Upper vs Lower Motor Neuron Lesion Localisation — GlobalVetCo

Upper vs Lower Motor Neuron Lesion Localisation

Global Vet & Co · Educational Series · Physiology
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Narration for: Upper vs Lower Motor Neuron Lesion Localisation
~20 min read · Clinically structured · Updated for practice & exams
Upper vs Lower Motor Neuron Lesion Localisation — clinical illustration (GlobalVetCo)
Canine spinal cord segmental anatomy with UMN and LMN pathway overlay showing lesion localisation by clinical sign patterns.

A clinical reasoning framework for neuroanatomical lesion localisation using gait analysis, postural reactions, spinal reflexes, and muscle tone — with systematic interpretation of UMN vs LMN patterns and their clinical significance.

Key takeaways
  • UMN signs = exaggerated spinal reflexes + increased muscle tone + disuse atrophy (slow).
  • LMN signs = reduced/absent spinal reflexes + decreased muscle tone + rapid neurogenic atrophy.
  • The combination of UMN signs in the pelvic limbs with LMN signs in the thoracic limbs localises to C6–T2.
  • Postural reactions (knuckling, hopping) are the most sensitive indicators of neurological dysfunction — they deteriorate before gait abnormalities are obvious.
  • The cutaneous trunci reflex localises thoracolumbar lesions to within 2–3 vertebral segments.
Red flags / do not miss
  • Bilateral LMN signs in all four limbs + depressed mentation → brainstem or diffuse lower motor neuron disease (e.g., botulism, tick paralysis, acute polyradiculoneuritis).
  • UMN signs in all four limbs with normal mentation → C1–C5 or C6–T2 cervical lesion — respiratory compromise is imminent with C1–C5 lesions due to phrenic nerve involvement (C5–C7).
  • Acute onset UMN paraplegia with loss of deep pain perception → spinal cord injury requiring emergency decompression — the 'deep pain negative' window is approximately 24–48 hours.

Introduction: Why Lesion Localisation Comes First

In veterinary neurology, the single most valuable question is not 'What is the disease?' but 'WHERE is the lesion?' The answer to that question — derived entirely from the neurological examination — narrows the differential diagnosis from hundreds of possibilities to a handful. A T3–L3 myelopathy has a completely different differential list from an L4–S3 neuropathy. And the key to that localisation is understanding the difference between upper motor neuron (UMN) and lower motor neuron (LMN) signs.

This article presents a systematic, stepwise clinical reasoning framework. We begin with the anatomy of the UMN and LMN systems, then progress through gait analysis, postural reactions, spinal reflexes, and muscle tone. By the end, you will be able to examine any neurological patient and answer the four localisation questions: (1) Is it UMN or LMN — or both? (2) Which limbs are affected? (3) What spinal cord segment does that implicate? (4) What is the most likely differential?

The motor pathway: brain to muscleUMN (Upper Motor Neuron):
Motor cortex (precentral gyrus) → internal capsule → cerebral peduncle →
pyramids → decussation at pyramidal decussation (medulla) →
lateral corticospinal tract (in lateral funiculus of spinal cord) →
synapses on LMN in ventral grey horn.

LMN (Lower Motor Neuron):
Cell body in ventral grey horn of spinal cord (or brainstem motor nucleus) →
axon exits via ventral root → spinal nerve → peripheral nerve →
neuromuscular junction → muscle fibre.

Anatomy: UMN vs LMN — Two Neurons, One Goal

Upper Motor Neuron (UMN) System

The UMN system comprises all motor pathways that originate in the brain and descend through the spinal cord to synapse on LMNs in the ventral horn. The principal UMN tracts are: (1) the lateral corticospinal tract (voluntary skilled movement in primates; less important in quadrupeds), (2) the rubrospinal tract (facilitates flexor muscles, inhibits extensors), (3) the vestibulospinal tract (facilitates extensor muscles for antigravity support), and (4) the reticulospinal tract (regulates muscle tone and postural adjustments).

In quadrupeds, the corticospinal tract is less dominant than in primates — domestic animals rely heavily on the rubrospinal, vestibulospinal, and reticulospinal tracts for locomotion. This is why a lesion restricted to the motor cortex in a dog may produce only subtle gait deficits, whereas a comparable lesion in a human would cause dense hemiparesis.

