar

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    Operative management: indications

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      Depressed fractures

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        With cosmetic deformity, such as forehead fracture

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        Depression greater than the depth of the adjacent inner table

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        Depressed segment >5 mm below the inner table of adjacent bone

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          Due to increased incidence of dural injury

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          Reduces incidence of posttraumatic seizures

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        Significant underlying hematoma

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        Open depressed skull fracture

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        Fracture over the venous sinus usually treated nonoperatively due to risk of uncontrolled bleeding but should be operated in neurologically unstable patient

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      Any type of open (compound) skull fracture will significant contamination

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      Fractures with pneumocephalus due to dural tear

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      Basilar skull fracture with persistent CSF leak after failed nonoperative management

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      Temporal bone fracture

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        Immediate facial nerve injury

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          Delayed onset or incomplete facial paralysis almost always resolves with nonoperative treatment including corticosteroids.

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        Hearing loss

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        Vestibular dysfunction

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        CSF leakage

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      Occipital fractures

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        Type III (Anderson and Montesano classification) or Type IIB (Tuli classification): occipitocervical fusion

Must-Know Essentials: Midface Le Fort Fractures

Classification

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    Le Fort type I fracture

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      Transverse fracture just above the alveolar ridge of the upper teeth

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      Causes separation of hard palate from the maxilla, causing floating palate

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      Fracture lines involve:

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        pterygoid plates just above the floor of the nose.

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        inferior nasal septum.

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        lateral bony margin of the nasal opening.

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        medial and lateral walls of the maxillary sinus

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    Le Fort type II fracture

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      Pyramidal fracture through the nasofrontal suture, nasal bones, medial-anterior orbital wall, orbital floor, inferior orbital rims, posterior maxilla, and pterygoid plates

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      Causes floating maxilla

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    Le Fort type III fracture

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      Transverse fracture of the midface that results in craniofacial dissociation, leading to floating face

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      Separates the maxilla from the skull base

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      Fracture line passes through the nasofrontal suture, medial orbital wall, zygomaticofrontal suture, zygomatic arch, maxillofrontal suture, and pterygoid plates.

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      Within the nose, the fracture extends through the base of the perpendicular plate of the ethmoid air cells, the vomer, and both parts of the nasal septum.

Complications

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    Le Fort type I fracture

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      Mobile palatomaxillary segment

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      Palatal mucosal laceration

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      Dislocation of maxillary teeth

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      Malocclusion

    Classification of Le Fort fractures. Source: C. Edibam & H. Robinson, Chapter 78: Maxillofacial and upper-airway injuries, in A. D. Bersten & J. M. Handy (Eds.), Oh’s intensive care manual (8th ed.), Elsevier, 2018

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    Le Fort type II fracture

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      Injury to infraorbital nerve, resulting in reduced sensitivity in the frontal teeth, upper lip, cheek, and skin of the lateral nose

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    Le Fort type III fracture

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      Oral and nasal bleeding

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      Malocclusion

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      Orbital edema

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      CSF rhinorrhea

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      V2 branch of trigeminal nerve injury

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      Olfactory nerve injury

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