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Human Anatomy · The nervous system

Spinal and Peripheral Nerves

This is the chapter that lets you turn a patient's description into a location. Numbness in a strip down the arm, weakness of one movement, a reflex that has gone quiet — each of those is a statement about a particular root or a particular nerve, and the anatomy here is what lets you read it.

11Sections
4Figures
19Tables
15Questions

Part 5 · Head, neck and the nervous system

The plexuses, dermatomes and myotomes, and nerve injury and repair

The last chapter, and the one that ties the book together

Everything in this book converges here. The bone chapters told you where nerves are tethered and compressed. The muscle chapters told you what each nerve does. The regional chapters gave you the courses. This chapter gives you the system: how the 31 pairs of spinal nerves are organised into plexuses, how to map a lesion from the pattern of loss, and what happens to a nerve when it is injured.

The clinical question this chapter answers is the one you will ask most often in practice:

Is this a nerve root, a plexus, or a peripheral nerve — and how do I tell?

Learning outcomes

  • Describe the structure of a peripheral nerve and its connective tissue sheaths.
  • Describe the formation of a spinal nerve and the destinations of its rami.
  • Describe the cervical, brachial, lumbar and sacral plexuses and their major branches.
  • Map the dermatomes and myotomes and use them to localise a lesion.
  • Distinguish radiculopathy from plexopathy from peripheral neuropathy.
  • Classify nerve injury by the Seddon and Sunderland systems and predict recovery.
  • Describe the mechanisms of nerve regeneration and the timeline of reinnervation.
  • Describe the autonomic nervous system and its clinical manifestations.
  • Explain entrapment neuropathies, the double crush hypothesis and neurodynamic testing.
  • Describe the common polyneuropathies and their rehabilitation implications.

Structure of a peripheral nerve

The connective tissue architecture mirrors that of muscle (Chapter 5), and it determines everything about injury and repair.

LayerInvestsFunction
EndoneuriumEach individual axon with its Schwann cell sheathForms the endoneurial tube — the scaffold that guides regenerating axons. Its survival is the single most important prognostic factor in nerve injury
PerineuriumEach fascicleDense, mechanically strong, and the site of the blood–nerve barrier. It maintains endoneurial fluid pressure
EpineuriumThe whole nerve trunk; interfascicular epineurium separates fasciclesCushions, permits gliding, carries the vasa nervorum
MesoneuriumLoose areolar tissue outside the epineuriumAllows the nerve to glide relative to surrounding tissue — the anatomical basis of neurodynamics

Nerves are designed to move. A peripheral nerve must accommodate up to 10–20% strain and several millimetres to centimetres of excursion during limb movement (the median nerve moves ~7 mm at the elbow, the sciatic nerve ~10 mm at the hip). It does this by unfolding its undulating course, then unfolding the fascicles’ own undulation, and finally by gliding. Only after all three are exhausted does the nerve stretch.

Nerves are also metabolically demanding and vulnerable to ischaemia. Intraneural blood flow is impaired at as little as 20–30 mmHg of external pressure, and at 50 mmHg conduction begins to fail. This — not “pinching” — is the mechanism of most entrapment neuropathies, and it explains why symptoms are often worse at night (when limb positions are sustained and blood pressure falls) and why they resolve so quickly on position change.

The spinal nerve

Figure 1 · A typical spinal nerve

A typical spinal nerve A posterior sensory root and an anterior motor root join to form a short mixed spinal nerve, which immediately divides into a small posterior ramus and a large anterior ramus. A SPINAL NERVE IS SHORT, AND THEN IT IS GONE spinal cord posterior root SENSORY IN its cell bodies sit here anterior root MOTOR OUT SPINAL NERVE mixed, and about a centimetre long POSTERIOR RAMUS The back only. Skin and the deep back muscles. ANTERIOR RAMUS Everything else — the limbs, the sides and the front of the trunk. Much the larger of the two. Every named nerve you have met in this book is a branch of an anterior ramus, or of a plexus made from several of them.
Two roots in, one short nerve, two rami out. The roots are separate for long enough that a lesion can take sensation without power, or power without sensation. After they join, it cannot.

31 pairs: 8 cervical, 12 thoracic, 5 lumbar, 5 sacral, 1 coccygeal.