UMNs are entirely within the central nervous system (CNS). A lesion anywhere along the UMN pathway — from the motor cortex through the spinal cord white matter — produces UMN signs CAUDAL to the lesion. The key UMN signs are: (1) exaggerated spinal reflexes (hyperreflexia), (2) increased muscle tone (spasticity), (3) disuse muscle atrophy (slow, mild), and (4) abnormal postural reactions.

Lower Motor Neuron (LMN) System

The LMN is the final common pathway — the neuron whose cell body lies in the ventral horn of the spinal cord (or a brainstem motor nucleus) and whose axon travels through the peripheral nerve to innervate skeletal muscle fibres. A lesion of the LMN anywhere along its course — cell body, ventral root, spinal nerve, peripheral nerve, or neuromuscular junction — produces LMN signs in the muscles that neuron supplies.

The key LMN signs are: (1) reduced or absent spinal reflexes (hyporeflexia/areflexia), (2) decreased muscle tone (flaccidity), (3) rapid, severe neurogenic atrophy (within 7–10 days), and (4) fibrillation potentials on electromyography (EMG) after 5–7 days.

Feature UMN signs LMN signs
Spinal reflexes Normal to exaggerated (hyperreflexia) Reduced to absent (hyporeflexia/areflexia)
Muscle tone Increased (spasticity, 'clasp-knife') Decreased (flaccidity)
Muscle atrophy Slow, mild (disuse atrophy) Rapid, severe (neurogenic atrophy — 7–10 days)
EMG findings Normal (no denervation) Fibrillation potentials and positive sharp waves (after 5–7 days)
Postural reactions Delayed/absent Delayed/absent (but for LMN reasons — can't support weight)
Spinal cord segment affected White matter tracts (descending pathways) Grey matter (ventral horn cell bodies) OR ventral roots OR peripheral nerves
Example lesion T3–L3 disc extrusion → UMN pelvic limbs L4–S3 disc extrusion → LMN pelvic limbs

Step 1: Gait Analysis — The First Observation

Gait analysis is performed BEFORE you touch the patient. Watch the animal walk, trot, and turn. Ask: Is there ataxia? If so, is it sensory (proprioceptive — wide-based, knuckling, scuffing), vestibular (head tilt, leaning, circling), or cerebellar (intention tremor, hypermetria, dysmetria, truncal sway)? Is there paresis (weakness)? Which limbs are affected?

Gait finding UMN interpretation LMN interpretation Localisation clue
Ataxia + paresis in pelvic limbs only UMN — T3–L3 lesion LMN — L4–S3 lesion Check patellar reflex: normal/hyper = UMN (T3–L3); reduced = LMN (L4–L6)
Ataxia + paresis in all four limbs UMN — C1–C5 or C6–T2 lesion LMN — diffuse neuromuscular disease Check thoracic limb reflexes: normal/hyper = C1–C5; reduced = C6–T2 (LMN to thoracic limbs)
Short-strided, 'choppy' gait in pelvic limbs UMN — spastic paresis N/A — LMN gait is long-strided or collapsing Spasticity with exaggerated reflexes confirms UMN
Plantigrade stance (hock drops) UMN — but unusual; often combined UMN/LMN LMN — tibial nerve dysfunction (L6–S1) Plantigrade stance + absent withdrawal = sciatic neuropathy
Schiff-Sherrington posture UMN — SEVERE T3–L3 lesion The thoracic limb rigidity is UMN (loss of ascending inhibition from border cells in L1–L7) This is NOT a cervical lesion! The thoracic limbs are neurologically NORMAL — the rigidity is 'release' phenomenon.

Step 2: Postural Reactions — The Most Sensitive Test

Postural reactions test the entire sensorimotor pathway: sensory receptors in the paw → peripheral nerve → spinal cord → brainstem → cerebellum → motor cortex → descending UMN pathways → LMN → muscle. Because they travel the full neuraxis, postural reactions are the MOST sensitive indicator of neurological dysfunction — they deteriorate BEFORE gait abnormalities, paresis, or reflex changes.

