🩹 Stroke Syndromes & Neurologic Localization
Each vessel-territory syndrome below produces its specific deficit pattern because of the underlying tract and cortical anatomy — the corticospinal, dorsal column, and spinothalamic pathways — detailed in Cortical Localization & Long Tracts → Corticospinal Tract (Descending Motor).
Ischemic Stroke — Subtypes & Workup
- Thrombotic — clot forms locally, usually over a ruptured atherosclerotic plaque, commonly in the MCA
- Embolic — a clot travels from elsewhere (atrial fibrillation, carotid stenosis, endocarditis, or a DVT crossing a patent foramen ovale) and can affect multiple vascular territories at once
- Hypoxic/hypoperfusion — global reduction in blood flow or oxygenation (e.g., cardiac arrest, intraoperative hypotension); preferentially injures watershed zones
- Irreversible neuronal injury begins after roughly 5 minutes of ischemia; the hippocampus, neocortex, cerebellar Purkinje cells, and watershed zones are the most vulnerable regions
- Workup — noncontrast CT first, to exclude hemorrhage before giving tPA (ischemic changes may not show on CT for 6–24 hours); diffusion-weighted MRI can detect ischemia within minutes
- Treatment — IV tPA within 3–4.5 hours of clear symptom onset (if no hemorrhage/bleeding risk) and/or mechanical thrombectomy for large-vessel occlusion; secondary prevention with antiplatelets and risk-factor control
- Transient ischemic attack (TIA) — a brief, fully reversible deficit with a negative MRI, most resolving within 15 minutes; amaurosis fugax (transient monocular vision loss) is a classic presentation from retinal artery emboli
Stroke Syndromes by Vessel
| Vessel | Territory / Structures | Classic Deficits |
|---|---|---|
| Anterior cerebral artery | Medial motor/sensory cortex (leg area) | Contralateral leg > arm weakness and sensory loss, urinary incontinence |
| Middle cerebral artery | Lateral motor/sensory cortex (face/arm area), Broca/Wernicke areas | Contralateral face and arm > leg weakness/sensory loss; aphasia if dominant hemisphere, neglect if nondominant |
| Lenticulostriate arteries | Striatum, internal capsule | Pure motor (or pure sensory) lacunar stroke, no cortical signs (no aphasia/neglect); classically from chronic hypertension |
| Posterior cerebral artery | Occipital lobe, medial temporal lobe | Contralateral homonymous hemianopia with macular sparing; if dominant side, alexia without agraphia |
| Basilar artery | Pons, medulla, lower midbrain (corticospinal/corticobulbar tracts, ocular CN nuclei) | "Locked-in syndrome" — quadriplegia and loss of most facial/tongue movement with preserved consciousness and vertical eye movement/blinking |
| Anterior inferior cerebellar artery (AICA) | Lateral pons — facial nucleus, vestibular nuclei, spinothalamic tract, sympathetic fibers, inner ear | Ipsilateral facial paralysis (LMN), ipsilateral deafness/vertigo, ipsilateral Horner syndrome, ipsilateral ataxia, contralateral body/ipsilateral face pain-temperature loss ("lateral pontine syndrome") |
| Posterior inferior cerebellar artery (PICA) | Lateral medulla — nucleus ambiguus, vestibular nuclei, spinothalamic tract, sympathetic fibers | Dysphagia, hoarseness, ↓ gag reflex, vertigo/nystagmus, ipsilateral Horner syndrome, ipsilateral ataxia, contralateral body/ipsilateral face pain-temperature loss ("lateral medullary/Wallenberg syndrome") |
| Anterior spinal artery | Medial medulla — corticospinal tract, medial lemniscus, CN XII nucleus | Contralateral limb paralysis, contralateral proprioceptive loss, ipsilateral tongue weakness ("medial medullary syndrome") |
Common Brain Lesion Localization
| Site of Lesion | Finding |
|---|---|
| Frontal eye fields | Eyes deviate toward the side of the lesion (away from the hemiparesis) — seen in cortical/MCA stroke |
| Paramedian pontine reticular formation | Eyes deviate away from the side of the lesion (toward the hemiparesis) — opposite pattern from a cortical lesion |
| Dominant parietal cortex | Gerstmann syndrome — agraphia, acalculia, finger agnosia, left-right disorientation |
| Basal ganglia | Resting tremor, chorea, or athetosis, depending on the underlying disease |
| Subthalamic nucleus | Contralateral hemiballismus (sudden, violent flinging limb movements) |
| Dorsal midbrain | Parinaud syndrome (upward gaze palsy), often from a pineal region mass |
| Reticular activating system | Reduced arousal/wakefulness, coma |
Frontal eye field and PPRF lesions cause opposite gaze deviation despite both being "lesion pushes gaze somewhere" findings: a cortical lesion removes the drive for contralateral gaze, so the eyes rest toward the lesion, while a pontine (PPRF) lesion knocks out the local machinery for ipsilateral gaze, so the eyes rest away from it. The direction of deviation is a localizing sign, not an incidental detail.
Aphasia Subtypes
| Type | Fluency | Comprehension | Notes |
|---|---|---|---|
| Broca (expressive) | Nonfluent, effortful | Intact | Inferior frontal gyrus; patients are aware of their deficit and often frustrated |
| Wernicke (receptive) | Fluent | Impaired | Superior temporal gyrus; fluent but nonsensical ("word salad"); patients typically lack insight |
| Conduction | Fluent | Intact | Damage to the arcuate fasciculus connecting Broca's and Wernicke's areas; hallmark is poor repetition despite otherwise fluent, comprehending speech |
| Global | Nonfluent | Impaired | Combined Broca + Wernicke area involvement, usually from a large dominant-hemisphere MCA stroke |
Decorticate vs. Decerebrate Posturing
| Decorticate (Flexor) Posturing | Decerebrate (Extensor) Posturing | |
|---|---|---|
| Lesion site | Above the red nucleus (often cerebral hemisphere/cortex) | Between the red and vestibular nuclei (brainstem) |
| Presentation | Upper limb flexion, lower limb extension ("hands to the core") | Both upper and lower limbs extend |
| Prognosis | Better | Worse — indicates a more caudal, brainstem-level injury |
Intracranial Aneurysms
- Saccular (berry) aneurysm — occurs at Circle of Willis bifurcations, most commonly the ACom–ACA junction; risk factors include hypertension, smoking, ADPKD, and Ehlers–Danlos syndrome; usually silent until rupture causes subarachnoid hemorrhage, but can also cause symptoms by direct compression — an ACom aneurysm can compress the optic chiasm (bitemporal hemianopia), and a posterior communicating artery aneurysm classically compresses CN III (ipsilateral blown pupil, ptosis, "down and out" eye)
- Charcot–Bouchard microaneurysm — small-vessel aneurysm associated with chronic hypertension, the source of most hypertensive intraparenchymal hemorrhages; too small to be seen on angiography
Intracranial Hemorrhage — Beyond Epidural/Subdural
- Subarachnoid hemorrhage — usually from trauma or a ruptured aneurysm/AVM; presents as the "worst headache of my life," with bloody or xanthochromic (yellow) CSF on lumbar puncture; vasospasm 3–10 days later can cause delayed ischemic infarction, for which nimodipine may improve outcomes; raises the risk of subsequent hydrocephalus
- Intraparenchymal hemorrhage — most often from chronic hypertension causing rupture of Charcot–Bouchard microaneurysms, classically in the putamen/basal ganglia, followed by the internal capsule, thalamus, pons, and cerebellum; also caused by amyloid angiopathy (recurrent lobar hemorrhage in older adults), AVMs, or vasculitis
Other Localized Pain & Trauma Syndromes
- Thalamic pain syndrome — neuropathic pain (burning, allodynia, hyperalgesia) that develops days to years after a thalamic (often lacunar or PCA-territory) stroke
- Phantom limb pain — burning/electric pain referred to an amputated limb, thought to reflect cortical reorganization of the primary somatosensory map
- Diffuse axonal injury — shearing of white matter tracts from rapid acceleration-deceleration (e.g., motor vehicle collision); often causes coma or a persistent vegetative state, with scattered punctate hemorrhages on MRI
Fever vs. Heat Stroke
| Fever | Heat Stroke | |
|---|---|---|
| Mechanism | Cytokine-driven resetting of the hypothalamic set point (e.g., infection) | Failure to dissipate heat (e.g., exertion in high ambient temperature) |
| Temperature | Usually <40°C (104°F) | Usually >40°C (104°F) |
| Complications | Febrile seizure (benign, self-limited) | Confusion/CNS dysfunction, rhabdomyolysis, acute kidney injury, DIC |
| Management | Antipyretics for comfort; treat the underlying cause | Rapid external cooling, aggressive rehydration and electrolyte correction |
Watershed Zones
- Border regions between the territories of two major arteries (classically ACA–MCA and MCA–PCA) that receive the least redundant blood supply
- Vulnerable to hypoperfusion injury (systemic hypotension, cardiac arrest, severe blood loss) rather than to focal vessel occlusion
- ACA–MCA watershed infarct — proximal upper and lower limb weakness with sparing of the face/hands, classically described as a "man-in-a-barrel" presentation
Blood Supply to the Brain
- Anterior circulation — internal carotid artery → anterior cerebral artery + middle cerebral artery, joined across the midline by the anterior communicating artery
- Posterior circulation — paired vertebral arteries join to form the basilar artery, which gives rise to the posterior cerebral arteries
- Anterior and posterior circulations connect via the posterior communicating arteries, completing the circle of Willis at the base of the brain
- Cranial nerves III, V, VI, VII, and VIII emerge in close relation to these vessels, which is why brainstem strokes often produce combined vascular and cranial nerve deficits
- Cortical territory — anterior cerebral artery supplies the medial surface and leg-dominant motor/sensory strip
- Middle cerebral artery supplies the lateral surface, including face/arm motor-sensory cortex and (in the dominant hemisphere) the language areas
- Posterior cerebral artery supplies the occipital lobe and medial temporal lobe
Venous Drainage
- Superficial cerebral (bridging) veins drain into the superior sagittal sinus
- Superior sagittal sinus and inferior sagittal sinus converge with the great cerebral vein into the straight sinus
- Straight and sagittal sinuses drain into the transverse sinus → sigmoid sinus → internal jugular vein
- The cavernous sinus receives the superior ophthalmic vein and communicates with the venous system near the pituitary
- Venous (dural) sinus thrombosis presents with signs of raised ICP — headache, seizures, papilledema, and focal deficits — and is associated with hypercoagulable states (pregnancy, oral contraceptive use, factor V Leiden)
Cerebral Perfusion & Intracranial Pressure
- Cerebral perfusion pressure (CPP) = mean arterial pressure (MAP) − intracranial pressure (ICP); a CPP of zero means no cerebral perfusion → coma or brain death
- Cerebral blood flow is tightly autoregulated and driven primarily by PCO2 — hyperventilation lowers PCO2, causing vasoconstriction that reduces cerebral blood flow and ICP (a maneuver sometimes used for acute cerebral edema)
- Severe hypoxia (e.g., high altitude) triggers cerebral vasodilation and can itself raise cerebral blood flow enough to cause edema
- Cushing reflex — the triad of hypertension, bradycardia, and respiratory depression that occurs as a physiologic response to rising ICP
Contents of the Cavernous Sinus
- Located lateral to the pituitary fossa/sphenoid sinus, on either side of the sella turcica
- Structure running centrally through the sinus, surrounded by sympathetic fibers
- Internal carotid artery
- Structures embedded in the lateral dural wall
- Oculomotor nerve (CN III)
- Trochlear nerve (CN IV)
- Ophthalmic and maxillary divisions of the trigeminal nerve (V1, V2)
- Abducens nerve (CN VI) runs freely within the sinus lumen alongside the carotid artery — this positioning makes CN VI especially vulnerable to compressive or thrombotic cavernous sinus lesions
- Clinical relevance — cavernous sinus thrombosis or a mass in this region can produce a combination of ophthalmoplegia (III, IV, VI), facial sensory loss (V1/V2), and proptosis
Classic Spinal Cord Lesion Patterns
| Lesion | Key Findings |
|---|---|
| Tabes dorsalis (tertiary syphilis) | Bilateral loss of touch/vibration/proprioception from lower limbs — dorsal column degeneration |
| Brown–Séquard (cord hemisection) | Ipsilateral loss of touch/vibration + ipsilateral spastic paresis below lesion; contralateral loss of pain/temperature; ipsilateral flaccid weakness at the lesion level; Horner syndrome if above T1 |
| Subacute combined degeneration (B12 deficiency) | Bilateral dorsal column loss + bilateral corticospinal spastic paresis |
| ALS | Combined bilateral UMN + LMN signs from corticospinal and anterior horn involvement |
| Anterior spinal artery infarct | Bilateral pain/temperature loss + bilateral spastic paresis + flaccid weakness at the level + possible bladder/Horner involvement; dorsal columns spared |
| Syringomyelia | Bilateral "cape-like" pain/temperature loss from ventral white commissure damage; flaccid weakness at the affected level |
These patterns are distinguishable mainly by which tracts are spared, not just which are hit — subacute combined degeneration and anterior spinal artery infarct both cause bilateral spastic paresis, but only the former also loses the dorsal columns and only the latter spares them. Syringomyelia's "cape-like" loss is the giveaway for isolated ventral white commissure damage without early corticospinal involvement.