Formed in the intervertebral foramen by the union of:

  • Dorsal (posterior) root — sensory, bearing the dorsal root ganglion (the cell bodies of primary afferents, which lie outside the cord — which is why root lesions proximal to the DRG spare the sensory nerve action potential on nerve conduction studies, a key electrodiagnostic discriminator)
  • Ventral (anterior) root — motor, from the anterior horn

It divides almost immediately into:

BranchDestination
Posterior (dorsal) ramusThe true back muscles and the skin of the back (Chapter 17)
Anterior (ventral) ramusEverything else — limbs and the anterolateral trunk; forms the plexuses
Meningeal (sinuvertebral) branchRe-enters the canal for the PLL, outer anulus, dura and periosteum
Rami communicantesWhite (myelinated, preganglionic, only T1–L2) to the sympathetic chain; grey (unmyelinated, postganglionic, at every level) back to the spinal nerve

Exit rule (Chapter 17, repeated because it is examined every year): C1–C7 exit ABOVE their corresponding vertebra; C8 exits between C7 and T1; from T1 down, nerves exit BELOW their corresponding vertebra.

The plexuses

Figure 2 · Dermatomes, and the brachial plexus

A full-body dermatome map from the front and the back with each segmental strip named, beside the brachial plexus drawn as a traceable wiring diagram from the five roots through trunks, divisions and cords to the five terminal nerves.
Every named nerve of the arm can be traced back to its roots. Follow a line from root to terminal branch and the pattern of loss after an injury stops being something to memorise.

Cervical plexus (C1–C4)

Lies deep to sternocleidomastoid, on scalenus medius and levator scapulae.

TypeBranches
Cutaneous (emerging at Erb’s point, mid-posterior border of SCM)Lesser occipital (C2), great auricular (C2, C3), transverse cervical (C2, C3), supraclavicular (C3, C4)
MuscularAnsa cervicalis (C1–C3) → infrahyoid muscles; branches to prevertebral muscles; C1 fibres travel with the hypoglossal nerve
Phrenic (C3, C4, C5)The diaphragm — “C3, 4, 5 keeps the diaphragm alive”

The supraclavicular nerves (C3–C4) supply skin down to the second rib — which is why shoulder-tip pain refers from the diaphragm (Chapters 8 and 18), and why a patient may point to the clavicle when the problem is subphrenic.

Brachial plexus (C5–T1)

Roots → Trunks → Divisions → Cords → Branches (Really Tired? Drink Coffee Before).

LevelComponents
RootsAnterior rami C5–T1, emerging between anterior and middle scalene
TrunksUpper (C5, C6), Middle (C7), Lower (C8, T1) — in the posterior triangle
DivisionsAnterior and posterior of each trunk — behind the clavicle
CordsLateral, Posterior, Medial — named for their relation to the axillary artery, in the axilla
BranchesTerminal

Branches worth knowing by level, because the level of a branch localises the lesion:

OriginNerveRoots
RootsDorsal scapular (rhomboids, levator scapulae)C5
Long thoracic (serratus anterior)C5, C6, C7 — “C5, 6, 7 keeps the wing from heaven”
Upper trunkSuprascapular (supraspinatus, infraspinatus)C5, C6
Nerve to subclaviusC5, C6
Lateral cordMusculocutaneousC5–C7
Lateral pectoralC5–C7
Lateral root of medianC5–C7
Posterior cordUpper and lower subscapular; thoracodorsalC5–C8
AxillaryC5, C6
RadialC5–T1
Medial cordMedial pectoral; medial cutaneous nerves of arm and forearmC8, T1
UlnarC8, T1
Medial root of medianC8, T1

Mnemonic for posterior cord branches: ULTRA — Upper subscapular, Lower subscapular, Thoracodorsal, Radial, Axillary.

Plexus injury patterns:

InjuryLevelPresentation
Erb–Duchenne palsyUpper trunk (C5–C6) — birth traction, fall on the shoulder, motorcycle injury“Waiter’s tip”: arm adducted, internally rotated, elbow extended, forearm pronated. Loss of deltoid, supraspinatus, infraspinatus, biceps, brachialis, brachioradialis, supinator
Klumpke palsyLower trunk (C8–T1) — traction with the arm overheadClaw hand from intrinsic paralysis; Horner’s syndrome if T1 sympathetic fibres are involved
Posterior cordRadial + axillary loss
Neurogenic thoracic outletLower trunk at the scalene triangleMedial forearm and hand symptoms, thenar wasting
Preganglionic (root avulsion)Proximal to the DRGPoor prognosis, not surgically repairable directly. Clues: Horner’s syndrome, winged scapula (dorsal scapular/long thoracic involvement), preserved sensory nerve action potentials despite anaesthesia, and severe deafferentation pain

Lumbar plexus (L1–L4)

Within psoas major (Chapter 20).

