By the end of this chapter you'll be able to…

  • 1Trace the brachial plexus from roots to terminal branches and explain why the posterior cord supplies the limb's extensors
  • 2Derive the waiter's tip posture of Erb's palsy and the claw hand of Klumpke's palsy from the specific roots lost, rather than memorising them
  • 3Use an associated Horner's syndrome to localise a brachial plexus injury to the lower trunk or root level
  • 4Localise radial, ulnar, median and axillary nerve lesions from the deformity, and explain the ulnar paradox and thenar sensory sparing mechanistically
  • 5Explain retrograde blood supply and apply it to predict avascular necrosis after scaphoid waist and intracapsular femoral neck fractures
  • 6Identify the side of pelvic drop in a Trendelenburg sign and explain why the abductors act on the contralateral hemipelvis
  • 7Distinguish common peroneal foot drop from an L5 radiculopathy using inversion and the sensory pattern
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Why this chapter matters in NEET PG
Limb anatomy contains more named structures than anyone can memorise, but NEET PG tests only a narrow slice of it: what breaks and what deficit that produces. The unifying principle is that a deformity is never arbitrary — it is the unopposed action of whatever muscles remain innervated. Learning that principle lets you reconstruct any deformity from the nerve involved, instead of memorising a list of postures.

Upper & Lower Limb

1. What this chapter covers, and how NEET PG actually tests it

Limb anatomy has more named structures than any candidate can hold, and NEET PG does not attempt to test them.

It tests a much narrower thing: what breaks, and what deficit that produces.

Three question archetypes account for almost all of it.

A nerve is compressed or stretched, and the stem describes a hand posture or a gait. A bone fractures at a site where an artery has to cross, and the stem asks about necrosis. A muscle loses its nerve supply, and the stem describes what the patient can no longer do.

In every case the deformity is not arbitrary — it is the unopposed action of whatever still works. That principle turns a memorised list of deformities into something you can reconstruct.

This chapter covers four areas: the brachial plexus, upper limb peripheral nerve lesions, fractures with a blood supply problem, and lower limb nerves and gait.

In scope hereDeliberately out of scope
Brachial plexus roots, trunks and their two classic injuriesExhaustive muscle attachment tables
Radial, ulnar, median and axillary nerve lesions with their deformitiesDetailed fracture classification systems (see Orthopedics)
Scaphoid, femoral neck and humeral fractures with vascular consequencesJoint arthroscopy and operative technique
Gluteal, sciatic, common peroneal and femoral nerve deficitsRehabilitation protocols

2. The brachial plexus

2.1 The organising structure

The plexus is formed from the ventral rami of C5 to T1, arranged in the sequence roots, trunks, divisions, cords, branches.

Three trunks form from the roots. Upper trunk from C5 and C6, middle trunk from C7 alone, lower trunk from C8 and T1.

Each trunk splits into anterior and posterior divisions, and these regroup into the lateral, posterior and medial cords, named for their relation to the axillary artery.

All the posterior divisions join to form the posterior cord, which is why the posterior cord supplies extensors — the radial and axillary nerves are its terminal branches.

That single relationship explains why a posterior cord lesion produces weakness of extension throughout the limb, rather than a patchy deficit.

2.2 Erb's palsy — the upper trunk

Erb-Duchenne palsy is an injury to C5 and C6, the upper trunk, at Erb's point.

The mechanism is forcible widening of the angle between the neck and the shoulder — a shoulder dystocia at delivery, or a fall onto the shoulder in an adult.

Now derive the posture rather than memorising it.

C5 and C6 supply the abductors and lateral rotators of the shoulder, the flexors of the elbow, and the supinator.

Losing those leaves the shoulder adducted and medially rotated, the elbow extended, and the forearm pronated.

That is the "waiter's tip" or "policeman's tip" position, and the wrist is typically flexed. Every component is the unopposed action of muscles that remain innervated.

Sensory loss is over the lateral aspect of the arm and forearm, and the biceps and brachioradialis reflexes are lost.