Conus Medullaris vs. Cauda Equina Syndrome
- Both are surgical emergencies from compression (disc herniation, tumor, trauma) near the end of the spinal cord, presenting with radicular low back pain, saddle/perianal numbness, and bladder/bowel dysfunction
- Conus medullaris syndrome — compression of the terminal spinal cord itself → typically symmetric weakness with upper motor neuron (spastic) features
- Cauda equina syndrome — compression of the lumbosacral nerve roots below the cord → typically asymmetric weakness with lower motor neuron (flaccid) features
🧠 Cortical Localization & Long Tracts
The dorsal column and spinothalamic pathways below both relay through VPL before reaching cortex — the input/output logic of that and the other thalamic relay nuclei is laid out in Thalamus & Hypothalamus → Thalamic Relay Nuclei.
Cortical Lesion Correlates
| Region | Lesion Effect |
|---|---|
| Primary motor cortex | Contralateral weakness/paresis of the represented body part |
| Primary somatosensory cortex | Contralateral loss of touch, vibration, and stereognosis |
| Frontal eye field | Eyes deviate toward the side of the lesion (unopposed contralateral gaze center) |
| Broca area (dominant frontal lobe) | Expressive (non-fluent) aphasia — comprehension intact, output effortful |
| Wernicke area (dominant temporal lobe) | Receptive aphasia — fluent but nonsensical speech, comprehension impaired |
| Non-dominant parietal lobe | Hemispatial neglect — patient unaware of the contralateral side of the body/space |
| Prefrontal cortex | Personality change, disinhibition, apathy — mirrors a frontal lobotomy |
| Amygdala (bilateral) | Klüver–Bucy syndrome — hyperorality, hypersexuality, placidity |
Sensory Receptor Types
| Receptor | Location / Adaptation | Modality |
|---|---|---|
| Free nerve endings | Epidermis; both fast (A-delta) and slow (C-fiber) adapting | Pain, temperature, crude touch |
| Meissner corpuscles | Glabrous (hairless) skin, superficial dermis; rapidly adapting | Light/dynamic touch, position sense |
| Merkel discs | Fingertips, epidermal-dermal junction; slowly adapting | Static touch/pressure, texture, shape |
| Pacinian corpuscles | Deep dermis, joints, ligaments; rapidly adapting | Vibration, deep pressure |
| Ruffini corpuscles | Deep dermis, joint capsules; slowly adapting | Skin stretch, joint angle change |
Ascending Sensory Pathways
Dorsal Column–Medial Lemniscus
- Carries fine touch, vibration sense, proprioception, and stereognosis
- Receptor inputs: Meissner corpuscles, Pacinian corpuscles, joint receptors, muscle spindles, Golgi tendon organs
- Decussation occurs at the caudal medulla — lesions below this level cause ipsilateral deficits, lesions above cause contralateral deficits
Spinothalamic Tract
- Carries pain and temperature sensation from the body
- Inputs from fast (A-delta) and slow (C) pain fibers
- Decussation occurs immediately at the level of entry — lesions cause contralateral loss beginning roughly one level below the lesion
The DCML and spinothalamic tract decussate at different levels — medulla vs. immediately at cord entry — which is why cord hemisection (Brown–Séquard) produces opposite-sided deficits for touch/proprioception vs. pain/temperature, while a medullary lesion instead splits the deficit by ipsilateral-below vs. contralateral-above the crossing point. Localizing a tract lesion is really asking where it crosses.
Trigeminothalamic Pathway
- Carries pain and temperature sensation from the face — the facial counterpart of the spinothalamic tract
- Receives input from fast (A-delta) and slow (C) pain fibers via free nerve endings
Dermatome Landmarks
- C2 — posterior scalp ("cervical cap")
- C4 — top of the shoulders (a useful marker for the level of a high spinal cord injury affecting respiration)
- T4 — nipple line
- T7 — xiphoid process
- T10 — umbilicus
- L1 — inguinal ligament ("L-one, inguinal")
- L4 — kneecaps
- S2, S3, S4 — genital/perianal region — "S2, 3, 4 keeps the penis off the floor" (erection and continence)
Corticospinal Tract (Descending Motor)
- Mediates voluntary movement of striated (skeletal) muscle
- Lesion above pyramidal decussation (UMN) → contralateral spastic paresis, positive Babinski
- Lesion below decussation (UMN, in cord) → ipsilateral spastic paresis, positive Babinski
- Lesion of the LMN itself → flaccid paralysis with fasciculations
Corticobulbar Tract & Facial Innervation
- Descends from motor cortex to synapse on the facial motor nucleus (CN VII)
- Upper face muscles (frontalis, orbicularis oculi) receive bilateral cortical input → spared in unilateral (UMN) cortical lesions
- Lower face muscles receive only contralateral input → affected in unilateral cortical lesions
- A complete LMN facial lesion (Bell palsy) affects both upper and lower face on the ipsilateral side, unlike a cortical (UMN) lesion
Cerebellar Pathway
- Controls posture, balance, muscle tone, and coordination
- Dominant tract: dentatothalamic, originating in the dentate nucleus, relayed through the ventrolateral thalamic nucleus to motor cortex
- Deep cerebellar nuclei, lateral to medial — dentate, emboliform, globose, fastigial
- Medial structures (vermis, fastigial/globose/emboliform nuclei) control axial and proximal limb muscles bilaterally; lateral structures (hemispheres, dentate nucleus) control distal limb movement and motor planning ipsilaterally
- Unilateral cerebellar (vestibulocerebellar) lesions cause ipsilateral deficits — patient falls toward the lesion side (positive Romberg-type finding)
- Bedside tests — rapid alternating movements (dysdiadochokinesia), finger-to-nose and heel-to-shin (dysmetria/intention tremor), and gait assessment
Muscle Spindles vs. Golgi Tendon Organs
- Muscle spindles — sense muscle length; arranged in parallel with extrafusal fibers; serve as the afferent limb of the myotactic (deep tendon/stretch) reflex
- Golgi tendon organs — sense muscle tension; arranged in series with extrafusal fibers
Deep Tendon, Superficial & Primitive Reflexes
- Deep tendon reflexes (afferent limb = muscle spindle) test spinal root integrity
- Biceps — C5, C6
- Triceps — C7, C8
- Patellar (knee-jerk) — L3, L4
- Achilles (ankle-jerk) — S1, S2
- Superficial/brainstem reflexes
- Corneal blink — afferent CN V, efferent CN VII
- Jaw jerk — afferent and efferent both CN V
- Gag reflex — afferent CN IX, efferent CN X
- Cough reflex — afferent CN X, efferent CN X
- Primitive (newborn) reflexes — present at birth, normally disappear by the age listed; persistence beyond that age suggests an upper motor neuron/developmental problem
- Moro (startle, "embrace") — gone by 3–4 months
- Rooting (turns head toward cheek stroke) — gone by 4 months
- Sucking — gone by 4 months
- Palmar grasp — gone by 4–6 months
- Plantar (Babinski) — normal in infants, gone by 12 months; its persistence in an adult is a positive UMN sign
- Galant (stroking the back causes the trunk to curve toward the stroked side) — gone by 4–6 months
Glial Cells & the Blood–Brain Barrier
| Cell Type | Origin | Role |
|---|---|---|
| Astrocytes | Neuroectoderm | Physical/metabolic support, K⁺ buffering, glutamate uptake and recycling, help form the blood–brain barrier via end-feet on capillaries; reactive gliosis (scar formation) after CNS injury; marker: GFAP |
| Microglia | Mesoderm (monocyte lineage) | CNS-resident phagocytes/immune surveillance; unlike other glia, they repopulate from circulating monocytes after injury |
| Ependymal cells | Neuroectoderm | Ciliated cells lining the ventricles; produce and help circulate CSF; specialized tufts (choroid plexus) secrete CSF |
| Oligodendrocytes | Neuroectoderm | CNS myelination (see below) |
| Schwann cells | Neural crest | PNS myelination (see below) |
- The blood–brain barrier restricts free diffusion of most water-soluble and large molecules into brain tissue, formed by three cooperating structures
- Tight junctions between capillary endothelial cells
- A surrounding basement membrane
- Pericytes
- Astrocyte foot processes ("end-feet") that envelop the capillary
- Only small, lipophilic, or actively transported molecules cross readily — this is why drugs like levodopa (transported) work centrally while carbidopa (not transported) stays peripheral
- The barrier is incomplete at a few "circumventricular organ" sites that must sense or secrete into the blood directly, e.g., the area postrema (vomiting center, senses circulating toxins), the posterior pituitary (hormone release into blood), and the OVLT (senses plasma osmolarity) — these regions are also where CNS infections/tumors can more easily seed
The blood–brain barrier is deliberately incomplete at circumventricular organs so the CNS can sense or secrete directly into blood — but that same gap is why the CTZ can respond to circulating toxins/chemotherapy and why these sites are preferential entry points for CNS infection and metastasis.
