Trace visual, ocular motor, facial and lower cranial nerve pathways to localize deficits, distinguish shared spaces and recognize urgent clinical patterns.
A drooping eyelid, a weak smile and a hoarse voice each narrow the examination, but none identifies the cause by itself. Cranial nerve localization works when you connect the failed function to its pathway, then ask which neighboring structures share the same space.
Localize first, then test the explanation against every finding. Pupil sparing does not guarantee a benign third nerve palsy, and weakness of the entire face does not automatically mean Bell palsy.
Start with function and the route out of the skull
For each nerve, ask what the person cannot sense or do. Then examine a second function traveling nearby. CN I conveys smell through the cribriform plate. CN II carries retinal output through the optic canal. III and IV arise in the midbrain; V enters the pons; VI, VII and VIII are associated with the pontomedullary region; IX, X and XII attach to the medulla. The spinal component of XI begins in the upper cervical cord, enters through the foramen magnum and leaves through the jugular foramen. Nuclear, fascicular and extracranial lesions therefore produce different combinations. [1][19]
Skull exits organize neighboring deficits
Passage
Relevant travelers
Useful combination
PassageSuperior orbital fissure
Relevant travelersIII, IV, V1, VI
Useful combinationOphthalmoplegia and forehead or corneal sensory loss
PassageForamen rotundum
Relevant travelersV2
Useful combinationCheek and upper dental sensation
PassageForamen ovale
Relevant travelersV3
Useful combinationLower facial sensation and mastication
PassageInternal acoustic meatus
Relevant travelersVII, VIII
Useful combinationFacial and auditory or vestibular findings
PassageJugular foramen
Relevant travelersIX, X, XI
Useful combinationPharyngeal, voice and shoulder findings
PassageHypoglossal canal
Relevant travelersXII
Useful combinationIpsilateral tongue motor deficit
The table is a map of shared passages, not a rule that every lesion must injure every traveler. A small lesion can produce an incomplete syndrome. [1]
I, II and VIII are sensory nerves; III, IV, VI, XI and XII primarily supply motor functions. V, VII, IX and X carry both sensory and motor components, including the autonomic functions specified below. Test smell with a familiar nonirritating odor in each nostril. Irritants can stimulate trigeminal sensation and are poor substitutes for an olfactory test.
Anosmia after head trauma can reflect injury near the cribriform plate. Lifelong impaired smell plus absent puberty suggests Kallmann syndrome, linking olfactory development to gonadotropin-releasing hormone neuron migration. A new combination of anosmia, ipsilateral optic atrophy and contralateral papilledema suggests a mass producing Foster-Kennedy syndrome and warrants imaging. These are different mechanisms behind the same initial smell complaint. [1][22][23]
Try it here · Checkpoint 1 of 3
Make your prediction before reading the choices. A first attempt is just a starting point.
Case 16
Show answer and explanations for case 16
A. Right V1 through the superior orbital fissure (Why this does not fit)
V1 supplies the forehead and corneal territory, which are preserved.
B. Right V3 through foramen ovale (Why this does not fit)
V3 supplies the lower facial territory and mastication, both preserved here.
C. Right VII through the stylomastoid foramen (Why this does not fit)
VII chiefly supplies facial expression at that exit rather than cheek and dental general sensation.
D. Right V2 through foramen rotundum (Best answer)
V2 supplies the cheek and upper teeth and is sensory, fitting the preserved mastication.
Takeaway: Map trigeminal sensory territory before naming a skull passage.
Separate visual input from the pupil's motor output
The optic nerve carries information into the pupil reflex; the oculomotor parasympathetic pathway drives constriction through the ciliary ganglion. With a unilateral afferent defect, illuminating the affected eye produces less constriction in both pupils than illuminating the better eye. With an isolated parasympathetic III defect, the affected pupil cannot constrict normally regardless of which eye receives light. The swinging flashlight test compares input, not simply pupil size. [1][3]
Visual fields cross by retinal half
Before the chiasm
Left optic nerve injury affects the left eye's vision. The right eye has a separate optic nerve.