NerveRootsSupplies
IliohypogastricL1Lower abdominal wall
IlioinguinalL1Groin, upper medial thigh, genitalia
GenitofemoralL1, L2Cremaster; femoral triangle skin
Lateral femoral cutaneousL2, L3Anterolateral thigh — meralgia paraesthetica
FemoralL2–L4Anterior thigh; saphenous nerve
ObturatorL2–L4Adductors; medial thigh; hip and knee articular branches
Lumbosacral trunkL4, L5To the sacral plexus

Mnemonic: I, I Get Laid On Fridays — Iliohypogastric, Ilioinguinal, Genitofemoral, Lateral femoral cutaneous, Obturator, Femoral.

Sacral plexus (L4–S4)

On the posterior pelvic wall, anterior to piriformis.

NerveRootsSupplies
Superior glutealL4, L5, S1Gluteus medius and minimus, TFL. Injury → Trendelenburg
Inferior glutealL5, S1, S2Gluteus maximus
SciaticL4–S3Hamstrings and everything below the knee. Tibial + common fibular divisions
Posterior femoral cutaneousS1–S3Posterior thigh, buttock
PudendalS2–S4Perineum, external sphincters
Nerve to quadratus femoris, nerve to obturator internus, nerve to piriformisL4–S2Short rotators

Dermatomes and myotomes

Figure 3 · Dermatome and myotome

Dermatome and myotome A dermatome is the skin supplied by one root and a myotome is the muscles supplied by one root. TWO WORDS THAT ARE NOT INTERCHANGEABLE DERMATOME The strip of SKIN supplied by one spinal nerve root. Tested by touching the skin Maps overlap, so one lost root often gives less numbness than the map suggests MYOTOME The MUSCLES supplied by one spinal nerve root. Tested by resisted movement Most muscles draw on more than one root, so one root loss weakens rather than paralyses A root supplies both. That is why a single irritated root can give you a strip of altered sensation and a weak movement at the same time.
Two questions about one root. Skin is tested by touching, muscle by resisting, and finding both together is what points at a root rather than a nerve.

Dermatomes — the reliable landmarks

Maps disagree because adjacent dermatomes overlap substantially (Chapter 8). Learn the reliable single points — the ASIA key sensory points — rather than trying to memorise boundaries.

LevelLandmark
C2Occipital protuberance
C3Supraclavicular fossa
C4Acromioclavicular joint / top of shoulder
C5Lateral antecubital fossa / lateral elbow
C6Thumb
C7Middle finger
C8Little finger
T1Medial antecubital fossa
T4Nipple
T6Xiphoid
T10Umbilicus
T12/L1Inguinal region
L2Mid-anterior thigh
L3Medial femoral condyle
L4Medial malleolus
L5Dorsum of foot, first web space
S1Lateral heel
S2Popliteal fossa
S3, S4–S5Perianal / saddle — the critical points for cauda equina and for SCI completeness

Myotomes — the movements to test

LevelMovement
C1–C2Neck flexion
C3Neck lateral flexion
C4Shoulder elevation
C5Shoulder abduction, elbow flexion
C6Elbow flexion, wrist extension
C7Elbow extension, wrist flexion
C8Finger flexion, thumb extension
T1Finger abduction and adduction
L2Hip flexion
L3Knee extension
L4Ankle dorsiflexion
L5Great toe extension (EHL), hip abduction
S1Ankle plantarflexion, eversion, hip extension
S2Knee flexion
S4–S5Anal sphincter, bladder

Reflexes

ReflexRoot
BicepsC5, C6
BrachioradialisC6
TricepsC7
Knee (patellar)L3, L4
Ankle (Achilles)S1, S2
Plantar (Babinski)UMN sign

Note that sclerotomes (Chapter 8) explain the deep, aching, poorly localised bone pain that follows neither a dermatome nor a peripheral nerve territory — a common source of confusion.

Localising the lesion: root, plexus or peripheral nerve

This table is the practical heart of the chapter.