Myelination
- CNS myelination performed by oligodendrocytes
- One oligodendrocyte extends processes to myelinate multiple axons simultaneously
- PNS myelination performed by Schwann cells
- Each Schwann cell myelinates only a single axon segment
- Timeline: myelination starts around month 4 of gestation and continues until roughly age 2
Neuron Basics: Action Potentials & Nerve Injury
- Resting membrane potential is maintained because the neuronal membrane is far more permeable to K⁺ than Na⁺ at rest
- Depolarization — voltage-gated Na⁺ channels open once threshold is reached, and Na⁺ rushes in
- Repolarization — Na⁺ channels inactivate, voltage-gated K⁺ channels open, and K⁺ flows out
- Hyperpolarization — K⁺ channels close slowly, producing a brief dip below resting potential before the Na⁺/K⁺ pump restores baseline
- Myelin dramatically speeds conduction by enabling saltatory conduction — the action potential "jumps" between the high-Na⁺-channel-density nodes of Ranvier instead of propagating continuously
Peripheral Nerve Connective Tissue Layers
- Endoneurium — innermost layer, surrounds individual nerve fibers; the layer typically damaged in Guillain–Barré syndrome
- Perineurium — surrounds a fascicle of fibers; forms the blood–nerve permeability barrier
- Epineurium — outermost dense connective tissue layer, surrounds the whole nerve trunk (fascicles + vessels)
Neuronal Response to Axonal Injury
- Chromatolysis — the cell body swells, the nucleus shifts to the periphery, and Nissl substance (rough ER) disperses as protein synthesis ramps up to repair the axon
- Axonal retraction/regrowth — the proximal stump retracts and sprouts new processes; in the PNS, Schwann cells form a guiding tract for regeneration
- Wallerian degeneration — the distal axon and its myelin sheath disintegrate and are cleared by macrophages; in the CNS, residual myelin debris and reactive gliosis make regeneration far less successful than in the PNS
Vomiting Center & Chemoreceptor Trigger Zone
- The nucleus tractus solitarius (medulla) coordinates the vomiting reflex, integrating input from the chemoreceptor trigger zone (CTZ), the GI tract (via vagal afferents), the vestibular system, and higher cortical centers
- The CTZ sits in the area postrema, outside the blood–brain barrier, so it can directly sample circulating drugs/toxins — this is why chemotherapy and other bloodborne emetogens trigger vomiting through it
- Five receptor types converge on the CTZ/vomiting center: dopamine (D2), serotonin (5-HT3), neurokinin (NK1), histamine (H1), and muscarinic (M1)
- Pharmacologic correlate — D2/5-HT3/NK1 antagonists (e.g., ondansetron) treat chemotherapy-induced vomiting; H1/M1 antagonists treat motion sickness, and H1 antagonists are also used for hyperemesis gravidarum
Peripheral Nervous System Origin
- PNS components (peripheral nerves, autonomic ganglia, sensory ganglia) arise from neural crest cells
- Neural crest derivatives relevant to the PNS
- Schwann cells
- Pseudounipolar sensory neurons of dorsal root and cranial nerve ganglia
- Multipolar neurons of autonomic ganglia
- Neural crest also produces structures classically excluded from the PNS proper
- Pia mater and arachnoid mater (leptomeninges)
- Melanocytes
- Chromaffin cells of the adrenal medulla (epinephrine-secreting)
Spinal Cord Positional Change
- At birth the conus medullaris (caudal tip of cord) sits at vertebral level L3
- Differential growth of the vertebral column relative to the cord causes an apparent "ascent"
- Adult resting level of the conus medullaris is L1
- Clinical relevance: this is why lumbar puncture is performed below L2 to avoid cord injury
👁️ Cranial Nerves, Vision, and Special Senses
CN III palsy from an aneurysm and combined ophthalmoplegia from a cavernous sinus lesion are structural, not just functional, findings — the compressive anatomy (posterior communicating artery aneurysm, cavernous sinus contents) is covered in Stroke Syndromes & Neurologic Localization → Intracranial Aneurysms.
Cranial Nerve Overview
| Nerve | Function | Classic Lesion |
|---|---|---|
| I — Olfactory | Smell | Cribriform plate fracture, Kallmann syndrome |
| II — Optic | Vision | Chiasm/tract lesions (see visual field defects) |
| III — Oculomotor | Most extraocular muscles, levator palpebrae, pupillary constriction | Uncal herniation, diabetic mononeuropathy (pupil-sparing), Weber syndrome |
| IV — Trochlear | Superior oblique | Head trauma — impaired downward/inward gaze |
| V — Trigeminal | Facial sensation; V3 also motor to mastication | Trigeminal neuralgia (tic douloureux) |
| VI — Abducens | Lateral rectus | Medial inferior pontine syndrome |
| VII — Facial | Facial expression, taste anterior 2/3 tongue, lacrimal/salivary glands | Bell palsy |
| VIII — Vestibulocochlear | Hearing, balance | Vestibular schwannoma |
| IX — Glossopharyngeal | Gag reflex afferent, taste posterior 1/3 tongue, parotid secretion | PICA infarct |
| X — Vagus | Visceral parasympathetics, pharyngeal/laryngeal motor | PICA infarct, post-thyroidectomy injury |
| XI — Accessory | Sternocleidomastoid, trapezius | PICA infarct |
| XII — Hypoglossal | Intrinsic tongue muscles | Anterior spinal artery infarct — tongue deviates toward the lesion |
Cranial Nerve Nuclei & Brainstem Organization
- CN nuclei sit in the brainstem tegmentum, organized by level — midbrain (III, IV), pons (V, VI, VII, VIII), medulla (IX, X, XI, XII), with the spinal portion of XI arising from the upper cervical cord
- Within the brainstem, sensory (alar-plate-derived) nuclei lie lateral and motor (basal-plate-derived) nuclei lie medial — the same dorsal/ventral logic as the spinal cord
- Exit pattern rule of thumb: 4 nerves exit above the pons (I, II, III, IV), 4 exit from the pons (V, VI, VII, VIII), and 4 exit from the medulla (IX, X, XI, XII); the purely medial (motor) nuclei are III, IV, VI, and XII
| Vagal-Associated Nucleus | Function | Cranial Nerves |
|---|---|---|
| Nucleus tractus solitarius | Visceral sensory input — taste, baroreceptor and gut-distension signals | VII, IX, X |
| Nucleus ambiguus | Motor output to pharynx/larynx/upper esophagus (swallowing, palate elevation) plus parasympathetic fibers to the heart | IX, X |
| Dorsal motor nucleus of the vagus | Parasympathetic output to the lungs, upper GI tract, and (to a lesser extent) heart | X |
Extraocular Muscles
| Muscle | Nerve | Action | Deviation if Lost |
|---|---|---|---|
| Medial rectus | CN III | Adduction | Deviates laterally (abduction) |
| Lateral rectus | CN VI | Abduction | Deviates medially (adduction) |
| Superior rectus | CN III | Elevation | Deviates downward |
| Inferior rectus | CN III | Depression | Deviates upward |
| Superior oblique | CN IV | Depresses, abducts, and intorts the adducted eye | Deviates medially and upward |
| Inferior oblique | CN III | Elevates, abducts, and extorts the adducted eye | Deviates medially and downward |
Pupillary Light Reflex Pathway
- Bilateral projection from the pretectal nucleus to both Edinger–Westphal nuclei is what produces the consensual light reflex — light in one eye constricts both pupils
Because each Edinger–Westphal nucleus receives bilateral pretectal input, a unilateral optic nerve (afferent) lesion still lets both pupils constrict when light hits the good eye — the swinging-flashlight test isolates a Marcus Gunn pupil by comparing direct to consensual response across eyes, not by testing either eye in isolation.
Pupil & Gaze Syndromes
| Syndrome | Findings |
|---|---|
| Horner syndrome | Sympathetic trunk lesion → ipsilateral ptosis, miosis, anhidrosis, facial flushing; often from apical lung (Pancoast) tumor |
| Argyll Robertson pupil | Accommodates but does not react to light; associated with neurosyphilis, SLE, diabetes |
| Marcus Gunn (relative afferent) pupil | Afferent pathway defect; swinging-flashlight test shows paradoxical dilation of the affected pupil |
| MLF (internuclear ophthalmoplegia) | Ipsilateral eye fails to adduct, contralateral eye shows nystagmus on abduction; convergence spared; classic in multiple sclerosis |
| Uncal herniation | CN III compression (blown pupil), ophthalmoplegia, ipsilateral hemiparesis from corticospinal compression, contralateral homonymous hemianopia from PCA compression |
Visual Field Defects by Lesion Site
- Optic nerve transection — complete monocular blindness
- Optic chiasm (e.g., pituitary tumor) — bitemporal hemianopia
- Optic tract — contralateral homonymous hemianopia
- Temporal (Meyer) loop lesion — contralateral upper quadrantanopia ("pie in the sky")
- Parietal radiation lesion — contralateral lower quadrantanopia
- Occipital cortex (with macular sparing) — contralateral homonymous hemianopia, macula spared due to dual blood supply
Field defects get more congruent (identical in both eyes) and more precisely bounded the further posterior the lesion sits — the chiasm gives a clean vertical split, the optic radiations give quadrant-specific cuts, and only occipital lesions spare the macula, thanks to dual MCA/PCA supply. Localizing along this pathway is really reading how "clean" the visual field cut looks.