At the chiasm
Crossing nasal retinal fibers carry the temporal visual fields. Midline compression can therefore cause loss of the outer field in both eyes.
Behind the chiasm
The right retrochiasmal pathway carries the left visual hemifield from both eyes. A lesion can cause a left homonymous field defect.
Read the patient's visual field, not the name of the retinal half, when naming the deficit. A pituitary mass compressing the chiasm classically causes bitemporal, not binasal, loss. [8]
Optic neuritis often causes subacute monocular visual decline, impaired color perception and pain with eye rotation, with a relative afferent pupillary defect when involvement is asymmetric. The disc can appear normal if inflammation is retrobulbar. This is an optic neuropathy pattern, not proof of multiple sclerosis. Clinical assessment and appropriate imaging investigate the cause. In typical demyelinating optic neuritis, corticosteroids can accelerate visual recovery without improving the final visual outcome demonstrated in the Optic Neuritis Treatment Trial.
That result should not be generalized to every inflammatory optic neuropathy; the suspected cause and specialist assessment determine treatment. Papilledema specifically means disc swelling from raised intracranial pressure; it is not interchangeable with every swollen disc. [9][24]
A complete III palsy produces ptosis and an eye resting outward and downward because lateral rectus and superior oblique retain their innervation. Pupillary dilation increases concern for compression, including a posterior communicating artery aneurysm. Diabetes can cause a microvascular palsy, often with pupil sparing, but preserved pupil function cannot exclude compression. Acute acquired III palsy needs prompt assessment and imaging rather than a diabetes-based assumption.
Thunderclap headache or a newly dilated pupil makes emergency vascular assessment especially pressing. Horner syndrome instead reflects sympathetic pathway dysfunction: mild ptosis with a small pupil, sometimes with reduced facial sweating. The pupil remains capable of parasympathetic constriction. The associated findings and onset determine where to investigate the sympathetic pathway. [19][3][4]
Use eye position to distinguish muscle, nerve and connection
Most extraocular muscles receive III. Lateral rectus receives VI and abducts the eye. Superior oblique receives IV, intorts the eye and is especially useful for depressing an adducted eye. The inferior oblique extorts, rather than intorts. The superior rectus also intorts while raising the eye. Test vertical muscles with the eye in the position that separates their actions instead of treating each muscle as a single-direction arrow. [2]
A right IV palsy typically gives right hypertropia that is worse in left gaze and on right head tilt. Tilting away can reduce diplopia. On right tilt, normal compensatory intorsion recruits the right superior oblique and superior rectus; weak superior oblique leaves the superior rectus's upward action relatively unopposed. A longstanding childhood head tilt or unusually large vertical fusion range favors a decompensated congenital palsy.
Trauma is another important cause. The IV nerve exits dorsally, crosses before emerging and has the longest intracranial course. A nuclear lesion affects the contralateral superior oblique; a peripheral nerve lesion affects the ipsilateral muscle. [5]
A VI nerve palsy causes impaired abduction with horizontal binocular diplopia, usually worse at distance and toward the affected side. Its course near the clivus and petrous apex makes it vulnerable to pressure-related displacement. Raised intracranial pressure can cause unilateral or bilateral VI palsy as a false localizing sign, but bilateral palsies do not prove that cause. A VI nuclear lesion can impair conjugate gaze toward the lesion; an isolated peripheral VI lesion chiefly weakens one lateral rectus. [6]
Follow the signal for rightward gaze
Right pontine gaze system activates the right VI nucleus
Motor neurons activate the right lateral rectus so the right eye abducts.
VI interneurons cross and ascend in the left MLF
This connection reaches the left III medial rectus pathway.
Left medial rectus adducts the left eye
A left MLF lesion interrupts this part of conjugate rightward gaze.