FeatureRadiculopathy (root)PlexopathyPeripheral neuropathy (single nerve)
Sensory patternDermatomal, with overlap; often incompleteMultiple dermatomes and multiple nerve territoriesPeripheral nerve territory — respects the autonomous zone
Motor patternMyotomal — muscles sharing a root but supplied by different peripheral nervesMultiple nervesMuscles supplied by that one nerve, below the lesion only
ReflexesSegmental reflex reducedMultiple reflexesOnly the reflex mediated by that nerve
PainRadicular — sharp, lancinating, in a bandVariable, often severeLocalised, with distal paraesthesia
ProvocationSpurling’s test, straight leg raise, slump — worse with neck/spine movement, cough, sneeze, ValsalvaPositional; supraclavicular tendernessTinel’s at the site; local compression
Key discriminatorA muscle supplied by the same root but a DIFFERENT peripheral nerve is also weakBoth root and nerve patterns violatedA muscle supplied by the same root but a different nerve is NORMAL
ElectrodiagnosisSensory nerve action potential PRESERVED (lesion is proximal to the DRG); denervation in paraspinalsSNAP reduced; paraspinals normalSNAP reduced across the lesion; conduction block or slowing

The single most useful discriminator, worked through

A patient has weak wrist extension. Is it a C7 radiculopathy or a radial nerve palsy?

  • Both weaken wrist and finger extension.
  • But C7 also supplies triceps (radial nerve), flexor carpi radialis (median nerve) and latissimus dorsi (thoracodorsal nerve). In a C7 radiculopathy those are also weak, and the triceps reflex is reduced.
  • In a radial nerve palsy at the spiral groove, flexor carpi radialis and latissimus dorsi are normal, and there is a sensory deficit confined to the dorsal first web space.

Test a muscle that shares the root but not the nerve. That one manoeuvre separates root from nerve more reliably than any special test.

Similarly, weak ankle dorsiflexion: L5 radiculopathy also weakens hip abduction (superior gluteal nerve) and inversion (tibialis posterior, tibial nerve); common fibular nerve palsy spares both (Chapter 15).

Nerve injury and repair

Classification

SeddonSunderlandLesionWallerian degenerationRecovery
NeurapraxiaIFocal demyelination; axon intactNoComplete, days to 12 weeks; conduction block on NCS with normal distal conduction
AxonotmesisIIAxon severed; endoneurium intactYesComplete, by regeneration at ~1 mm/day along the intact tube
IIIAxon and endoneurium disrupted; perineurium intactYesIncomplete — misdirection within the fascicle
IVAxon, endoneurium and perineurium disrupted; epineurium intact (neuroma-in-continuity)YesPoor; usually requires surgery
NeurotmesisVComplete transection of the whole nerveYesNone without surgical repair
VI (Mackinnon)Mixed pattern across fasciclesVariableVariable

Wallerian degeneration begins within 24–48 hours distal to the lesion: axonal and myelin breakdown, macrophage clearance, and Schwann cell proliferation into bands of Büngner within the surviving endoneurial tubes. The cell body undergoes chromatolysis and shifts to a regenerative phenotype.

Regeneration and its timeline

Axonal sprouts advance at approximately 1 mm per day (~1 inch per month), after an initial delay of 2–4 weeks at the injury site.

Practical prediction: a radial nerve injury at the spiral groove is roughly 30 cm from the wrist extensors → around 10–12 months to reinnervation. This is not an academic calculation; it is what you tell the patient, what determines the splinting plan, and what tells you when to become concerned that recovery is not happening.

The advancing front is tracked by a progressing Tinel’s sign — the point of maximal paraesthesia on percussion moves distally as regeneration proceeds. A Tinel’s that fails to advance over successive months indicates that repair is not occurring and warrants surgical review.

The limiting factor is time, not distance. Denervated muscle loses its capacity to be reinnervated after roughly 12–18 months, as motor endplates degrade and the muscle is replaced by fibrofatty tissue. This is why proximal injuries have a worse prognosis than distal ones — the axons simply cannot arrive in time — and why nerve transfer surgery (bringing a donor nerve close to the target) has transformed the management of proximal brachial plexus injury.

Sensory recovery sequence: pain and temperature → vibration → moving touch → static touch → two-point discrimination. Sensory re-education is delivered along this sequence.

Physiotherapy management of peripheral nerve injury

PhasePriorities
Acute / denervatedPrevent deformity and contracture (splinting in the anti-deformity position); maintain full passive range; protect insensate skin; oedema management; educate about the timeline
ReinnervationTrack with Tinel’s sign and manual muscle testing; begin active movement as soon as flicker appears, in gravity-eliminated positions first; avoid fatiguing the newly reinnervated muscle
RecoveryProgressive strengthening; sensory re-education; retraining functional patterns; addressing compensations
ThroughoutNeurodynamic mobilisation where indicated; management of neuropathic pain

A note on electrical stimulation of denervated muscle: the evidence is genuinely equivocal. It may retard atrophy, but there is also evidence it can impair reinnervation, and it is uncomfortable and time-consuming. It is not a substitute for range maintenance and splinting.