Lens Disorders & Refractive Errors
- Presbyopia — age-related decline in accommodation from reduced lens elasticity; corrected with reading glasses
- Cataract — painless lens opacification; acquired risk factors include age, smoking, alcohol, sunlight, chronic glucocorticoid use, and diabetes; congenital causes include galactosemia, TORCH infections, and several genetic syndromes (e.g., Marfan, myotonic dystrophy)
- Lens dislocation (ectopia lentis) — usually traumatic, but also seen in Marfan syndrome and homocystinuria
- Myopia (nearsightedness) — eye too long for the cornea/lens power, light focuses in front of the retina; corrected with a diverging (concave) lens
- Hyperopia (farsightedness) — eye too short, light focuses behind the retina; corrected with a converging (convex) lens
- Astigmatism — irregular corneal/lens curvature causing different refractive power along different axes; corrected with a cylindrical lens
Retinal Disorders
| Disorder | Mechanism / Findings |
|---|---|
| Age-related macular degeneration | Dry (more common) — gradual loss of vision with drusen deposits; Wet — rapid vision loss from choroidal neovascularization/bleeding, often with distorted straight lines (metamorphopsia) |
| Diabetic retinopathy | Nonproliferative (more common) — microaneurysms, hemorrhages, cotton-wool spots, macular edema; Proliferative — hypoxia-driven neovascularization that can cause vitreous hemorrhage or tractional detachment |
| Hypertensive retinopathy | Arteriovenous nicking, microaneurysms, hemorrhages, cotton-wool spots, and a macular "star" of hard exudates; papilledema in this setting signals a hypertensive emergency |
| Retinal artery occlusion | Usually embolic (carotid disease); acute painless monocular vision loss with a cloudy retina and a "cherry-red spot" at the fovea |
| Retinal vein occlusion | Retinal hemorrhage and venous engorgement ("blood and thunder" fundus appearance), retinal edema |
| Retinal detachment | Separation of the neurosensory retina from the retinal pigment epithelium; presents with floaters/flashes then a painless "curtain" of vision loss — a surgical emergency |
| Retinitis pigmentosa | Inherited photoreceptor degeneration; early night blindness and peripheral vision loss, bone-spicule pigmentation on funduscopy |
| Retinopathy of prematurity | Supplemental oxygen after preterm birth disrupts normal retinal vascularization; a common cause of childhood blindness |
| Retinoblastoma | Most common childhood intraocular malignancy; biallelic RB1 mutation; presents with leukocoria, strabismus, or nystagmus |
| Angle-closure glaucoma | Acute intraocular pressure rise — painful red eye, halos, rock-hard globe |
| Open-angle glaucoma | Chronic pressure rise, gradual peripheral vision loss |
Papilledema, Leukocoria & Uveitis
- Papilledema — bilateral optic disc swelling with blurred margins from raised ICP; results from impaired axoplasmic flow along the optic nerve
- Leukocoria — loss/whitening of the red reflex in a child; always warrants urgent workup for retinoblastoma or congenital cataract
- Uveitis — inflammation of the uveal tract (anterior = iritis, posterior = choroiditis/retinitis); may show hypopyon (pus layering in the anterior chamber); associated with sarcoidosis, Behçet syndrome, juvenile idiopathic arthritis, and HLA-B27–associated disease
Eyelid & Conjunctival Disorders
| Disorder | Presentation |
|---|---|
| Preseptal cellulitis | Anterior eyelid infection — pain, swelling, erythema, but no pain with eye movement or vision change |
| Orbital cellulitis | Infection extends into the orbit itself, usually from sinusitis; pain and diplopia with eye movement; risk of vision loss and cavernous sinus thrombosis — a true emergency |
| Blepharitis | Inflammation, irritation, and crusting of the eyelid margin |
| Hordeolum (stye) | Acute, tender, infected nodule of an eyelid gland |
| Chalazion | Noninfectious granulomatous inflammation from a blocked meibomian/sebaceous gland |
| Conjunctivitis | Allergic (itchy, bilateral), bacterial (purulent), or viral (most common; watery, often with a swollen preauricular node) |
Glaucoma Pharmacotherapy
| Drug Class | Example(s) | Mechanism |
|---|---|---|
| β-blockers | Timolol, betaxolol | ↓ aqueous humor synthesis; no pupil/vision changes |
| α₂-agonists | Brimonidine, apraclonidine | ↓ aqueous humor synthesis |
| Carbonic anhydrase inhibitors | Acetazolamide | ↓ aqueous humor synthesis via carbonic anhydrase inhibition |
| Prostaglandin analogs | Latanoprost, bimatoprost | ↑ uveoscleral outflow; can darken the iris and lengthen eyelashes |
| Cholinomimetics (M3 agonists) | Pilocarpine (direct), physostigmine (indirect) | ↑ outflow via ciliary muscle contraction/trabecular meshwork opening; pilocarpine is especially useful for rapidly aborting acute angle-closure attacks |
Nystagmus Direction Patterns
| Form | Fast-Phase Direction | Slow-Phase Direction |
|---|---|---|
| Rotary (during spinning) | Same as rotation | Opposite to rotation |
| Postrotary (after spinning stops) | Opposite to prior rotation | Same as prior rotation |
| Caloric — warm water in ear | Toward the irrigated ear | Away from the irrigated ear |
| Caloric — cold water in ear | Away from the irrigated ear | Toward the irrigated ear |
Taste, Vestibular, and Auditory Pathways
- Taste — anterior 2/3 tongue via CN VII (chorda tympani), posterior 1/3 via CN IX, epiglottic region via CN X → solitary nucleus → VPM thalamus → parietal cortex
- Vestibular hair cells — semicircular canals sense angular acceleration; utricle and saccule sense linear acceleration
- Vestibular signals reach the vestibular nuclei of the low pons, which then project to
- The spinal cord — postural reflexes
- The cerebellum — coordination and balance
- The thalamus — conscious spatial orientation
- CN III, IV, and VI via the medial longitudinal fasciculus (MLF) — this is the circuit that generates nystagmus
- Auditory pathway is bilaterally represented beyond the cochlear nuclei, so a one-sided central lesion typically does not cause hearing loss — only a cochlear nerve lesion causes ipsilateral deafness
- Cochlear tonotopic organization
- Base of the cochlea (nearest the oval window) — sensitive to high-frequency sounds
- Apex of the cochlea (near the helicotrema) — sensitive to low-frequency sounds, owing to progressive thickening of the basilar membrane
See: Cortical Localization & Long Tracts → Muscle Spindles vs. Golgi Tendon Organs
👂 Otology
Distinguishing peripheral from central vertigo below depends on the central vestibular circuitry — vestibular nuclei, MLF, and cerebellar/thalamic projections — that generates and modulates nystagmus, covered in Cranial Nerves, Vision, and Special Senses → Taste, Vestibular, and Auditory Pathways.
Ear Anatomy & Sound Transduction
- Outer ear collects and channels sound waves to the tympanic membrane; the middle ear's ossicular chain conducts and mechanically amplifies that vibration
- The middle ear connects to the nasopharynx via the eustachian tube, which equalizes pressure across the tympanic membrane — dysfunction here underlies most middle-ear disease
- Inner ear cochlea is fluid-filled and tonotopically organized: high frequencies are detected near the base (stiff, narrow membrane), low frequencies near the apex (wide, flexible membrane, close to the helicotrema)
Everything proximal to the oval window (canal, tympanic membrane, ossicles) can only produce conductive loss, while everything from the cochlea inward is sensorineural — that boundary is why cholesteatoma and otitis externa give conductive patterns but noise damage and presbycusis are always sensorineural, regardless of how similar the hearing complaint sounds.
Outer & Middle Ear Infections
| Condition | Typical Cause | Presentation |
|---|---|---|
| Otitis externa ("swimmer's ear") | Usually Pseudomonas; linked to water exposure or canal trauma (including hearing aid use) | Ear pain that worsens when the pinna/tragus is manipulated, itching, discharge, conductive-type muffling |
| Malignant (necrotizing) otitis externa | Invasive spread of otitis externa into bone | Severe otalgia and drainage in an older patient with diabetes; risk of osteomyelitis and cranial nerve palsies |
| Acute otitis media | Nontypeable H influenzae, S pneumoniae, M catarrhalis, usually following a viral URI and eustachian tube dysfunction | Most common in children 6 months–3 years; fever, ear pain, bulging red tympanic membrane; can progress to temporary conductive hearing loss or rupture |
| Mastoiditis | Complication of untreated/recurrent acute otitis media | Postauricular pain, redness, and swelling; risk of abscess or meningitis if untreated |
Hearing Loss — Causes & Bedside Testing
- Noise-induced — damages cochlear hair cells; high-frequency loss first; a single very loud blast can rupture the tympanic membrane
- Presbycusis — age-related, gradual, bilateral, sensorineural, worse at high frequencies (hair-cell loss at the cochlear base, low-frequency hearing near the apex preserved longer)
- Trauma-induced — tympanic membrane rupture (blunt/penetrating injury, barotrauma) or temporal bone fracture: a fracture running longitudinally tends to cause conductive loss, a transverse fracture tends to cause sensorineural loss
- Cholesteatoma — abnormal keratinized squamous epithelium growing into the middle ear ("skin in the wrong place"), usually from a retraction pocket or old perforation; presents with painless drainage and can erode the ossicles, causing conductive hearing loss
| Test | Conductive Loss | Sensorineural Loss |
|---|---|---|
| Weber (fork on midline of skull) | Sound localizes to the affected ear | Sound localizes away from the affected ear |
| Rinne (air vs. bone conduction) | Bone conduction > air conduction on the affected side (abnormal) | Air conduction > bone conduction, but both are reduced (normal pattern, reduced overall) |
Vertigo — Peripheral vs. Central
| Feature | Peripheral Vertigo | Central Vertigo |
|---|---|---|
| Source | Inner ear — vestibular neuritis, BPPV, Ménière disease | Brainstem/cerebellum — stroke, demyelination, posterior fossa mass |
| Nystagmus | Fixed direction, horizontal-torsional; suppressed by visual fixation | Any direction, including pure vertical/torsional; not suppressed by fixation |
| Associated findings | Hearing loss/tinnitus may be present (Ménière); otherwise isolated | Other neurologic signs — diplopia, dysarthria, ataxia, dysmetria |
| Onset/course | Often sudden, episodic (seconds–minutes for BPPV) | Can be sudden or gradual depending on cause |
- Benign paroxysmal positional vertigo (BPPV) — displaced otoconia (canalith debris) in a semicircular canal; brief (<1 minute) episodes triggered by head position change; diagnosed with the Dix–Hallpike maneuver, treated with canalith repositioning (Epley maneuver)
- Ménière disease — endolymphatic hydrops (excess inner-ear fluid) producing the classic triad of episodic vertigo, sensorineural hearing loss, and tinnitus
- Vestibular neuritis — presumed postviral inflammation of the vestibular nerve; sudden, sustained vertigo without hearing loss
🩸 Meninges, CSF Flow & Vascular Trauma
Hydrocephalus classification below (communicating vs. non-communicating) applies to congenital causes as well — aqueductal stenosis and Dandy–Walker malformation are covered in Development of the Nervous System → Congenital Malformations.
Meningeal Layers (outside → in)
- Dura mater — tough outer connective tissue layer; epidural bleeds classically involve the middle meningeal artery after temporal bone fracture
- Arachnoid mater — thin, avascular layer; bridging veins cross the subdural space and are vulnerable to shear injury
- Pia mater — thin, highly vascular layer adherent to brain/cord surface
- Subarachnoid space contains CSF and terminates around vertebral level S2
- Lumbar puncture is performed within the subarachnoid space, typically L3–L4 or L4–L5
Epidural vs. Subdural Hematoma
Epidural Hematoma
- Arterial bleed, typically middle meningeal artery
- Associated with temporal bone fracture
- Classic course: brief LOC → lucid interval → rapid deterioration as hematoma expands and compresses midbrain
- CT: biconvex (lens-shaped), does not cross suture lines
- Management: rapid surgical decompression
Subdural Hematoma
- Venous bleed from torn bridging veins
- Risk factors: brain atrophy (elderly, alcoholics), anticoagulation
- CT: crescent-shaped (concave), can cross suture lines
- Management: observation or craniotomy with evacuation depending on severity
Epidural bleeds are arterial and fast because the middle meningeal artery sits in a fixed periosteal plane that a temporal fracture can tear directly; subdural bleeds are venous and slow because bridging veins have more give and only shear with rotational force or atrophy-related stretch. The mechanism, not just the CT shape, is what predicts the clinical tempo.
Ventricular System & CSF Circulation
- CSF is produced by the choroid plexus, found in all four ventricles, at a fairly constant rate regardless of intracranial pressure
- The cerebral aqueduct (of Sylvius) is the narrowest point in the pathway and the most common site of congenital obstructive hydrocephalus
- Final reabsorption into venous blood occurs at the arachnoid granulations, which project into the superior sagittal sinus
The cerebral aqueduct is the single narrowest point in the entire CSF pathway, which is exactly why it's the default answer for congenital obstructive hydrocephalus — any process blocking flow elsewhere still has to compete with this one natural bottleneck for "most likely site."