Key Postural Reaction Tests

  • Paw positioning (knuckling test): Turn the paw under so the animal stands on its dorsal surface. A normal animal immediately returns the paw to its normal position. Delayed correction = neurological deficit. This is the most sensitive single test.
  • Hopping: Support most of the animal's weight and hop it laterally on one limb. Delayed or absent hopping = lateralised neurological deficit.
  • Hemi-walking: Walk the animal with the limbs of one side lifted. Compare left vs right — asymmetry is highly significant.
  • Wheelbarrowing: Support the pelvic limbs and walk forward on the thoracic limbs. Assess thoracic limb coordination. Then reverse (support thoracic limbs, walk on pelvic limbs).
  • Extensor postural thrust: Lower the pelvic limbs toward the ground — the normal response is to extend the limbs backward to meet the surface. Absence indicates a pelvic limb neurological deficit.

Postural reaction deficits localise the lesion to the side (ipsilateral) and spinal cord region (cervical, thoracolumbar, or lumbosacral) of dysfunction. BUT they do not distinguish UMN from LMN disease — both will depress postural reactions. For UMN vs LMN distinction, you need spinal reflexes.

Step 3: Spinal Reflexes — The LMN Test

Spinal reflexes test the integrity of the LMN reflex arc: sensory afferent (Ia and II fibres from the muscle spindle) → dorsal root → synapse in the spinal cord grey matter → LMN → effector muscle. A spinal reflex is exaggerated (hyperreflexia) when the LMN arc is intact but UMN inhibition is lost (UMN lesion). It is reduced or absent (hyporeflexia/areflexia) when the LMN arc itself is damaged (LMN lesion).

Reflex Spinal segments Peripheral nerve How to test UMN lesion: expected LMN lesion: expected
Patellar (quadriceps) L4–L6 Femoral nerve Tap patellar tendon with limb relaxed in slight flexion Normal to exaggerated (hyperreflexia) Reduced to absent
Gastrocnemius L7–S1 Tibial branch of sciatic Tap gastrocnemius tendon with hock slightly flexed Normal to exaggerated Reduced to absent
Cranial tibial L6–L7 Peroneal branch of sciatic Tap cranial tibial muscle belly Normal to exaggerated Reduced to absent
Withdrawal (flexor) C6–T2 (thoracic limb); L6–S1 (pelvic limb) Multiple Pinch digit; animal flexes limb away Normal (withdrawal intact); may be exaggerated Reduced to absent
Biceps brachii C6–C8 Musculocutaneous nerve Tap biceps tendon with elbow slightly extended Normal to exaggerated Reduced to absent
Triceps brachii C7–T1 Radial nerve Tap triceps tendon with elbow flexed Normal to exaggerated Reduced to absent
Perineal (anal) S1–S3 Pudendal nerve Touch perineum; observe anal sphincter contraction Normal (UMN does not affect this reflex significantly) Reduced to absent — indicates S1–S3 or pudendal nerve lesion

Step 4: Muscle Tone and Atrophy — The Timeline Clue

Muscle Tone

Assess muscle tone by passively flexing and extending each limb through its normal range of motion. Increased tone (spasticity, 'clasp-knife' resistance that suddenly gives way) = UMN lesion. Decreased tone (flaccidity, limb feels heavy and limp) = LMN lesion. Normal tone with hyperreflexia still suggests UMN disease — tone alone can be misleading in acute lesions where spasticity has not yet developed.

Muscle Atrophy

The rate of atrophy is diagnostically valuable. Neurogenic atrophy (LMN lesion) begins within 7–10 days and is SEVERE — the muscle loses 50–70% of its mass within 3–4 weeks. Disuse atrophy (UMN lesion) takes weeks to months and is MILD — perhaps 20–30% mass loss. This is because the trophic influence of the nerve on the muscle is preserved in UMN disease but lost in LMN disease. Rapid, severe, unilateral muscle atrophy = LMN lesion until proven otherwise.

Clinical scenario — Unilateral temporalis muscle atrophy
A 7-year-old Golden Retriever presents with marked atrophy of the LEFT temporalis and masseter muscles. The spinal reflexes in all four limbs are normal, and there is no ataxia or paresis. The lesion is: the LEFT trigeminal nerve (mandibular branch) — a pure LMN lesion of cranial nerve V motor fibres. This is NOT a CNS lesion, not spinal cord, not UMN. The differential includes trigeminal nerve sheath tumour, neuritis, or idiopathic trigeminal neuropathy.