Entrapment neuropathies and neurodynamics

The common entrapments (collected from across the book)

NerveSiteSyndrome
MedianCarpal tunnelNocturnal paraesthesia, thenar sparing of the palmar cutaneous branch
Pronator teresPronator syndrome — with palmar cutaneous sensory change
Anterior interosseousPurely motor — “OK sign” failure
UlnarCubital tunnelClawing, Froment’s; dorsal cutaneous branch affected
Guyon’s canalDorsal ulnar sensation spared
RadialSpiral grooveWrist drop
Arcade of Frohse (PIN)Finger drop, no sensory loss
Superficial branchWartenberg’s syndrome
SuprascapularSuprascapular / spinoglenoid notchWeak abduction and external rotation
Lateral femoral cutaneousInguinal ligamentMeralgia paraesthetica
Common fibularFibular neckFoot drop with preserved inversion
TibialTarsal tunnelBurning sole; heel spared
InterdigitalThird web spaceMorton’s neuroma
PudendalAlcock’s canalPerineal pain worse on sitting

The double crush hypothesis

Upton and McComas (1973) proposed that a proximal lesion of an axon makes it more vulnerable to a second, distal compression, because axonal transport is impaired along its whole length. Clinically it is invoked for the coexistence of cervical radiculopathy and carpal tunnel syndrome, which is more common than chance would predict.

Honest appraisal: the epidemiological association is real; the causal mechanism remains contested and the concept has been over-applied. Use it as a prompt to examine the whole neural pathway rather than as a diagnosis in itself — the practical value is that it stops you treating a wrist while ignoring a neck.

Neurodynamics

Peripheral nerves must glide, elongate and tolerate compression during movement. When that mechanical or physiological capacity is impaired — by adhesion, oedema, inflammation or ischaemia — movements that load the nerve reproduce symptoms.

TestNerveSensitising manoeuvre
ULNT 1MedianShoulder depression, abduction, external rotation, elbow extension, forearm supination, wrist and finger extension; contralateral cervical lateral flexion
ULNT 2aMedian (with shoulder depression bias)
ULNT 2bRadialShoulder depression, internal rotation, elbow extension, forearm pronation, wrist flexion and ulnar deviation
ULNT 3UlnarWrist extension, forearm pronation, elbow flexion, shoulder abduction and external rotation — the “hand to ear” position
Straight leg raiseSciatic (tibial)Ankle dorsiflexion (Bragard’s); adduction and internal rotation
Slump testWhole neuraxisCervical flexion; knee extension; ankle dorsiflexion
Prone knee bend / femoral slumpFemoral, mid-lumbar rootsHip extension

Interpretation requires care. A test is positive only if it reproduces the patient’s symptoms, and if those symptoms change with a structurally differentiating movement at a distant joint (adding cervical lateral flexion changes arm symptoms; adding ankle dorsiflexion changes posterior thigh symptoms). Discomfort at end range is normal — most asymptomatic people feel a stretch on ULNT 1 and slump.

Treatment uses sliders (tensioning at one end while releasing at the other, producing excursion with minimal strain — the gentler option for irritable presentations) and tensioners (loading both ends, increasing strain — used later for capacity). The evidence supports them as an adjunct within a broader programme, particularly in carpal tunnel syndrome and in nerve-related leg pain, not as a stand-alone treatment.

The autonomic nervous system

Figure 4 · The autonomic outflow

The sympathetic outflow leaving the cord from the thoracic and upper lumbar segments into the chain of ganglia, contrasted with the parasympathetic outflow leaving with certain cranial nerves and from the middle sacral segments, with the target organs each reaches.
One leaves from the middle, the other from the two ends. The sympathetic outflow is thoracolumbar and the parasympathetic craniosacral, which is why a high cord injury disturbs blood pressure and a cauda equina lesion disturbs the bladder.
SympatheticParasympathetic
OutflowThoracolumbar, T1–L2Craniosacral — CN III, VII, IX, X and S2–S4
GangliaParavertebral chain and prevertebral (coeliac, mesenteric) — close to the cordIn or near the target organ
Preganglionic fibreShortLong
Postganglionic fibreLongShort
Transmitter (postganglionic)Noradrenaline (except sweat glands — acetylcholine)Acetylcholine
FunctionFight or flight: ↑ HR and contractility, bronchodilatation, pupil dilatation, vasoconstriction (skin and gut), ↑ sweating, glycogenolysis, inhibits digestionRest and digest: ↓ HR, bronchoconstriction, pupil constriction, ↑ digestion and secretion, bladder emptying

Referred visceral pain travels with the sympathetics, which is the anatomical basis of the referral patterns in Chapters 8, 19 and 20.