Hydrocephalus Classification
- Communicating (non-obstructive) — CSF flows freely but reabsorption at arachnoid granulations is impaired
- Non-communicating (obstructive) — physical blockage along the ventricular system, e.g., at the foramen of Monro, cerebral aqueduct, fourth ventricle outlets, or foramen magnum
Cerebrovascular Disease
| Category | Predisposing Factor | Typical Site / Result |
|---|---|---|
| Thrombotic infarct | Atherosclerosis | Carotid bifurcation, vertebrobasilar system, circle of Willis branches |
| Embolic infarct | Cardiac thrombus, valvular vegetation, fat emboli | MCA territory → contralateral weakness/sensory loss, aphasia; small-vessel occlusion → lacunar infarcts |
| Intracerebral hemorrhage | Chronic hypertension, coagulopathy | Rupture of Charcot–Bouchard microaneurysms — basal ganglia, pons, cerebellum, frontal lobe |
| Subarachnoid hemorrhage | Berry (saccular) aneurysm | Circle of Willis, especially the anterior communicating/MCA bifurcation |
⚡ Seizure Types & Antiepileptic Drugs
Phenobarbital and benzodiazepines below work by increasing chloride flux through the GABA-A channel — the frequency-vs-duration distinction between the two drug classes is explained in Autonomic Receptors & Neurotoxins → GABA-A Receptor Pharmacology.
Seizure Classification
- Every seizure passes through up to three phases — an aura (early warning, e.g., an odd smell/taste), the ictal period (first symptom to end of seizure activity), and a postictal period of gradual recovery
| Type | Presentation | First-Line Treatment |
|---|---|---|
| Focal aware (formerly simple partial) | Focal motor/sensory/autonomic symptoms, consciousness preserved | Phenytoin, carbamazepine |
| Focal impaired awareness (formerly complex partial) | Impaired consciousness, automatisms (lip smacking, hand movements) | Phenytoin, carbamazepine |
| Absence (petit mal) | Brief (seconds) staring spells with rapid blinking, begins in early childhood, 3 Hz spike-and-wave on EEG, no postictal confusion | Ethosuximide, valproic acid |
| Myoclonic | Quick, repetitive jerks; no loss of consciousness or postictal confusion | Valproic acid, levetiracetam |
| Tonic | Sudden sustained stiffening | Valproic acid |
| Atonic ("drop attack") | Sudden loss of muscle tone, falls to the floor; can mimic fainting | Valproic acid, lamotrigine |
| Tonic–clonic (grand mal) | Sudden LOC, tonic then clonic phases, postictal confusion, possible tongue biting/incontinence | Phenytoin, carbamazepine |
Focal vs. generalized is fundamentally about where the abnormal firing starts, not how dramatic the seizure looks — a focal seizure can secondarily generalize and become clinically indistinguishable from a primary tonic–clonic seizure. That's why the history (was there a focal aura or asymmetric onset?) matters more than the endpoint.
- Focal seizures most commonly originate in the medial temporal lobe; a focal seizure can also spread and become a generalized tonic–clonic seizure ("secondary generalization")
- Status epilepticus — continuous (≥5 min) or repeated seizures without return to baseline consciousness between them; a medical emergency treated with IV benzodiazepine
- Common causes of new-onset seizures shift with age — children/young adults: genetic, developmental, infectious (including febrile), or traumatic causes; adults 18–65: trauma, infection, tumor, stroke, or metabolic derangement; adults over 65: stroke and neurodegenerative disease rise to the top of the list
Antiepileptic Mechanisms & Toxicity
| Drug | Mechanism | Notable Toxicity |
|---|---|---|
| Phenytoin | Blocks voltage-gated Na⁺ channels | Gingival hyperplasia, hirsutism, megaloblastic anemia, fetal hydantoin syndrome, CYP450 induction |
| Carbamazepine | Blocks voltage-gated Na⁺ channels | Agranulocytosis/aplastic anemia, diplopia, CYP450 induction; also used for trigeminal neuralgia |
| Ethosuximide | Blocks thalamic T-type Ca²⁺/Na⁺ channels | GI upset, Stevens–Johnson syndrome |
| Valproic acid | Multiple effects including K⁺ channel modulation | Hepatotoxicity, neural tube defects — avoid in pregnancy |
| Phenobarbital | Increases duration of GABA-A chloride channel opening | Sedation, dependence; preferred in pregnancy and infancy |
| Benzodiazepines | Increase frequency of GABA-A chloride channel opening | First line for acute status epilepticus |
| Lamotrigine | Blocks Na⁺ channels | Stevens–Johnson syndrome |
| Gabapentin | Increases GABA release | Sedation; also used for peripheral neuropathy |
| Topiramate | Na⁺ channel blockade + GABA potentiation | Weight loss, nephrolithiasis; also used for migraine prevention |
🧩 Degenerative, Demyelinating & Dementing Diseases
Parkinson disease results from loss of the nigrostriatal dopaminergic pathway — its projection, and why its loss produces extrapyramidal rather than psychotic symptoms, is detailed in Autonomic Receptors & Neurotoxins → Dopaminergic Pathways.
Basal Ganglia Circuitry
- Direct pathway (net effect: facilitates movement) — cortex excites the striatum (glutamate) → striatum inhibits the internal globus pallidus (GPi) via GABA → less GPi inhibition of the thalamus → thalamus is disinhibited → increased cortical activation and movement
- Indirect pathway (net effect: suppresses movement) — cortex excites the striatum → striatum inhibits the external globus pallidus (GPe) → GPe normally inhibits the subthalamic nucleus (STN), so less GPe activity disinhibits the STN → STN excites the GPi → more GPi inhibition of the thalamus → reduced movement
- Dopamine from the substantia nigra pars compacta (nigrostriatal pathway) binds striatal D1 receptors to stimulate the direct pathway and D2 receptors to inhibit the indirect pathway — the net effect of dopamine is to promote movement
- Clinical correlate — Parkinson disease (dopamine loss) shifts the balance toward the indirect pathway → bradykinesia/rigidity; Huntington disease (early loss of indirect-pathway striatal neurons) shifts the balance toward the direct pathway → chorea (excess movement)
Parkinson and Huntington sit on opposite ends of the same circuit rather than being unrelated diseases — dopamine loss shifts the balance toward the indirect (movement-suppressing) pathway, causing rigidity/bradykinesia, while early indirect-pathway neuron loss in Huntington shifts the balance toward the direct (movement-facilitating) pathway, causing chorea.
Degenerative Diseases
| Disease | Mechanism | Key Findings |
|---|---|---|
| Parkinson disease | Loss of dopaminergic neurons in the substantia nigra | Resting tremor, rigidity, bradykinesia, shuffling gait, masked facies, Lewy bodies |
| Vitamin B12 deficiency | Pernicious anemia, strict vegetarian diet, tapeworm infection | Megaloblastic anemia + posterior column and lateral corticospinal degeneration |
| Wilson disease | Autosomal recessive; decreased ceruloplasmin, copper accumulation | Basal ganglia degeneration, Kayser–Fleischer rings, liver disease |
| Thiamine deficiency | Malnutrition, often alcohol-related | Wernicke encephalopathy (reversible) vs. Korsakoff syndrome (irreversible confabulation/amnesia) |
| Tay–Sachs disease | Hexosaminidase A deficiency | Cherry-red macula, developmental regression, fatal in infancy |
| Poliomyelitis | Poliovirus (RNA), fecal-oral spread; replicates in the pharynx before invading the CNS | Aseptic meningitis, destruction of anterior horn cells, flaccid paralysis; both killed (Salk) and live-attenuated (Sabin) vaccines exist |
| Rabies | Rhabdovirus, transmitted via infected saliva | Laryngeal spasm causing fear of water (hydrophobia), CNS hyperexcitability, Negri body inclusions, hippocampal degeneration; treated with passive and active immunization |
| Spongiform encephalopathies (CJD, kuru, and animal forms — scrapie, bovine spongiform encephalopathy) | Prions — misfolded, self-propagating proteins with no nucleic acid | Vacuolated ("spongiform") brain tissue, rapidly progressive dementia and ataxia, long incubation but rapid death after symptom onset; diagnosed at autopsy; no effective treatment; transmissible via contaminated neurosurgical instruments or corneal transplant |
Antiparkinsonian Pharmacology
- Levodopa — dopamine precursor that crosses the blood-brain barrier; causes on-off fluctuations with chronic use
- Carbidopa — peripheral DOPA decarboxylase inhibitor, reduces systemic conversion, does not cross the BBB itself
- Selegiline/rasagiline — selective MAO-B inhibitors
- Bromocriptine, pramipexole, ropinirole — dopamine receptor agonists
- Benztropine — antimuscarinic, helps tremor/rigidity but not bradykinesia
- Amantadine — increases dopamine release and blocks reuptake; mainly used to reduce levodopa-induced dyskinesia; toxicity includes peripheral edema and livedo reticularis
- Entacapone/tolcapone — COMT inhibitors that block peripheral (and, for tolcapone, central) breakdown of levodopa, extending its effect
Alzheimer, ALS & Huntington Drug Therapy
| Disease | Agent(s) | Mechanism |
|---|---|---|
| Alzheimer disease | Donepezil, rivastigmine, galantamine | Acetylcholinesterase inhibitors — first-line; avoid in patients with cardiac conduction abnormalities |
| Alzheimer disease (moderate–advanced) | Memantine | NMDA receptor antagonist; limits glutamate-mediated excitotoxicity |
| ALS | Riluzole | Reduces presynaptic glutamate release/excitotoxicity; modestly prolongs survival |
| Huntington disease | Tetrabenazine, deutetrabenazine | Inhibit the vesicular monoamine transporter (VMAT), reducing dopamine vesicle packaging/release to treat chorea |
Demyelinating Diseases
| Disease | Key Findings |
|---|---|
| Multiple sclerosis | Relapsing-remitting course; periventricular plaques; intention tremor, nystagmus, scanning speech (classic triad); elevated CSF IgG/oligoclonal bands |
| Friedreich ataxia | Autosomal recessive — the most common inherited ataxia; diffuse degeneration of the posterior white columns, dentate nuclei, and spinocerebellar tract; commonly associated with diabetes mellitus and cardiomyopathy |
| Guillain–Barré syndrome | Postviral autoimmune demyelination of peripheral nerves; ascending weakness; CSF shows high protein with normal cell count |
| ALS | Combined UMN + LMN degeneration; most common motor neuron disease; rapidly progressive |
| Huntington disease | CAG trinucleotide repeat expansion, chromosome 4; caudate atrophy; chorea and dementia, typically presenting in the 30s–40s |
| Krabbe disease | Deficient galactocerebrosidase; rapidly fatal infantile course |
| Metachromatic leukodystrophy | Arylsulfatase A deficiency; progressive paralysis and dementia |
MS and Guillain–Barré are both demyelinating but map to opposite compartments — MS hits oligodendrocytes and the CNS (periventricular plaques, oligoclonal bands), GBS hits Schwann cells and peripheral nerves (ascending weakness, high CSF protein without pleocytosis) — which is why their CSF findings and clinical courses look so different despite the shared underlying process.
Diseases Causing Dementia
| Disease | Key Features |
|---|---|
| Alzheimer disease | Most common cause of dementia; neurofibrillary tangles, amyloid plaques, progressive memory loss |
| Multi-infarct (vascular) dementia | Second most common cause; stepwise decline correlating with cumulative infarcts |
| HIV-associated dementia | Most common CNS manifestation of HIV; slowed cognition and ataxia |
| Frontotemporal dementia (Pick disease) | Early personality/behavioral change, possible progressive aphasia |
| Dementia with Lewy bodies | Dementia plus parkinsonian features, visual hallucinations, syncope |
🔬 Meningitis & CNS Tumors
The elevated opening pressure seen in bacterial and fungal meningitis reflects disrupted CSF production/reabsorption — the normal circuit from choroid plexus to arachnoid granulations is covered in Meninges, CSF Flow & Vascular Trauma → Ventricular System & CSF Circulation.