Left internuclear ophthalmoplegia means impaired left adduction on right gaze, often with right abducting nystagmus. Convergence may remain intact, but preserved convergence is not required in every case. The diagram represents pathway direction, not physical scale. [7]
INO localizes a connection, not a disease. Demyelination and stroke are important causes, but the patient's age alone cannot diagnose either. A complete III palsy includes a different set of deficits, such as ptosis and impaired vertical actions, rather than an isolated failure of adduction during conjugate gaze.
Trace sensation and expression separately
V1 supplies the forehead and cornea, V2 the cheek and upper teeth, and V3 the lower face and general sensation from the anterior tongue. V3 also supplies muscles of mastication. With unilateral pterygoid weakness, the jaw deviates toward the weak side on opening. Anterior tongue touch and anterior tongue taste travel through different cranial nerve systems; taste fibers from VII join the lingual nerve for part of their route. [1][2]
Corneal reflex is an input-output comparison
Left V1 afferent failure
Touching the left cornea does not trigger either blink. Touching the right cornea triggers both blinks if both VII pathways work.
Left VII efferent failure
The left eyelids do not close after either cornea is stimulated. The right eyelids can close after stimulation of either intact corneal input.
The pattern assumes an isolated lesion and otherwise intact reflex circuitry. Compare both stimulus sides and both responses. [1][19]
Brief electric facial pain provoked by chewing, toothbrushing or light touch suggests trigeminal neuralgia. The pain commonly follows V2 or V3. Vascular compression can damage the nerve's myelin, helping explain abnormal trigeminal signaling. [30] Carbamazepine is a standard initial medicine, with oxcarbazepine an alternative. MRI evaluates neurovascular compression and secondary causes; younger onset, bilateral symptoms or sensory loss deserve particular attention.
A vascular contact alone must be interpreted with the clinical syndrome. Secondary causes include multiple sclerosis and tumors. If medication is ineffective or poorly tolerated, discuss surgical options; microvascular decompression is considered for demonstrable neurovascular compression in a patient fit and willing to undergo the procedure. [14]
VII innervates facial expression. A supranuclear lesion often causes contralateral lower facial weakness with relative forehead preservation because upper facial motor input is bilateral. A facial nucleus, fascicle or peripheral VII lesion can weaken the ipsilateral upper and lower face. Therefore, whole-face weakness describes a lower motor neuron pattern, not the cause or whether the lesion is inside the brainstem. Associated gaze or limb findings can expose a pontine lesion. [19]
VII gives off branches before reaching facial muscles
Within the temporal bone, the greater petrosal pathway carries parasympathetic fibers for lacrimation through the pterygopalatine ganglion.
The nerve to stapedius supports dampening of sound transmission. Its dysfunction can produce hyperacusis.
Chorda tympani carries anterior tongue taste and parasympathetic fibers for submandibular and sublingual glands.
The main motor trunk exits the stylomastoid foramen and branches toward facial expression muscles.
A proximal lesion can affect several functions. An isolated distal motor lesion may spare taste, stapedius and lacrimal output. Real lesions can be partial; these are branch relationships, not a guarantee of every symptom. [1]
Bell palsy is an acute idiopathic peripheral facial palsy after alternative causes are considered. For eligible patients aged 16 or older, oral corticosteroids within 72 hours and eye protection for incomplete closure are core treatment. An antiviral can be offered with steroids; it is not mandatory for every case and should not be used alone. Severe ear pain with vesicles suggests VZV-associated Ramsay Hunt syndrome. Epidemiologic exposure with facial palsy, sometimes bilateral, can suggest Lyme disease and prompt appropriate serology and antibiotics. These diagnoses cannot be supplied by facts absent from the history. [11][13][12]
Try it here · Checkpoint 2 of 3
Make your prediction before reading the choices. A first attempt is just a starting point.