2.3 Klumpke's palsy — the lower trunk

Klumpke's palsy injures C8 and T1, the lower trunk, usually from forcible upward traction of the abducted arm — a breech delivery, or a fall while grasping at a support.

C8 and T1 supply the small muscles of the hand, so the result is a claw hand with wasting of the intrinsics.

T1 also carries the sympathetic outflow to the head and neck, which is why an associated Horner's syndrome — ptosis, miosis and anhidrosis — is a strong clue that the injury is at the lower trunk or root level.

The presence of Horner's therefore distinguishes a proximal lower trunk lesion from a distal ulnar nerve lesion producing a similar claw.


3. Upper limb nerve lesions

3.1 Radial nerve — extensors, so the wrist drops

The radial nerve descends in the spiral (radial) groove of the humerus, which is why a midshaft humeral fracture endangers it.

It supplies the triceps proximally and then all the extensors of the wrist and fingers.

Injury in the groove spares the triceps branch given off higher up, so elbow extension is preserved while the wrist drops.

Wrist drop is the signature, and finger extension at the metacarpophalangeal joints is lost with it.

Two other mechanisms are classically tested. Saturday night palsy results from prolonged compression of the nerve against the humerus by an arm draped over a chair back while unconscious.

Crutch palsy compresses the nerve in the axilla, which is more proximal, so here the triceps is also affected and elbow extension is weak.

Sensory loss is characteristically small — an area over the first dorsal interosseous space on the back of the hand — because of extensive overlap from adjacent nerves.

3.2 Ulnar nerve — the claw, and the paradox

The ulnar nerve is most vulnerable behind the medial epicondyle, and at the wrist in Guyon's canal.

It supplies most intrinsic hand muscles, including the medial two lumbricals.

Lumbricals flex the metacarpophalangeal joints and extend the interphalangeal joints, so losing them leaves the opposite: MCP extension with IP flexion of the ring and little fingers, which is the ulnar claw.

Now the point that generates a favourite question.

The ulnar paradox states that a more proximal lesion produces a less obvious claw.

The reason is that flexor digitorum profundus to the ring and little fingers is also ulnar-supplied. A proximal lesion at the elbow denervates it, so those fingers cannot flex at the distal interphalangeal joints.

A distal lesion at the wrist spares that muscle, so the profundus pulls the fingers into flexion unopposed and the claw looks far worse.

So a nastier-looking hand implies a more distal injury. The counterintuitive direction is exactly why it is asked.

Froment's sign tests the same nerve. Adductor pollicis is paralysed, so gripping paper between thumb and index finger recruits flexor pollicis longus, and the thumb interphalangeal joint visibly flexes.

3.3 Median nerve — the pointing index and the ape thumb

The median nerve is compressed in the carpal tunnel beneath the flexor retinaculum, and injured at the wrist in penetrating trauma or at the elbow in supracondylar fractures.

A high lesion at the elbow paralyses flexor digitorum superficialis and the radial half of profundus.

On attempting to make a fist, the index and middle fingers cannot flex, so the hand assumes the "pointing index" or hand of benediction posture.

A low lesion at the wrist spares the long flexors but denervates the thenar muscles.

Thenar wasting with loss of opposition gives the ape thumb deformity, where the thumb lies in the plane of the palm.

Carpal tunnel syndrome compresses the same nerve, producing nocturnal paraesthesia over the lateral three and a half digits with sparing of the thenar eminence skin.

That sparing has a precise anatomical cause. The palmar cutaneous branch arises proximal to the flexor retinaculum and passes superficial to it, so it escapes compression.

A patient with numbness over the palm's thenar skin therefore does not have carpal tunnel syndrome — the lesion must be more proximal.

3.4 Axillary nerve — the surgical neck

The axillary nerve winds around the surgical neck of the humerus, so it is injured by fracture there and by anterior shoulder dislocation.

It supplies deltoid and teres minor, so abduction beyond the initial range is lost.

Sensory loss occupies the "regimental badge" area over the lateral shoulder, which should be tested routinely after any shoulder dislocation before and after reduction.