Putting it Together: Spinal Cord Segmental Localisation

Spinal cord segments Thoracic limb signs Pelvic limb signs Key reflexes to check Example condition
C1–C5 UMN (with normal to exaggerated reflexes) — all four limbs affected UMN All limb reflexes normal to exaggerated; may see cervical pain Cervical disc disease (C2–C5), atlantoaxial instability, Wobbler syndrome (caudal cervical)
C6–T2 LMN (reduced reflexes, flaccidity, rapid atrophy of thoracic limb muscles) UMN (normal to exaggerated reflexes, spasticity) Thoracic limb reflexes REDUCED; pelvic limb reflexes EXAGGERATED Caudal cervical disc disease, Wobbler syndrome, brachial plexus avulsion (unilateral)
T3–L3 NORMAL (UMN tracts to thoracic limbs have already exited) UMN (spasticity, exaggerated patellar reflex, proprioceptive ataxia) Thoracic limb reflexes NORMAL; pelvic limb reflexes NORMAL TO EXAGGERATED; cutaneous trunci cut-off Thoracolumbar disc extrusion (most common), fibrocartilaginous embolism, vertebral fracture/luxation
L4–S3 NORMAL LMN (reduced patellar, withdrawal, and perineal reflexes; flaccid paralysis; rapid atrophy) Patellar reflex REDUCED/ABSENT; withdrawal REDUCED/ABSENT; perineal reflex may be reduced Lumbosacral disc disease, degenerative lumbosacral stenosis, sacral fracture
L4–L6 (femoral nerve) NORMAL Patellar reflex ABSENT; withdrawal (sciatic) PRESERVED → very specific localisation Patellar ABSENT, gastrocnemius NORMAL, withdrawal performed by sciatic component (hip flexion + hock flexion) Femoral nerve neuropathy (rare); L4–L6 lateralised disc

Special Tests: Cutaneous Trunci and Deep Pain

Cutaneous Trunci (Panniculus) Reflex

Pinch the skin just lateral to the dorsal midline bilaterally, starting at the level of the ilial wings and moving cranially, segment by segment. The normal response is a bilateral contraction of the cutaneous trunci muscle, producing a skin twitch. The reflex arc: sensory fibres enter at each segment → travel cranially in the lateral funiculus → synapse in C8–T1 → motor via the lateral thoracic nerve → cutaneous trunci muscle.

A unilateral absence of the reflex at a specific level indicates a spinal cord lesion on that side, approximately 2–3 segments CRANIAL to the cut-off level. This is one of the most underutilised and powerful localising tools in the neurological examination. Document the cut-off level precisely (e.g., 'panniculus absent caudal to T12 on the right').

Deep Pain Perception

Deep pain perception (nociception) tests the spinothalamic pathway — a bilateral, multisynaptic tract in the ventrolateral spinal cord. Test by applying a haemostat to the digit (not just the skin — the periosteum) and observing a CONSCIOUS response (turning toward the stimulus, vocalisation, biting, pupil dilatation). A simple withdrawal reflex is NOT a conscious response — it is a spinal reflex and may persist even when deep pain is absent.

CRITICAL — Deep pain negative
A dog with a T3–L3 spinal cord injury who has lost deep pain perception in the pelvic limbs has a SEVERE injury (physiological cord transection). The window for surgical decompression is approximately 24–48 hours from loss of deep pain. Beyond this, prospects for functional recovery drop below 5%. This is a genuine emergency — refer immediately. Document deep pain status clearly: 'Deep pain PRESENT in both pelvic limbs' or 'Deep pain ABSENT in right pelvic limb, present in left.'

Clinical Reasoning: A Case-Based Flowchart

Here is a clinical reasoning sequence for the most common presentations:

  1. Pelvic limb ataxia + paresis → Check patellar reflex → NORMAL/HYPER = UMN (T3–L3); REDUCED/ABSENT = LMN (L4–S3).
  2. All four limbs ataxic + paretic → Check thoracic limb reflexes → NORMAL/HYPER = C1–C5; REDUCED = C6–T2 (LMN to thoracic limbs, UMN to pelvic limbs).
  3. Monoparesis (one limb) → Check spinal reflexes in that limb → REDUCED = LMN (peripheral nerve, nerve root, or ventral horn); NORMAL = UMN (brain or cervical lesion — but unilateral spinal cord lesions usually cause ipsilateral deficits).
  4. Non-ambulatory paraplegia → The single most important question: Is deep pain perception PRESENT? → YES = good prognosis (80–95% recovery with surgery); NO = guarded to poor (0–50% recovery).
  5. Ataxia without paresis → Sensory (proprioceptive) ataxia vs cerebellar ataxia vs vestibular ataxia — each has a unique examination profile. Use postural reactions and cranial nerve exam to differentiate.