Case 18
Show answer and explanations for case 18
A. Bilateral optic nerve disease (Why this does not fit)
The corneal reflex uses trigeminal input rather than optic input.
B. Left V1 afferent deficit (Best answer)
Left corneal input fails to trigger either side, while right input demonstrates that both facial motor outputs can work.
C. Left VII efferent deficit (Why this does not fit)
That would prevent left eyelid closure regardless of which cornea was touched; the left eye closes with right stimulation here.
D. Right VII efferent deficit (Why this does not fit)
The right eye demonstrably blinks after right corneal stimulation, contradicting this isolated output lesion.
Takeaway: Change the stimulus side to distinguish afferent failure from motor failure.
VIII contains cochlear and vestibular components. Progressive unilateral sensorineural hearing loss, tinnitus and imbalance warrant assessment for retrocochlear disease, including vestibular schwannoma. Larger cerebellopontine angle lesions can involve V or VII, but there is no fixed tumor size at which facial weakness must appear. Bilateral vestibular schwannomas suggest NF2-related schwannomatosis, the current name for the condition historically called neurofibromatosis type 2. NF2 encodes the tumor-suppressor protein merlin on chromosome 22. Associated findings can include meningiomas, ependymomas and early cataracts. Management depends on hearing, growth, size, symptoms and patient priorities. [15][16]
Brief positional vertigo with a characteristic posterior-canal response on Dix-Hallpike testing supports BPPV and treatment with canalith repositioning. Observation with planned follow-up is also an accepted initial BPPV option. Reassess within one month after observation or treatment. [28] Continuous acute vertigo is a different presentation. Vestibular neuritis classically lacks new hearing loss; labyrinthine disease can include hearing symptoms. [25] Neither a recent viral illness nor a hearing complaint safely excludes stroke. Acute vestibular syndrome requires appropriate assessment; HINTS is for the suitable syndrome when performed by a trained clinician, not a general screening test for every dizzy patient. [17][18]
Three nearby spaces with overlapping eye findings
Location
Structures that may be involved
Useful extension
LocationSuperior orbital fissure
Structures that may be involvedIII, IV, V1, VI
Useful extensionOptic nerve function is relatively preserved in a lesion limited to the fissure.
LocationOrbital apex
Structures that may be involvedOptic nerve plus neighboring ocular motor and V1 pathways
Useful extensionOptic neuropathy with ophthalmoplegia increases concern for the apex.
LocationCavernous sinus
Structures that may be involvedIII, IV, V1, V2, VI, internal carotid artery and sympathetic fibers
Useful extensionV2 loss supports this location, but spared V2 does not exclude a partial cavernous lesion.
Within the cavernous sinus, VI runs near the carotid artery; III, IV, V1 and V2 travel in its lateral wall. VII, IX and X are not cavernous sinus contents. Hoarseness cannot be explained by an isolated lesion there. [10][1]
Painful ophthalmoplegia is a syndrome requiring a cause. Thrombosis, fistula, tumor and inflammatory disease can affect the cavernous region. Pituitary apoplexy can produce acute headache, visual loss and ocular palsies and requires emergency assessment. In uncontrolled diabetes, invasive fungal disease becomes particularly concerning with sinus symptoms, necrotic tissue, proptosis or rapidly progressive orbital findings. Diabetes plus diplopia alone does not establish mucormycosis. Steroid responsiveness alone does not establish Tolosa-Hunt syndrome. ICHD-3 requires a compatible clinical pattern and granulomatous inflammation demonstrated by MRI or biopsy, without a better explanation; infection, vascular disease and malignancy must be considered. [26][10][21]
Use palate, shoulder and tongue to distinguish medulla from skull base
IX is not purely sensory. It carries posterior tongue taste and pharyngeal sensory input, supplies stylopharyngeus and provides parasympathetic output to the parotid through the otic ganglion. Carotid sinus and body afferents also travel through IX. X supplies most palatal, pharyngeal and laryngeal muscles and carries parasympathetic output to thoracic and abdominal viscera. The usual gag framework is IX afferent and X efferent, but an absent gag in isolation is not a complete assessment of swallowing safety. Observe palate, voice and swallowing and investigate aspiration concern directly. [1][2][20]
With a unilateral lower motor neuron X lesion, the ipsilateral palate is weak and the uvula is typically drawn toward the stronger side. Hoarseness points to laryngeal involvement. The superficial course of XI across the posterior neck triangle makes it vulnerable during procedures there. XI weakness reduces ipsilateral shoulder shrug and the sternocleidomastoid's ability to turn the head toward the opposite side.