Clinical syndromes:

SyndromeFeatures
Horner’s syndromePtosis, miosis, anhidrosis (± enophthalmos), from interruption of the sympathetic supply to the head — at the cord (T1), the apical lung (Pancoast tumour), the lower brachial plexus (Klumpke), the carotid sheath (dissection), or the brainstem (Wallenberg). Its presence in a brachial plexus injury indicates preganglionic root avulsion — a prognostically decisive sign
Autonomic dysreflexiaSCI at or above T6 (Chapter 23) — a physiotherapy emergency
Complex regional pain syndromeDisproportionate pain with sensory, vasomotor, sudomotor and motor/trophic changes, diagnosed by the Budapest criteria. Treated with graded motor imagery, mirror therapy, desensitisation and graded exposure to movement — early mobilisation and education are the mainstays, and immobilisation worsens it
Orthostatic hypotensionCommon in SCI, diabetes and Parkinson’s disease; a mobilisation planning issue
Autonomic neuropathyDiabetes (Chapter 21) — blunted heart rate response means exercise must be prescribed by RPE

Polyneuropathies worth recognising

ConditionPatternPhysiotherapy relevance
Diabetic polyneuropathyDistal symmetrical, “glove and stocking”, sensory > motor, length-dependentFoot protection, balance training, falls prevention (Chapter 16)
Guillain–Barré syndromeAcute, ascending, symmetrical, predominantly motor, areflexic; often post-infectiveMonitor vital capacity — respiratory failure is the danger; positioning, range, graded strengthening avoiding overwork fatigue, and a long rehabilitation
CIDPChronic, relapsing versionSimilar, over a longer course
Charcot–Marie–Tooth (HMSN)Hereditary; distal wasting (“inverted champagne bottle” legs), pes cavus, claw toes, foot dropOrthoses (AFOs), balance, energy conservation, avoid overwork weakness
Alcoholic / nutritional (B12, thiamine)Distal sensory, sometimes with dorsal column signsBalance, sensory strategies
Chemotherapy-induced (platinum, taxanes, vinca)Distal sensory, often painfulIncreasingly common; balance and falls risk
LeprosyThickened nerves with patchy sensory and motor loss (ulnar, median, common fibular, facial)Still a significant cause of disability in India; protective sensory loss management, splinting and deformity prevention

A shared principle: in most polyneuropathies and in post-polio syndrome, overwork weakness is a real phenomenon — excessive eccentric or maximal loading of a partially denervated muscle can produce lasting loss. Prescribe moderate-intensity, submaximal, well-spaced work with careful monitoring, not maximal strengthening.

Afterword — how to use this book

Twenty-four chapters, five parts. If you take four things from all of it:

  • Structure explains function, and function explains pathology. A tuberosity means something pulls there. A watershed zone means something ruptures there. A retrograde blood supply means something dies there. Learn the reason and the fact comes free.
  • The clinically decisive facts are usually the ones about position, level and exception. Which nerve at which level of the humerus. Which root a posterolateral disc herniation actually compresses. Which lung is dependent. Which side the walking stick goes in. Which position the hand is splinted in. These are what separate a safe clinician from a well-read one.
  • Anatomy tells you when NOT to treat. Cauda equina, septic arthritis, compartment syndrome, cervical arterial dissection, autonomic dysreflexia, abdominal aortic aneurysm, Charcot neuroarthropathy, cardiac referred pain. Recognising these is the most valuable use to which this entire book can be put.
  • Where the evidence has moved, the teaching should move with it. Impingement, tendinitis, core stability, degenerative meniscal surgery, ITB stretching, sternal precautions, imaging in low back pain — the anatomy did not change, but what we do with it did. Hold both: the structure firmly, and the practice provisionally.

Chapter 24 of 24 · Human Anatomy · Physiotherapist India End of Part 5 — and of the series.