Meningitis by Age Group
| Age Group | Typical Organisms |
|---|---|
| Neonates | Group B Streptococcus, E. coli, Listeria |
| Children | Streptococcus pneumoniae, Neisseria meningitidis, enteroviruses (Haemophilus influenzae now rare due to vaccination) |
| Adolescents/young adults | N. meningitidis, S. pneumoniae, enteroviruses, herpes simplex virus |
| Elderly | S. pneumoniae, gram-negative rods, Listeria |
CSF Profile by Etiology
| Parameter | Bacterial | Viral | Fungal |
|---|---|---|---|
| Opening pressure | ↑ | Normal | ↑ |
| Neutrophils | ↑ | Normal | Normal |
| Lymphocytes | Normal | ↑ | ↑ |
| Glucose | ↓ | Normal | ↓ |
| Protein | ↑ | Normal | ↑ |
Glucose is the most useful discriminator on this panel because it tracks microbial metabolism rather than just inflammation — bacteria and fungi actively consume CSF glucose while viruses don't. A low glucose with only a modest cell count should point toward a fungal or partially treated bacterial process rather than a purely viral one.
- Organisms with a thick capsule visible on India ink prep suggest Cryptococcus neoformans — think HIV-associated immunocompromise
- Adults with cell-mediated immune deficiency are at increased risk for Listeria meningitis
- Predisposing factors for pneumococcal meningitis: sinusitis/otitis, sickle cell disease, alcoholism, meningeal trauma, and terminal complement (C5–C8) deficiency
CNS Tumors in Adults
| Tumor | Key Features |
|---|---|
| Metastatic disease | Nearly half of all intracranial tumors; commonly from lung, breast, GI, kidney, melanoma |
| Glioblastoma (grade IV astrocytoma) | Most common primary intracranial neoplasm; necrotic center, pseudopalisading cells, poor prognosis |
| Meningioma | Second most common primary CNS tumor; psammoma bodies; more common in women; usually resectable |
| Schwannoma | Cerebellopontine angle mass involving CN VIII; bilateral presentation suggests neurofibromatosis type 2 |
| Oligodendroglioma | Slow-growing frontal lobe tumor with "fried egg" cytoplasm appearance |
CNS Tumors in Children
| Tumor | Key Features |
|---|---|
| Pilocytic astrocytoma | Most common pediatric brain tumor; usually posterior fossa; good prognosis |
| Medulloblastoma | Most common malignant pediatric brain tumor; can obstruct the fourth ventricle; Homer-Wright rosettes |
| Ependymoma | Fourth ventricle mass; perivascular rosettes |
| Craniopharyngioma | Most common pediatric supratentorial tumor; Rathke pouch origin; bitemporal hemianopia from chiasm compression |
💢 Primary Headache Syndromes
| Type | Features | Treatment |
|---|---|---|
| Tension headache | Bilateral, band-like pressure; worsens through the day; linked to stress | NSAIDs, stress reduction; TCAs/SSRIs if severe |
| Cluster headache | Severe unilateral periorbital pain, episodic clusters, ipsilateral lacrimation/nasal congestion; more common in men | Acute: sumatriptan, oxygen; prophylaxis: verapamil |
| Migraine | Unilateral throbbing pain, may have visual aura, aggravated by activity, associated nausea/photophobia; more common in women | Acute: NSAIDs, triptans; prophylaxis: beta-blockers, TCAs |
⚗️ Autonomic Receptors & Neurotoxins
Synaptic Physiology
Cholinergic Synapse
- Released ACh acts on two receptor families
- Muscarinic — G-protein coupled
- Nicotinic — ligand-gated ion channel
- Acetylcholinesterase (AChE) terminates signaling by breaking ACh into choline + acetate
Noradrenergic Synapse
- NE is stored in vesicles and released via Ca²⁺-dependent exocytosis
- Signal termination mainly by presynaptic reuptake (Uptake 1) and enzymatic breakdown (MAO)
- Uptake 1 is the site blocked by cocaine and tricyclic antidepressants — this prolongs NE action
Autonomic Receptor Effects
| Target | Sympathetic Effect | Parasympathetic Effect |
|---|---|---|
| Vascular / visceral smooth muscle | α₁ → contraction | Muscarinic → relaxation |
| Bronchial smooth muscle | β₂ → relaxation (bronchodilation) | Muscarinic → contraction (bronchoconstriction) |
| GI wall / sphincters | β₂ relaxes wall, α₁ contracts sphincters | Muscarinic contracts wall, relaxes sphincters |
| SA node | β₁ → increased rate | Muscarinic → decreased rate |
| Ventricular myocardium | β₁ → increased contractility/conduction | Muscarinic → mild decrease in contractility |
| Pupil (radial muscle) | α₁ → mydriasis | — |
| Pupil (sphincter muscle) | — | Muscarinic → miosis |
| Ciliary muscle | β₂ → relaxes (far vision) | Muscarinic → contracts (near vision) |
| Bladder | β₂ relaxes detrusor, α₁ contracts sphincter | Muscarinic contracts detrusor, relaxes sphincter |
| Sweat glands | Muscarinic (sympathetic cholinergic exception) → secretion | — |
| Pancreatic islets | α₂ decreases, β₂ increases insulin release | — |
GABA-A Receptor Pharmacology
- GABA synthesized from glutamate by glutamate decarboxylase (requires pyridoxal phosphate, vitamin B6)
- GABA-A is a ligand-gated chloride channel — opening hyperpolarizes the neuron
- Benzodiazepines increase the frequency of channel opening
- Barbiturates increase the duration of channel opening — this is why barbiturate overdose is more dangerous (greater maximal chloride flux)
Neurotoxin Mechanisms
| Toxin | Mechanism |
|---|---|
| Tetanus toxin | Blocks glycine release from inhibitory Renshaw cells → disinhibited motor neurons → spastic paralysis |
| Strychnine | Directly antagonizes glycine receptors → loss of inhibitory tone → severe muscle spasm |
| Botulinum toxin | Prevents presynaptic ACh vesicle release at the neuromuscular junction → flaccid paralysis |
| Black widow spider / scorpion venom | Triggers massive uncontrolled presynaptic ACh release |
| α-Bungarotoxin | Irreversibly occupies nicotinic ACh receptors, blocking transmission |
These toxins split cleanly into disinhibition vs. direct blockade — tetanus and strychnine both remove inhibitory glycine tone (presynaptic release vs. postsynaptic receptor) and produce spastic, hyperexcitable states, while botulinum removes excitatory ACh release itself and produces flaccid paralysis. Same neuromuscular circuitry, opposite clinical pictures, depending on which side of the synapse is hit.
Dopaminergic Pathways
| Pathway | Projection | Function | Effect of Altered Activity |
|---|---|---|---|
| Mesolimbic | Ventral tegmental area → nucleus accumbens | Motivation, reward | ↑ activity → positive psychotic symptoms; the main therapeutic target of antipsychotics |
| Mesocortical | Ventral tegmental area → prefrontal cortex | Motivation, reward | ↓ activity → negative psychotic symptoms; antipsychotics have limited benefit here |
| Nigrostriatal | Substantia nigra → dorsal striatum | Motor control | ↓ activity → extrapyramidal symptoms; the pathway lost in Parkinson disease |
| Tuberoinfundibular | Hypothalamus → anterior pituitary | Tonic inhibition of prolactin release | ↓ activity (e.g., from antipsychotics) → hyperprolactinemia |
Neurotransmitter Changes with Disease
| Neurotransmitter | Anxiety | Depression | Schizophrenia | Alzheimer | Huntington | Parkinson |
|---|---|---|---|---|---|---|
| Acetylcholine | — | — | — | ↓ | ↓ | ↑ |
| Dopamine | — | ↓ | ↑ | — | ↑ | ↓ |
| GABA | ↓ | — | — | — | ↓ | — |
| Norepinephrine | ↑ | ↓ | — | — | — | — |
| Serotonin | ↓ | ↓ | — | — | — | ↓ |
💊 Anesthesia, Neuromuscular & Pain Pharmacology
Propofol and etomidate below act by potentiating the GABA-A chloride channel — the same receptor whose frequency/duration pharmacology is broken down in Autonomic Receptors & Neurotoxins → GABA-A Receptor Pharmacology.
Local Anesthetics
- Two structural classes — esters (benzocaine, chloroprocaine, cocaine, tetracaine) and amides (bupivacaine, lidocaine, mepivacaine, prilocaine, ropivacaine)
- Mechanism — block voltage-gated Na⁺ channels from the inner (cytoplasmic) side of the axonal membrane; most effective against rapidly firing/small fibers
- Often co-administered with epinephrine, which prolongs the block by causing local vasoconstriction and slowing systemic absorption
- In infected (acidic) tissue, anesthetics stay charged and can't penetrate the membrane as well, so more drug is needed for adequate anesthesia
- Order of sensory loss — pain first, then temperature, then touch, then pressure
- Adverse effects — CNS excitation/seizures, cardiovascular toxicity (notably bupivacaine), arrhythmias (cocaine), methemoglobinemia (benzocaine, prilocaine)
General Anesthetics
- CNS-active anesthetics must be lipid-soluble (to cross the BBB) or be actively transported
- Lower blood solubility (e.g., nitrous oxide) → faster induction and recovery; higher lipid solubility (e.g., isoflurane) → greater potency
- MAC (minimum alveolar concentration) is the dose that prevents movement in 50% of subjects to a noxious stimulus — potency is inversely related to MAC (potency = 1/MAC)
| Agent | Class | Notes |
|---|---|---|
| Sevoflurane, desflurane, isoflurane | Inhaled | Respiratory and myocardial depression, ↓ BP, ↑ cerebral blood flow (↑ ICP), postoperative nausea; risk of malignant hyperthermia |
| Nitrous oxide | Inhaled | Very low potency but rapid onset/offset; can expand gas-filled body cavities (e.g., a pneumothorax) |
| Propofol | IV | Potentiates GABA-A, inhibits NMDA; most common agent for induction; causes respiratory depression and hypotension |
| Etomidate | IV | Potentiates GABA-A; hemodynamically neutral, but can cause acute adrenal insufficiency |
| Ketamine | IV | NMDA antagonist; sympathomimetic (↑ BP, HR, cerebral blood flow) with dissociative/psychotomimetic effects (hallucinations) |
Blood:gas solubility and lipid solubility answer different questions and shouldn't be conflated — low blood solubility (nitrous oxide) determines how fast an agent equilibrates (fast on/off), while lipid solubility determines potency (low MAC). An agent can be fast and weak or slow and strong, and questions often exploit exactly that mismatch.