XII supplies intrinsic and most extrinsic tongue muscles; palatoglossus receives X through the pharyngeal plexus. A peripheral XII lesion causes ipsilateral weakness, with the protruded tongue pointing toward the weak side; atrophy and fasciculations support a lower motor neuron process. [1][2]
Crossed findings can place the lesion in the brainstem. In lateral medullary syndrome, ipsilateral facial pain-temperature loss accompanies contralateral body pain-temperature loss, with possible ipsilateral Horner syndrome, ataxia and nucleus ambiguus-related dysphagia or hoarseness. Vertebral or posterior inferior cerebellar artery territory ischemia is an important cause. A jugular foramen lesion instead groups IX, X and XI without requiring the crossed body sensory pattern. XII travels through a separate canal, so its addition suggests a broader lesion. [19][20][1]
Bulbar weakness from motor nuclei or nerves may include atrophy and fasciculations. Pseudobulbar dysfunction reflects bilateral corticobulbar disease and can include spastic speech and a brisk jaw jerk. Involuntary disproportionate crying or laughing can coexist, but does not by itself establish corticobulbar localization. [31][29] Motor neuron disease can produce both patterns and may begin asymmetrically. [27] Do not exclude it merely because early tongue findings are unilateral. Conversely, an isolated progressive XII palsy deserves imaging along its anatomical course rather than an automatic motor neuron disease diagnosis. [19][20]
Try it here · Checkpoint 3 of 3
Make your prediction before reading the choices. A first attempt is just a starting point.
Case 36
Show answer and explanations for case 36
A. Left cavernous sinus (Why this does not fit)
It neither explains the crossed body sensory pattern nor contains the lower cranial motor structures for hoarseness.
B. Isolated right recurrent laryngeal nerve (Why this does not fit)
That could affect voice but cannot cause crossed sensation and limb ataxia.
C. Right lateral pons without medullary involvement (Why this does not fit)
Some crossed sensory findings overlap, but prominent nucleus ambiguus-related hoarseness and dysphagia favor the lateral medulla.
D. Right lateral medulla (Best answer)
Ipsilateral trigeminal and cerebellar connections, contralateral spinothalamic findings and nucleus ambiguus dysfunction align here.
Takeaway: Crossed facial and body sensory findings with bulbar symptoms strongly support a brainstem localization.
A. Right medial longitudinal fasciculus (Why this does not fit)
A right MLF lesion would instead impair right adduction on left gaze.
B. Left peripheral VI nerve (Why this does not fit)
A left VI lesion impairs left abduction, not left adduction on right gaze.
C. Left oculomotor nerve (Why this does not fit)
An isolated adduction deficit can raise this possibility, but preserved convergence and contralateral abducting nystagmus favor an internuclear connection; broad III signs are absent.
D. Left medial longitudinal fasciculus (Best answer)
The left MLF conveys the crossed signal from the right VI nucleus to the left medial rectus pathway during right gaze.
Takeaway: INO is named for the side of the adduction deficit.
A. Both pupils constrict less and appear to dilate relatively (Best answer)
Reduced left afferent input decreases the bilateral constrictor drive despite intact motor pathways.