Where students consistently go wrong

  • Forgetting the dorsal root ganglion lies outside the cord — the basis of the SNAP discriminator.
  • Getting the exit rule wrong. C1–C7 above, C8 between C7 and T1, T1 downwards below.
  • Not testing a muscle that shares the root but not the nerve. This is the discriminator.
  • Treating dermatome maps as exact boundaries. Use the reliable key points.
  • Missing Horner’s syndrome in a brachial plexus injury — it signals root avulsion.
  • Forgetting the 1 mm/day rule and therefore giving patients no realistic timeline.
  • Forgetting the 12–18-month endplate window. Proximal injuries are a race against it.
  • Calling a neurodynamic test positive on stretch alone. It must reproduce the symptoms and change with structural differentiation.
  • Over-applying the double crush concept as a diagnosis rather than a prompt to examine the whole pathway.
  • Maximally strengthening a partially denervated muscle. Overwork weakness is real.

Check yourself

15 questions on this chapter. Tap one to see the answer and the reasoning.

Q1. The connective tissue layer that forms the guiding tube for regenerating axons is the
  1. (A) epineurium
  2. (B) perineurium
  3. (C) endoneurium
  4. (D) mesoneurium

Answer: (C) Its survival distinguishes Sunderland II from III.

Q2. The blood–nerve barrier resides in the
  1. (A) endoneurium
  2. (B) perineurium
  3. (C) epineurium
  4. (D) Schwann cell

Answer: (B)

Q3. The dorsal root ganglion contains the cell bodies of
  1. (A) motor neurons
  2. (B) primary sensory afferents
  3. (C) preganglionic sympathetic neurons
  4. (D) interneurons

Answer: (B) Being outside the cord, it explains preserved SNAPs in radiculopathy.

Q4. The long thoracic nerve arises from
  1. (A) the upper trunk
  2. (B) the posterior cord
  3. (C) the roots C5, C6, C7
  4. (D) the medial cord

Answer: (C)

Q5. Klumpke palsy affects which part of the brachial plexus?
  1. (A) Upper trunk C5–C6
  2. (B) Middle trunk C7
  3. (C) Lower trunk C8–T1
  4. (D) Posterior cord

Answer: (C) It may include Horner’s syndrome.

Q6. Horner’s syndrome accompanying a brachial plexus injury indicates
  1. (A) a good prognosis
  2. (B) preganglionic root avulsion
  3. (C) an isolated ulnar lesion
  4. (D) neurapraxia

Answer: (B) Prognostically decisive and not directly repairable.

Q7. The most useful discriminator between C7 radiculopathy and radial nerve palsy is
  1. (A) the presence of wrist drop
  2. (B) weakness of a muscle sharing the root but supplied by a different peripheral nerve
  3. (C) the distribution of pain
  4. (D) the Tinel’s sign

Answer: (B) For example, flexor carpi radialis (median, C7).

Q8. In Seddon’s classification, focal demyelination with an intact axon is
  1. (A) neurapraxia
  2. (B) axonotmesis
  3. (C) neurotmesis
  4. (D) Sunderland IV

Answer: (A) Recovery is complete within days to 12 weeks, without Wallerian degeneration.

Q9. Axonal regeneration proceeds at approximately
  1. (A) 1 mm/day
  2. (B) 1 cm/day
  3. (C) 1 mm/week
  4. (D) 1 cm/week

Answer: (A) Roughly an inch a month, after a 2–4 week initial delay.

Q10. Denervated muscle typically loses its capacity for functional reinnervation after approximately
  1. (A) 3 months
  2. (B) 6 months
  3. (C) 12–18 months
  4. (D) 3 years

Answer: (C) Which is why proximal injuries have the worse prognosis.

Q11. An L5 radiculopathy differs from a common fibular nerve palsy in that L5 also weakens
  1. (A) plantarflexion
  2. (B) hip abduction and inversion
  3. (C) eversion
  4. (D) knee extension

Answer: (B)

Q12. ULNT 2b preferentially loads the
  1. (A) median nerve
  2. (B) ulnar nerve
  3. (C) radial nerve
  4. (D) musculocutaneous nerve

Answer: (C) With forearm pronation and wrist flexion.

Q13. A neurodynamic test should be considered positive when it
  1. (A) produces a stretch sensation
  2. (B) reproduces the patient’s symptoms and those symptoms change with a distant structural differentiating movement
  3. (C) produces any discomfort
  4. (D) limits range

Answer: (B)

Q14. Postganglionic sympathetic fibres to sweat glands release
  1. (A) noradrenaline
  2. (B) acetylcholine
  3. (C) dopamine
  4. (D) adrenaline

Answer: (B) The classic exception.