Neuromuscular Blocking Drugs
- Used for surgical paralysis or mechanical ventilation; act selectively at nicotinic Nm receptors of the neuromuscular junction
- Depolarizing — succinylcholine is a strong Nm agonist that causes sustained depolarization and blocks further contraction; early "Phase I" block has no antidote and is worsened by cholinesterase inhibitors, while a later "Phase II" block can be reversed by them; risks include hyperkalemia and malignant hyperthermia
- Nondepolarizing — atracurium, cisatracurium, pancuronium, rocuronium, and vecuronium competitively block Nm receptors; reversed with sugammadex or a cholinesterase inhibitor (e.g., neostigmine, usually paired with an anticholinergic like glycopyrrolate to blunt muscarinic bradycardia)
Malignant Hyperthermia
- Rare, life-threatening hypermetabolic reaction to potent inhaled anesthetics or succinylcholine in susceptible individuals (RYR1 or DHPR receptor mutations)
- Massive sarcoplasmic reticulum Ca²⁺ release → sustained muscle contraction, hypercapnia, tachycardia, rigidity, rhabdomyolysis, hyperthermia
- Treatment — dantrolene, a ryanodine receptor antagonist
Skeletal Muscle Relaxants
| Drug | Mechanism | Clinical Use |
|---|---|---|
| Baclofen | GABA-B agonist at the spinal cord | Spasticity, dystonia, multiple sclerosis |
| Cyclobenzaprine | Centrally acting (brainstem); structurally related to TCAs | Muscle spasm; can cause anticholinergic effects and sedation |
| Dantrolene | Blocks ryanodine receptor-mediated Ca²⁺ release directly in skeletal muscle | Malignant hyperthermia, neuroleptic malignant syndrome |
| Tizanidine | Central α₂-agonist | Spasticity from MS, ALS, cerebral palsy |
Opioid Analgesics
- Act as agonists at μ (β-endorphin), δ (enkephalin), and κ (dynorphin) opioid receptors — close presynaptic Ca²⁺ channels and open postsynaptic K⁺ channels, reducing synaptic transmission and release of ACh, norepinephrine, serotonin, glutamate, and substance P
- Full agonists — morphine, meperidine, methadone, codeine (a prodrug), fentanyl
- Partial agonist — buprenorphine; mixed agonist/antagonists — butorphanol, nalbuphine (cause less respiratory depression than full agonists but can precipitate withdrawal in a patient already on a full agonist, and are not easily reversed by naloxone)
- Antagonists — naloxone (acute overdose reversal), naltrexone/methylnaltrexone (relapse prevention, peripheral effects)
- Clinical use — moderate-to-severe pain, cough suppression, antidiarrheal (loperamide, diphenoxylate), acute pulmonary edema, opioid use disorder maintenance (methadone, buprenorphine/naloxone)
- Adverse effects — nausea, pruritus (histamine release), constipation, respiratory depression, miosis (except meperidine, which causes mydriasis); tolerance does not develop to miosis or constipation
Tramadol & Capsaicin
- Tramadol — a very weak opioid agonist that also inhibits norepinephrine/serotonin reuptake; used for chronic pain, but lowers the seizure threshold and carries a serotonin syndrome risk
- Capsaicin — desensitizes nociceptive fibers by depleting substance P; used topically for musculoskeletal and neuropathic pain
🎯 Thalamus & Hypothalamus
Hemorrhagic damage to the mammillary bodies mentioned below is the anatomic basis of Wernicke encephalopathy — its presentation and progression to irreversible Korsakoff syndrome is covered in Degenerative, Demyelinating & Dementing Diseases → Degenerative Diseases.
Thalamic Relay Nuclei
| Nucleus | Input | Output |
|---|---|---|
| Ventral posterolateral (VPL) | Spinothalamic tract, medial lemniscus | Somatosensory cortex (body) |
| Ventral posteromedial (VPM) | Trigeminothalamic tract, taste pathway | Somatosensory cortex (face) |
| Lateral geniculate body | Optic tract | Primary visual cortex |
| Medial geniculate body | Inferior colliculus (auditory) | Primary auditory cortex |
| Ventral lateral | Cerebellum, basal ganglia | Motor & premotor cortex |
| Anterior nucleus | Mammillary tract, fornix | Cingulate gyrus — limbic (Papez) circuit |
| Pulvinar | Visual/parietal/temporal association areas | Association cortices — multisensory integration |
VPL and VPM are the same relay function split by body region — VPL carries spinothalamic/DCML input from the body, VPM carries trigeminothalamic input from the face — so a lesion pattern that spares the face but affects the body (or vice versa) localizes to a point before these two pathways converge onto a single relay.
Hypothalamic Nuclei & Function
- Supraoptic / paraventricular nuclei — produce ADH and oxytocin; destruction causes diabetes insipidus
- Anterior nucleus — heat dissipation, drives parasympathetic tone; destruction causes hyperthermia
- Posterior nucleus — heat conservation, drives sympathetic tone; destruction impairs thermoregulation
- Suprachiasmatic nucleus — receives direct retinal input; master clock for circadian rhythm
- Lateral nucleus — hunger center; stimulation drives eating, destruction causes starvation ("Lateral = Little, thin")
- Ventromedial nucleus — satiety center; destruction causes hyperphagia and obesity
- Mammillary bodies — receive hippocampal input; site of classic hemorrhagic injury in Wernicke encephalopathy
- Arcuate nucleus — produces hypothalamic-releasing hormones; dopaminergic neurons here tonically inhibit prolactin
Limbic System
- Coordinates emotion and instinctual behavior, broadly summarized as the "five F's"
- Feeding
- Feeling (emotional processing)
- Fighting
- Fleeing
- Sexual activity ("mating")
- Regulated primarily through the hypothalamus and autonomic nervous system
- Core anatomic components
- Anterior nucleus of the thalamus
- Cingulate gyrus
- Mammillary bodies
- Septal area
- Hippocampus — memory consolidation
- Amygdala — fear processing and emotional salience; bilateral destruction produces Klüver–Bucy syndrome
- These structures interconnect through the Papez circuit (hippocampus → mammillary bodies → anterior thalamic nucleus → cingulate gyrus → back to hippocampus), the classic anatomic substrate for emotional memory
See: Degenerative, Demyelinating & Dementing Diseases → Basal Ganglia Circuitry
🧭 Psychiatry & Behavioral Science
Why antipsychotics relieve positive symptoms but not negative ones — and why they cause extrapyramidal side effects and hyperprolactinemia — follows from the four dopamine pathways (mesolimbic, mesocortical, nigrostriatal, tuberoinfundibular) mapped in Autonomic Receptors & Neurotoxins → Dopaminergic Pathways.
Nonpharmacologic Modalities
- Classical conditioning — a natural reflex is paired with a neutral stimulus until the stimulus alone triggers the response
- Operant conditioning — behavior frequency is shaped by reinforcement (positive, negative, continuous, fixed, or variable schedules)
- Systematic desensitization — pairs relaxation with graded exposure to a feared stimulus; used to treat phobias
- Cognitive therapy — restructures distorted negative thought patterns; effective for depression and anxiety
- Electroconvulsive therapy — rapid-acting treatment for severe/refractory major depression; retrograde amnesia is the main side effect
- Psychoanalysis — Freudian model of id (drives), ego (reality-testing), and superego (conscience)
Eating Disorders
| Disorder | Key Features |
|---|---|
| Anorexia nervosa | Body weight well below expected, distorted body image, amenorrhea; pharmacotherapy generally ineffective — behavioral/family therapy preferred |
| Bulimia nervosa | Binge eating with compensatory purging; normal weight maintained; enamel erosion, parotid hypertrophy; fluoxetine is first-line pharmacotherapy |
| Binge eating disorder | Recurrent binges without purging; often with weight gain |
Drugs of Abuse — Intoxication vs. Withdrawal
| Substance | Intoxication | Withdrawal |
|---|---|---|
| Alcohol | Sedation, ataxia, slurred speech | Tremor, seizures, delirium tremens — potentially fatal |
| Opioids | Constipation, pinpoint pupils, respiratory depression | Diarrhea, sweating, piloerection, insomnia — uncomfortable but not typically fatal |
| Benzodiazepines/barbiturates | Sedation, mental sluggishness | Anxiety, seizures — potentially fatal |
| Cocaine/amphetamine | Insomnia, agitation, hypertension, psychosis | Depression, hypersomnia, craving |
| Nicotine | Increased heart rate/blood pressure at low dose | Irritability, difficulty concentrating |
Schizophrenia Spectrum
- Core diagnostic features: hallucinations (usually auditory), delusions, disorganized speech/behavior, and negative symptoms (flat affect, avolition)
- Requires at least 1 month of active symptoms with functional impairment for 6 months
- Dopamine excess theorized to underlie positive symptoms
- Brief psychotic disorder — under 1 month; schizophreniform — 1 to 6 months; schizoaffective — psychosis plus a mood disorder
- Delusional disorder — fixed, non-bizarre delusions (beliefs that could plausibly happen) without hallucinations; overall functioning and behavior remain largely intact aside from the delusion itself
Brief psychotic disorder, schizophreniform disorder, and schizophrenia are the same clinical picture at different points on a duration timeline (under 1 month, 1–6 months, over 6 months) rather than different diseases — symptom severity doesn't reclassify them, only how long the active symptoms and impairment have persisted.