4. Fractures with a blood supply problem

4.1 The shared principle

Some bones receive their arterial supply in a direction that runs from the fracture-prone region towards the fragment at risk.

When the supply must cross the fracture line to reach the distal fragment, that fragment dies. This is retrograde blood supply, and it explains two of the most heavily tested fractures in the exam.

4.2 The scaphoid

The scaphoid receives roughly 80% of its supply through branches of the radial artery entering at the dorsal ridge, distally.

Blood therefore flows retrogradely from distal to proximal to reach the proximal pole.

A fracture at the waist, the commonest site, interrupts that flow. The proximal pole loses its supply and is at high risk of avascular necrosis and non-union.

The clinical presentation is a fall on the outstretched hand with tenderness in the anatomical snuffbox, bounded by extensor pollicis longus medially and abductor pollicis longus with extensor pollicis brevis laterally.

Initial radiographs are frequently normal, and this is itself an examinable point. Clinical suspicion mandates immobilisation and repeat imaging or MRI rather than discharge.

The more proximal the fracture, the higher the necrosis risk, since a smaller proximal fragment is left entirely dependent on vessels crossing the break.

4.3 The femoral neck

The femoral head is supplied chiefly by retinacular branches of the medial circumflex femoral artery, which ascend along the femoral neck beneath the capsule.

The artery of the ligamentum teres contributes little in adults, and the contribution declines with age.

So an intracapsular femoral neck fracture disrupts the ascending retinacular vessels and threatens the head with avascular necrosis — the same geometry as the scaphoid, at a different scale.

This is the anatomical reason a displaced intracapsular fracture in an older patient is usually treated by replacing the head rather than fixing it.

An extracapsular intertrochanteric fracture lies below the level at which those vessels enter, so the head keeps its supply and internal fixation is appropriate.

The limb classically lies shortened and externally rotated after a displaced neck fracture, because the pull of the short external rotators is no longer balanced.

4.4 Two other fracture-nerve associations worth holding

Supracondylar humeral fracture in a child endangers the brachial artery and the median nerve, particularly its anterior interosseous branch.

Untreated ischaemia here produces Volkmann's ischaemic contracture, a flexion deformity from fibrosis of infarcted forearm flexors.

Colles fracture is a distal radial fracture with dorsal displacement, giving the dinner fork deformity after a fall on the outstretched hand.

Smith's fracture is its volar-displaced mirror image, sometimes called a reverse Colles.


5. Lower limb nerves and gait

5.1 The superior gluteal nerve and the Trendelenburg sign

Gluteus medius and minimus do not abduct the leg in normal walking. They stabilise the pelvis when standing on one leg.

Their job is to hold up the opposite, unsupported side of the pelvis during the stance phase.

So a lesion of the superior gluteal nerve makes the pelvis drop on the side opposite the lesion when the patient stands on the affected leg.

That drop is the Trendelenburg sign, and its direction is the detail exams test.

Bilateral involvement produces a waddling gait, since the pelvis dips alternately with each step.

This nerve is at risk during hip surgery and from an incorrectly placed intramuscular gluteal injection, which is why injections are given in the upper outer quadrant of the buttock.

5.2 The common peroneal nerve and foot drop

The common peroneal nerve winds around the neck of the fibula, where it lies subcutaneous against bone.

That position makes it the most commonly injured nerve in the lower limb, vulnerable to a tight plaster cast, prolonged leg crossing, or a fibular neck fracture.

Its deep branch supplies the dorsiflexors and its superficial branch the evertors.

Injury therefore causes foot drop with loss of eversion, and a high-stepping gait as the patient lifts the knee to clear the toes.

Sensory loss covers the dorsum of the foot and the lateral leg.

The eversion component is the discriminator. An L5 radiculopathy can also cause foot drop, but inversion, supplied by tibial-innervated tibialis posterior, remains a distinguishing test alongside the pattern of sensory loss.

5.3 The tibial and sciatic nerves

The tibial nerve supplies the posterior compartment, so its injury abolishes plantarflexion and inversion, giving a calcaneovalgus foot and loss of the ankle jerk.