Q15. In a partially denervated muscle, maximal-effort strengthening risks
  1. (A) nothing — it is always beneficial
  2. (B) overwork weakness with lasting loss
  3. (C) accelerated reinnervation
  4. (D) reduced spasticity

Answer: (B) Prescribe moderate, submaximal, well-spaced loading.

Quick review

Everything on this page, in one screen

  • Nerve structure: endoneurium (the regeneration tube), perineurium (blood–nerve barrier), epineurium, mesoneurium (gliding). Nerves accommodate movement by unfolding, then gliding, then stretching; they fail by ischaemia at low pressures.
  • 31 spinal nerves; DRG lies outside the cord; rami = posterior (true back muscles), anterior (plexuses), meningeal, communicantes. C1–C7 exit above; C8 between C7 and T1; T1 down exit below.
  • Cervical plexus C1–C4: cutaneous branches at Erb’s point, ansa cervicalis, phrenic (C3–C5). Supraclavicular nerves reach the second rib — hence shoulder-tip referral.
  • Brachial plexus: Roots → Trunks → Divisions → Cords → Branches. Dorsal scapular C5, long thoracic C5–C7 from roots; suprascapular from the upper trunk; posterior cord = ULTRA. Erb’s (C5–6) = waiter’s tip; Klumpke (C8–T1) = claw + Horner’s.
  • Lumbar plexus L1–L4 (I, I Get Laid On Fridays); sacral plexus L4–S4 with superior gluteal (Trendelenburg), inferior gluteal, sciatic and pudendal S2–S4.
  • Key dermatome points: C6 thumb, C7 middle finger, C8 little finger, T4 nipple, T10 umbilicus, L4 medial malleolus, L5 first web space, S1 lateral heel, S4–5 perianal. Reflexes: biceps C5, brachioradialis C6, triceps C7, knee L3–4, ankle S1–2.
  • THE DISCRIMINATOR: test a muscle sharing the root but supplied by a different peripheral nerve. Root lesions also give dermatomal sensory loss, a reduced segmental reflex, and preserved SNAPs.
  • Seddon/Sunderland: neurapraxia (I) — full recovery, no Wallerian degeneration · axonotmesis (II–IV) — regeneration at 1 mm/day, quality falling as more sheaths are lost · neurotmesis (V) — needs surgery. Track with a progressing Tinel’s. Endplate window ~12–18 months.
  • Entrapments across the body, and the double crush as a prompt to examine the whole pathway.
  • Neurodynamics: ULNT 1 median, 2b radial, 3 ulnar; SLR, slump, prone knee bend. Positive = reproduces symptoms AND changes with structural differentiation. Sliders before tensioners.
  • Autonomic: sympathetic thoracolumbar T1–L2 (short pre-, long postganglionic, noradrenaline — except sweat glands, acetylcholine); parasympathetic craniosacral III, VII, IX, X, S2–S4. Horner’s, autonomic dysreflexia (≥T6), CRPS (Budapest criteria, graded motor imagery), orthostatic hypotension.
  • Polyneuropathies: diabetic, GBS (monitor vital capacity), CIDP, CMT, nutritional, chemotherapy-induced, and leprosy. Beware overwork weakness — prescribe submaximal, well-spaced loading.

Further reading

SourceWhy it earns its place
Standring S (ed.) — Gray’s Anatomy, 42nd ednDefinitive plexus and peripheral nerve anatomy
Snell RS — Clinical NeuroanatomyRoots, plexuses and localisation
Lundy-Ekman L — Neuroscience: Fundamentals for RehabilitationThe physiotherapy-facing synthesis
Butler DS — The Sensitive Nervous System; Mobilisation of the Nervous SystemThe reference for neurodynamics
Shacklock M — Clinical NeurodynamicsTesting, differentiation, sliders and tensioners
Seddon HJ (1943); Sunderland S (1951)The original injury classifications
Mackinnon SE, Dellon AL — Surgery of the Peripheral NerveRepair, transfers and the reinnervation timeline
Upton ARM, McComas AJ — “The double crush in nerve-entrapment syndromes”, Lancet, 1973The original hypothesis — read alongside its critiques
Harden RN et al. — Budapest criteria for CRPS, Pain, 2010The diagnostic standard
ASIA — International Standards for Neurological Classification of Spinal Cord InjuryKey sensory points and myotomes
Chaurasia BD — Human Anatomy, all volumesIndian syllabus-matched descriptive account

Reviewed by the Physiotherapist India Team. · Human Anatomy contents