Antipsychotic Pharmacology
- Typical (first-generation) antipsychotics block dopamine D2 receptors
- High potency (haloperidol) — more extrapyramidal symptoms, fewer anticholinergic effects
- Low potency (chlorpromazine) — more anticholinergic/antihistaminergic/alpha-blocking effects, fewer EPS
- Atypical antipsychotics (clozapine, olanzapine, risperidone, quetiapine, aripiprazole) — lower EPS risk but weight gain and metabolic effects; clozapine carries agranulocytosis risk requiring blood monitoring
- Extrapyramidal symptom timeline: acute dystonia (days) → akathisia (weeks) → bradykinesia (months) → tardive dyskinesia (months–years, often irreversible)
- Neuroleptic malignant syndrome — rigidity, hyperthermia, autonomic instability; treated with dantrolene and immediate drug discontinuation
Mood Disorders & Antidepressants
- Major depressive disorder — at least 2 weeks of depressed mood/anhedonia plus associated neurovegetative symptoms, summarized by the mnemonic SIG E CAPS
- Sleep disturbance
- Interest loss (anhedonia)
- Guilt
- Energy loss
- Concentration difficulty
- Appetite change
- Psychomotor agitation or retardation
- Suicidal ideation
- Decreased norepinephrine and serotonin are implicated; decreased REM latency is a classic finding
- Atypical depression — hypersomnia, weight gain, mood reactivity; responds well to MAOIs
- Seasonal affective disorder — light-deficiency-related winter depression, treated with light therapy
- Postpartum depression — depressive symptoms persisting beyond 2 weeks after delivery, occasionally lasting over a year; managed the same as standard MDD
- Dysthymia — a milder, chronic form of depression meeting fewer diagnostic criteria but persisting for at least 2 years
| Class | Mechanism | Notable Effects |
|---|---|---|
| SSRIs | Block serotonin reuptake | Sexual dysfunction; contraindicated with MAOIs (serotonin syndrome risk) |
| SNRIs | Block serotonin + norepinephrine reuptake | Also used for neuropathic pain and fibromyalgia |
| TCAs | Block serotonin + norepinephrine reuptake | Anticholinergic effects; overdose causes cardiotoxicity and is potentially fatal |
| MAOIs | Block monoamine breakdown | Hypertensive crisis with tyramine-containing foods; contraindicated with SSRIs/meperidine |
| Bupropion | Blocks norepinephrine/dopamine reuptake | Lowers seizure threshold; no sexual side effects; used for smoking cessation |
| Mirtazapine | α2-antagonist, increases NE/5-HT release | Weight gain, sedation — useful with insomnia |
| Trazodone | Inhibits serotonin reuptake | Sedating, useful for insomnia; rare but notable risk of priapism |
| Maprotiline | Blocks norepinephrine reuptake | Sedation, orthostatic hypotension |
Other Neuropsychiatric Disorders
| Disorder | Key Features |
|---|---|
| Bipolar disorder | Manic episodes — rapid speech, decreased need for sleep, hyperenergetic state, impaired judgment — alternating with depressive episodes; treated with lithium, certain anticonvulsants, or atypical antipsychotics |
| Cyclothymic disorder | Chronic alternation between hypomania and mild depression lasting at least 2 years — a milder pattern than bipolar disorder |
| Delirium | Acute, fluctuating impairment of cognition and attention, often worse at night ("sundowning"); most common psychiatric problem seen in hospitalized patients; treatment targets the underlying medical cause |
| Dissociative disorders | Psychological stress produces memory loss or loss of identity/function (amnesia, fugue, dissociative identity disorder, depersonalization); managed with psychotherapy |
| Somatoform disorders | Physical symptoms occur without an identifiable organic cause; the patient genuinely believes they are ill (distinguishing this from factitious disorder) |
| Factitious disorder | Patient consciously produces symptoms without an external motive — the "reward" is the sick role itself |
| Malingering | Patient consciously fabricates symptoms for a clear secondary gain (money, drugs, avoiding work); patients often disengage once confronted |
| Attention deficit hyperactivity disorder | Hyperactivity, short attention span, high sensitivity to stimuli; more common in boys; treated with stimulant medication |
| Tourette syndrome | Both involuntary motor and vocal tics required for diagnosis; onset in childhood; treated with haloperidol or clonidine |
Anxiety Disorders
- Panic disorder — discrete episodes of intense anxiety with palpitations, chest pain; associated with mitral valve prolapse
- Generalized anxiety disorder — persistent worry for over 6 months; SSRIs and buspirone are first-line
- PTSD — follows trauma; hypervigilance, flashbacks, nightmares
- OCD — recurrent intrusive thoughts and compulsive behaviors; SSRIs and clomipramine are effective
- Phobias — irrational situational fear; treated with systematic desensitization; propranolol helps physical symptoms
Other Psychiatric Drugs
| Drug | Mechanism | Clinical Use | Notable Effects |
|---|---|---|---|
| Lithium | Unclear; interferes with second-messenger (inositol/DAG) signaling | Bipolar disorder, acute mania | Narrow therapeutic window requiring close monitoring; tremor, hypothyroidism, nephrogenic diabetes insipidus, teratogenicity |
| Buspirone | Serotonin receptor partial agonist | Generalized anxiety disorder | Non-sedating, low abuse potential; dizziness, headache |
| Varenicline | Partial agonist at nicotinic receptors | Smoking cessation | Nausea, abnormal dreams, insomnia |
| Methylphenidate | Blocks presynaptic reuptake of norepinephrine and dopamine | ADHD, narcolepsy | Insomnia, restlessness; avoid in patients with cardiac disease or hypertension |
Defense Mechanisms
Immature
- Acting out — discharging stress through impulsive action rather than reflection
- Denial — refusing to accept reality
- Displacement — redirecting feelings to a safer target
- Dissociation — a break in memory or identity in response to overwhelming stress
- Identification — patterning one's own behavior after someone else's
- Intellectualization — using detached, analytical reasoning to distance oneself from anxiety
- Isolation of affect — describing a distressing event while stripping away the associated emotion
- Projection — attributing one's own traits to others
- Rationalization — justifying unacceptable feelings with logical-sounding reasons
- Reaction formation — expressing the opposite of an unacceptable feeling
- Regression — reverting to childlike behavior under stress
- Repression — unconsciously blocking an unacceptable feeling from awareness
- Splitting — viewing people as all good or all bad
Mature
- Altruism — helping others as a way of managing one's own distress
- Humor — using comedy to diffuse tension
- Sublimation — channeling an unacceptable impulse into a socially productive outlet
- Suppression — consciously and deliberately postponing a distressing thought
Personality Disorders
Cluster A — "Weird" (odd, eccentric)
| Disorder | Characteristics |
|---|---|
| Paranoid | Hostile, suspicious, and mistrustful of others' motives without clear justification; more common in men |
| Schizoid | Voluntarily withdrawn from social contact but without psychological distress about it; more common in men |
| Schizotypal | Odd beliefs, magical thinking, and eccentric appearance or behavior, but without frank psychosis |
Cluster B — "Wild" (dramatic, erratic)
| Disorder | Characteristics |
|---|---|
| Histrionic | Dramatic, overemotional, and sexually provocative; struggles to sustain close friendships; more common in women |
| Narcissistic | Grandiose self-image, hypersensitivity to criticism, and a marked lack of empathy for others |
| Antisocial | Persistent disregard for societal rules and others' rights, often with criminal behavior; more common in men; requires a childhood history of conduct disorder |
| Borderline | Unstable relationships and self-image, impulsivity, suicidal gestures, intense fear of abandonment; relies heavily on splitting; more common in women |
Cluster C — "Worried" (anxious, fearful)
| Disorder | Characteristics |
|---|---|
| Avoidant | Shy and withdrawn involuntarily, out of fear of rejection — unlike the voluntary withdrawal of schizoid; more common in women |
| Obsessive-compulsive | Rigid, perfectionistic, stubborn, and preoccupied with orderliness; diagnosed roughly twice as often in men |
| Dependent | Defers decision-making to others, uncomfortable in positions of authority, but — unlike avoidant personality — able to sustain close relationships; more common in women |
| Passive-aggressive | Outwardly compliant but covertly obstinate, inefficient, and procrastinating as an indirect expression of resistance |
🌙 Sleep Physiology & Disorders
REM sleep behavior disorder (loss of REM atonia) is one of the earliest clinical markers of the same synuclein pathology that underlies Parkinson disease and Lewy body dementia, both covered in Degenerative, Demyelinating & Dementing Diseases → Degenerative Diseases.
Sleep Stages (EEG Correlates)
- Slow-wave (N3) sleep is when night terrors, sleepwalking, and bedwetting occur
- REM sleep occurs roughly every 90 minutes and features rapid eye movements, skeletal muscle atonia, penile erections, and most vivid dreaming
- Serotonin from the raphe nuclei helps initiate sleep; the reticular activating system maintains wakefulness
- Aging reduces N3 (slow-wave) sleep and increases nighttime awakenings
REM is called "paradoxical" sleep because the EEG looks like wakefulness (fast, low-amplitude) even though the body is atonic and the person is deeply asleep. That mismatch between cortical and muscular state is exactly what fails in REM sleep behavior disorder, where atonia is lost and the sleeper physically acts out dreams.
Factors Affecting Sleep Architecture
- Alcohol, benzodiazepines, and barbiturates all reduce N3 and REM sleep (benzodiazepines are used therapeutically for sleepwalking/night terrors, which arise from N3)
- Depression classically reduces N3 sleep, increases REM sleep and shortens REM latency, and causes repeated nighttime and early-morning awakenings
- Narcolepsy is marked by shortened REM latency — REM intrudes abnormally early, including at sleep onset
- REM sleep behavior disorder — loss of the normal muscle atonia of REM leads to dream enactment (often violent movements/vocalization); strongly associated with Lewy body dementia and Parkinson disease, sometimes preceding the motor diagnosis by years
Sleep Disorders
| Disorder | Key Features |
|---|---|
| Insomnia | Common; linked with anxiety; daytime sleepiness |
| Restless leg syndrome | Uncomfortable urge to move legs; secondary causes include iron deficiency and renal disease |
| Nightmares | Occur in REM; patient fully wakes and recalls the dream |
| Night terrors | Occur in non-REM (slow-wave) sleep; patient appears distressed but is not truly awake, and typically has no recall |
| Central sleep apnea | Absent respiratory effort, distinct from obstructive apnea |
| Narcolepsy | Sudden onset of REM sleep; may include cataplexy and hypnagogic/hypnopompic hallucinations |
| Nocturnal enuresis | Behavioral therapy (enuresis alarm) is first line; imipramine or desmopressin second line |
🧬 Development of the Nervous System
Arnold–Chiari malformation is linked to syringomyelia below — the resulting "cape-like" pain/temperature loss from ventral white commissure damage is detailed in Stroke Syndromes & Neurologic Localization → Classic Spinal Cord Lesion Patterns.
Neural Tube → CNS
- Neural tube gives rise to the entire central nervous system (brain + spinal cord)
- Tube wall organizes into two functional plates
- Basal plate — ventral → motor neuron populations
- Alar plate — dorsal → sensory neuron populations
- A groove called the sulcus limitans marks the boundary between the two plates
- Forebrain vesicle → splits into telencephalon (cerebral hemispheres) and diencephalon (thalamus)
- Midbrain vesicle → stays as mesencephalon
- Hindbrain vesicle → splits into metencephalon (pons + cerebellum) and myelencephalon (medulla)
- Caudal neural tube → spinal cord
The basal/alar plate split (motor ventral, sensory dorsal) is the same organizational logic that resurfaces later in the adult spinal cord and brainstem — knowing which plate a structure derives from predicts whether a lesion there produces a motor or a sensory deficit, well before you're looking at adult neuroanatomy.
Congenital Malformations
| Condition | Key Features |
|---|---|
| Fetal alcohol syndrome | Leading preventable cause of intellectual disability; cardiac septal defects; widely spaced eyes, long smooth philtrum; growth restriction |
| Spina bifida | Failure of posterior neuropore closure
|
| Hydrocephalus | CSF accumulates in ventricles/subarachnoid space; congenital aqueductal blockage classic cause; CMV or toxoplasma infection can contribute; enlarged head circumference in neonates |
| Dandy–Walker malformation | Fourth ventricle dilates → cerebellar hypoplasia; failure of the foramina of Luschka/Magendie to open |
| Anencephaly | Brain fails to develop from failure of anterior neuropore closure; maternal AFP rises; head circumference is decreased |
| Arnold–Chiari malformation | Cerebellar vermis herniates through foramen magnum; associated hydrocephalus and myelomeningocele; linked to syringomyelia |
Neonatal & Birth-Related Cranial Injuries
| Condition | Key Features |
|---|---|
| Neonatal intraventricular hemorrhage | Bleeding into the ventricles from the germinal matrix, a highly vascular layer in premature infants with poor autoregulation; presents with altered consciousness, bulging fontanelle, hypotension, or seizures |
| Caput succedaneum | Benign, self-limited edematous scalp swelling above the periosteum; crosses suture lines; from prolonged engagement in the birth canal; resolves on its own |
| Subgaleal hemorrhage | Serious bleeding between the periosteum and galea from torn emissary veins, often after vacuum-assisted delivery; diffuse, fluctuant swelling that can extend broadly and cause hypovolemic shock |
| Cephalohematoma | Blood collects between the skull and periosteum; does not cross suture lines; associated with forceps delivery; can contribute to indirect (unconjugated) hyperbilirubinemia as the blood breaks down |