Neuroanatomical Lesion Localisation: Beyond UMN and LMN

Vestibular vs Cerebellar Ataxia — Two Types of Incoordination

Vestibular ataxia is characterised by head tilt, leaning/falling to one side, circling, and positional nystagmus. The lesion localises to the vestibular apparatus (peripheral — inner ear, CN VIII) or brainstem vestibular nuclei (central). Key differentiating features: (1) Central vestibular disease causes VERTICAL or direction-changing nystagmus, while peripheral disease causes horizontal or rotatory nystagmus that does NOT change direction. (2) Central disease often has accompanying postural reaction deficits and cranial nerve deficits (CN V, VI, VII). (3) Horner's syndrome (miosis, ptosis, enophthalmos, third eyelid protrusion) can accompany peripheral vestibular disease (otitis media/interna) due to sympathetic fibres travelling through the middle ear. Cerebellar ataxia produces: intention tremor (worsens as the target is approached, absent at rest), hypermetria (over-reaching — high-stepping gait), dysmetria, truncal sway (broad-based stance), and a lack of the normal physiological nystagmus (menace response deficit). These two syndromes are clinically distinct from the proprioceptive ataxia of spinal cord disease — and their lesion localisations are completely different.

Neuropathic Pain — When the LMN Itself Signals Damage

LMN disease can produce neuropathic pain — a burning, electric-shock quality that is disproportionate to the apparent injury. Mechanisms: damaged nerves express abnormal sodium channels (Na_v1.3, Na_v1.7) → spontaneous firing → ectopic impulse generation in the dorsal root ganglion and along the injured axon. This produces spontaneous pain and allodynia (non-painful stimuli perceived as painful). Clinical examples: (1) Cervical syringomyelia in Cavalier King Charles Spaniels — the syrinx damages dorsal horn neurons and spinothalamic tract fibres → phantom scratching ('air guitar') and apparent neck pain. (2) Brachial plexus avulsion — deafferentation pain → self-mutilation of the affected limb. (3) Feline orofacial pain syndrome — likely trigeminal neuropathy. Management: gabapentin/pregabalin (binds α2δ subunit of voltage-gated Ca²⁺ channels → reduces neurotransmitter release), amantadine (NMDA receptor antagonist — reduces central sensitisation), and tricyclic antidepressants (amitriptyline — inhibits noradrenaline and serotonin reuptake → enhances descending inhibitory pathways).

Intervertebral Disc Disease: A Lesion-Localisation Masterclass

Intervertebral disc disease (IVDD) provides the perfect platform for practising lesion localisation. Consider a Dachshund presenting with acute pelvic limb paresis. If the lesion is T3–L3 (80% of thoracolumbar disc extrusions): UMN signs in pelvic limbs (normal to exaggerated patellar reflex, increased tone, proprioceptive ataxia), NORMAL thoracic limbs, and a cutaneous trunci cut-off (localising to within 2–3 segments). If the lesion is L4–S3 (lumbosacral): LMN signs in pelvic limbs (reduced patellar reflex, reduced withdrawal, flaccid tail, ± urinary incontinence from pudendal nerve involvement). The difference determines the surgical approach (hemilaminectomy for T3–L3; dorsal laminectomy for L4–S3) and the prognosis.

Cranial Nerve Examination: Lesion Localisation Above the Foramen Magnum

The cranial nerves provide a window into the brainstem — each nerve or nucleus localises to a specific region, and their systematic examination is as powerful for intracranial lesion localisation as spinal reflexes are for spinal cord localisation.