B. The left pupil dilates relatively while the right pupil constricts more (Why this does not fit)
A unilateral reduction in afferent drive changes the drive to both intact pupil motor pathways, not just the illuminated eye.
C. Both pupils constrict more strongly (Why this does not fit)
Illuminating the affected optic nerve supplies less afferent drive, so stronger bilateral constriction is the opposite of the expected relative afferent defect.
D. Both pupils maintain the same degree of constriction (Why this does not fit)
Equal drive would not demonstrate the asymmetric afferent deficit specified in the stem.
Takeaway: An afferent pupil defect is identified by comparing the stimulus sides.
A. Treat as idiopathic facial palsy with corticosteroids alone (Why this does not fit)
Bilateral weakness after a compatible rash and tick exposure requires evaluation and treatment for Lyme disease; steroids alone do not treat that infection.
B. Treat as zoster-associated facial palsy with antiviral monotherapy (Why this does not fit)
The supplied expanding rash and tick exposure favor Lyme disease rather than the otic vesicles and ear-pain pattern of zoster.
C. Use serial facial examinations while awaiting spontaneous recovery (Why this does not fit)
Observation alone leaves a plausible treatable infection unaddressed; eye care and appropriate infection assessment are needed.
D. Evaluate neurologic Lyme disease with recommended serology and provide appropriate antibiotics (Best answer)
The exposure, rash history and facial pattern support targeted Lyme assessment and treatment.
Takeaway: An infectious diagnosis should be supported by actual exposure and clinical evidence in the history.
A. Oral antibiotics for presumed bacterial labyrinthitis (Why this does not fit)
The brief provoked episodes and characteristic positional response do not establish bacterial labyrinthitis.
B. Oral corticosteroids for presumed vestibular neuritis (Why this does not fit)
Vestibular neuritis presents with sustained acute vertigo rather than these brief position-triggered episodes with a characteristic posterior canal test response.
C. A canalith repositioning maneuver such as Epley (Best answer)
The brief positional episodes and characteristic test response support posterior canal BPPV.
D. A prolonged course of vestibular suppressants as definitive treatment (Why this does not fit)
Symptom suppression does not correct displaced canaliths and is not the recommended definitive approach to this posterior canal pattern.
Takeaway: A specific positional response supports a specific mechanical vestibular treatment.
A. Right vagal motor injury (Why this does not fit)
Vagal injury can weaken the palate, pharynx and larynx, but does not innervate most tongue muscles or explain this pattern of tongue wasting.
B. Left supranuclear corticobulbar injury alone (Why this does not fit)
A contralateral supranuclear lesion can weaken the tongue, but isolated upper motor neuron injury does not explain focal denervation atrophy and fasciculations.
C. Right lower motor neuron XII injury (Best answer)
The imaging location and ipsilateral wasting, fasciculations and deviation match hypoglossal motor dysfunction.
D. Left lower motor neuron XII injury (Why this does not fit)
A left peripheral XII lesion would weaken and waste the left side and typically direct protrusion left, opposite the findings here.
Takeaway: Tongue atrophy and deviation should be matched to the hypoglossal pathway and the supplied imaging.
A. Submandibular gland parasympathetic output through chorda tympani (Why this does not fit)
Chorda tympani belongs to VII; IX parasympathetic fibers instead reach the parotid through the otic ganglion.
B. Stylopharyngeus motor supply and posterior tongue taste (Best answer)
IX is mixed, carrying this motor function as well as taste and pharyngeal sensory pathways.
C. Motor supply to every intrinsic tongue muscle (Why this does not fit)
Intrinsic tongue muscles receive XII motor fibers; the stated isolated IX injury instead threatens stylopharyngeus and other glossopharyngeal functions.
D. Palatoglossus motor supply (Why this does not fit)
Palatoglossus receives X through the pharyngeal plexus, whereas IX supplies stylopharyngeus.
Takeaway: Glossopharyngeal function includes motor and parasympathetic components as well as sensation.