Cranial nerve Function How to test Lesion localisation UMN/LMN?
CN II (Optic) Vision Menace response, visual placing, pupillary light reflex (PLR — afferent limb) Retina, optic nerve, optic chiasm, optic tract → lateral geniculate nucleus → visual cortex N/A (sensory)
CN III (Oculomotor) Pupillary constriction (parasympathetic), most extraocular muscles PLR (efferent), physiological nystagmus, strabismus assessment Midbrain (rostral colliculus — CN III nucleus) LMN (parasympathetic and motor nuclei in midbrain)
CN V (Trigeminal) Facial sensation, muscles of mastication Palpebral reflex (afferent), corneal reflex (afferent), jaw tone, temporal/masseter muscle mass Pons (motor nucleus and sensory nuclei) LMN — jaw tone reduced, rapid temporalis atrophy with V motor lesion
CN VII (Facial) Facial expression, lacrimation, salivation, taste (rostral 2/3) Palpebral reflex (efferent), menace response (efferent — orbicularis oculi), lip/ear symmetry Rostral medulla (facial nucleus) LMN — flaccid facial paralysis. UMN — contralateral lip/ear paresis with intact palpebral (frontalis has bilateral UMN innervation)
CN VIII (Vestibulocochlear) Balance, hearing Physiological nystagmus, positional nystagmus, head tilt, deafness testing Inner ear (peripheral) vs medulla (vestibular nuclei) N/A (special sensory). Central vs peripheral differentiation critical.
CN IX/X (Glossopharyngeal/Vagus) Pharyngeal/laryngeal function, swallowing, parasympathetic to viscera Gag reflex, laryngeal function (voice, inspiratory stridor), oculocardiac reflex Medulla LMN — dysphonia, dysphagia, laryngeal paralysis. Bilateral laryngeal paralysis = emergency (arytenoid lateralisation).
CN XII (Hypoglossal) Tongue movement Tongue tone, symmetry, protrusion Medulla (hypoglossal nucleus) LMN — tongue atrophy, deviation toward lesion side. UMN — contralateral tongue weakness without atrophy.
Clinical pearls
  • Schiff-Sherrington posture (thoracic limb extensor rigidity with pelvic limb paralysis) is an UPPER motor neuron sign — it means a severe T3–L3 lesion, not a cervical lesion.
  • A dog with bilaterally absent patellar reflexes but normal withdrawal and tail tone has a lesion at L4–L6 spinal cord segments — the femoral nerve is selectively affected.
  • The panniculus (cutaneous trunci) reflex maps to C8–T1 segments; a cut-off on one side localises a thoracolumbar spinal cord lesion at that dermatomal level.

Frequently asked questions

What is the simplest way to remember UMN vs LMN signs?
UMN = 'everything is turned UP' (UP-reflexia, UP-tone, UP-stiff gait). LMN = 'everything is turned DOWN' (DOWN-reflexia, DOWN-tone, DOWN on weight-bearing). The spinal reflexes are the key: hyperreflexia = UMN; hyporeflexia = LMN.
Why does a C6–T2 lesion produce LMN signs in the thoracic limbs but UMN signs in the pelvic limbs?
The LMN cell bodies for the thoracic limbs are located in the C6–T2 spinal cord segments. A lesion here directly damages those cell bodies (LMN lesion to thoracic limbs). However, the UMN tracts to the pelvic limbs PASS THROUGH C6–T2 on their way to the lumbar cord — they are interrupted, so the pelvic limbs receive UMN signs. This is the classic 'two-level' or 'mixed UMN-LMN' presentation that localises to the cervicothoracic intumescence.
How quickly does neurogenic atrophy develop after an LMN lesion?
Denervation changes begin within 48–72 hours; clinically detectable atrophy is evident by 7–10 days; severe atrophy (50–70% mass loss) is present by 3–4 weeks. EMG evidence of denervation (fibrillation potentials, positive sharp waves) appears at day 5–7. In contrast, disuse atrophy from UMN disease takes weeks to months to develop and is mild (20–30% loss).
What is the Schiff-Sherrington posture and why is it NOT a cervical lesion?
Schiff-Sherrington posture = thoracic limb extensor rigidity with pelvic limb paralysis. It occurs with severe, acute T3–L3 spinal cord lesions. The mechanism: border cells in the L1–L7 grey matter send ascending inhibitory projections to thoracic limb extensors. A severe T3–L3 lesion damages these border cells → loss of inhibition → thoracic limb extensor hypertonicity. The thoracic limbs are neurologically NORMAL — it is a 'release' phenomenon, not a cervical lesion.
Can you have UMN AND LMN signs in the same limb?
Yes — this occurs with lesions that damage both the ventral horn (LMN) and the surrounding white matter (UMN). Examples include intramedullary spinal cord tumours, myelomalacia, or chronic compressive lesions that affect grey and white matter simultaneously. The clinical picture is confusing: reduced reflexes (LMN) but increased tone (UMN). EMG and MRI are invaluable in these cases.
How do I differentiate a T3–L3 lesion from an L4–S3 lesion in a paraparetic dog?
Check the patellar reflex. Normal or exaggerated patellar reflex = T3–L3 UMN lesion (the reflex arc at L4–L6 is intact but UMN inhibition is lost). Reduced or absent patellar reflex = L4–S3 LMN lesion (the reflex arc itself is damaged). Also assess muscle atrophy — rapid, severe quadriceps atrophy suggests LMN (L4–L6).
What is the significance of a unilateral loss of the cutaneous trunci reflex?
It indicates a spinal cord lesion on the same side (ipsilateral), located approximately 2–3 spinal cord segments CRANIAL to the level where the reflex disappears. For example, a cut-off at T13 on the right suggests a T10–T11 right-sided spinal cord lesion. This is remarkably precise localisation from a simple skin-pinch test.

Self-check quiz

Test yourself. Answers are below each question — cover them first if you are studying.

Q1. A paraparetic dog has normal patellar reflexes, exaggerated gastrocnemius reflexes, and a cutaneous trunci cut-off at L1 on the right. Lesion localisation?
  1. L4–S3 right-sided
  2. T3–L3 right-sided
  3. C6–T2 bilateral
  4. Lumbosacral junction
Show answer

Answer: T3–L3 right-sided

Normal patellar and exaggerated gastrocnemius reflexes indicate UMN pelvic limb signs → lesion is cranial to L4. A cutaneous trunci cut-off at L1 indicates a lesion at approximately T11–T12. This is a classic T3–L3 right-sided myelopathy. The most common cause is a right-sided thoracolumbar disc extrusion.

Q2. A dog presents with thoracic limb hyporeflexia, rapid atrophy of the supraspinatus and infraspinatus muscles, and UMN signs in the pelvic limbs. The lesion is at:
  1. C1–C5
  2. C6–T2
  3. T3–L3
  4. L4–S3
Show answer

Answer: C6–T2

Thoracic limb LMN signs (reduced reflexes, rapid atrophy) = lesion damaging the C6–T2 ventral horn cells (the LMN cell bodies for thoracic limbs). Pelvic limb UMN signs (normal to exaggerated reflexes, spasticity) = the UMN tracts passing through to the lumbar cord are also interrupted. This two-level pattern is diagnostic of a C6–T2 lesion.

Q3. Which postural reaction test is the most sensitive for detecting early neurological dysfunction?
  1. Hopping
  2. Wheelbarrowing
  3. Paw positioning (knuckling)
  4. Extensor postural thrust
Show answer

Answer: Paw positioning (knuckling)

Paw positioning tests the full sensorimotor pathway and is often abnormal before gait deficits, paresis, or reflex changes are apparent. It is the single most sensitive test in the neurological examination.

Q4. A dog has a unilateral absent patellar reflex but a normal withdrawal reflex on the same limb. The lesion is where?
  1. Sciatic nerve
  2. Femoral nerve or L4–L6 nerve roots
  3. T3–L3 spinal cord
  4. S1–S3 spinal cord
Show answer

Answer: Femoral nerve or L4–L6 nerve roots

The patellar reflex is mediated by the femoral nerve (L4–L6). The withdrawal reflex is mediated by the sciatic nerve (L6–S1) plus contributions from the femoral nerve. A normal withdrawal with an absent patellar reflex indicates the sciatic component is intact but the femoral component is damaged — a highly specific localisation to the femoral nerve or L4–L6 nerve roots.

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Educational disclaimer: This article is for veterinary students and licensed professionals. It is not a substitute for case-specific clinical judgment, local formulary rules, or current drug labels. Always verify doses, legality, and species contraindications before treating.
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