It also supplies the sole's intrinsic muscles, and passes behind the medial malleolus in the tarsal tunnel.

The sciatic nerve carries both divisions, and is injured by posterior hip dislocation or by an intramuscular injection placed in the wrong quadrant.

The common peroneal division is more susceptible than the tibial, being more laterally placed and more tightly tethered, so a partial sciatic injury often presents as an isolated foot drop.

5.4 The femoral nerve

The femoral nerve supplies the quadriceps, so injury causes weak knee extension with a lost knee jerk, and the patient may lock the knee in extension to walk.

Sensory loss follows the anterior thigh, and continues along the medial leg through its saphenous branch.

The femoral triangle's contents run lateral to medial as nerve, artery, vein, with the femoral canal medial to the vein — which is where a femoral hernia descends.


Worked clinical vignettes

Question 1 of 3

Q1. After a difficult shoulder dystocia, a newborn holds the right arm adducted and medially rotated at the shoulder, extended at the elbow, with the forearm pronated. Which structure is injured?

Pick an option to check your answer.

Show explanation

Solution. This is the waiter's tip posture of Erb's palsy, from injury to the C5 and C6 roots at Erb's point.

Each element is the unopposed action of surviving muscles once the abductors, lateral rotators, elbow flexors and supinator are denervated.

(a) Lower trunk injury gives a claw hand, often with Horner's syndrome. Answer: (b).

Question 2 of 3

Q2. A 24-year-old falls on an outstretched hand and has tenderness in the anatomical snuffbox. Initial wrist radiographs are reported as normal. What is the correct next step, and why?

Pick an option to check your answer.

Show explanation

Solution. Snuffbox tenderness after a fall on the outstretched hand is a scaphoid fracture until proven otherwise, and early radiographs are often normal.

The consequence of missing it is specific. The scaphoid's supply enters distally at the dorsal ridge and flows retrogradely, so a waist fracture leaves the proximal pole dependent on vessels crossing the fracture line, risking avascular necrosis and non-union.

Answer: (b).

Question 3 of 3

Q3. A patient has a claw hand affecting the ring and little fingers that becomes visibly more marked after a second, more distal injury to the same nerve. What explains this?

Pick an option to check your answer.

Show explanation

Solution. Flexor digitorum profundus to the ring and little fingers is ulnar-supplied but arises proximally.

A proximal lesion denervates it, so those fingers cannot flex at the distal interphalangeal joints and the claw is blunted. A distal lesion spares it, allowing unopposed flexion and a more striking deformity.

The paradox is therefore that a worse-looking claw indicates a more distal lesion. Answer: (b).


7. Common exam traps

  • Reversing the Trendelenburg sign's side. The pelvis drops on the side opposite the affected gluteal nerve, because the abductors hold up the unsupported side during stance.
  • Reversing the ulnar paradox. A more distal lesion gives a more obvious claw, because flexor digitorum profundus is spared.
  • Expecting large sensory loss with radial nerve injury. The autonomous zone is small, over the first dorsal interosseous space, because of overlap from adjacent nerves.
  • Missing thenar skin sparing in carpal tunnel syndrome. The palmar cutaneous branch passes superficial to the retinaculum, so palmar thenar numbness points to a more proximal median lesion.
  • Treating a normal radiograph as excluding a scaphoid fracture. Early films are frequently normal, and discharge is the error that leads to non-union.
  • Confusing intracapsular and extracapsular hip fractures. Only the intracapsular fracture disrupts the ascending retinacular vessels and threatens the head, which is why the management differs.
  • Forgetting to check the regimental badge area after shoulder dislocation. Axillary nerve status should be documented both before and after reduction.
  • Attributing all foot drop to the common peroneal nerve. L5 radiculopathy also causes it; the state of inversion and the sensory pattern separate them.

Summary

  • The brachial plexus runs roots, trunks, divisions, cords, branches from C5 to T1, and all posterior divisions form the posterior cord, which is why it supplies the extensors through the radial and axillary nerves.
  • Erb's palsy is a C5 and C6 upper trunk injury giving the waiter's tip posture, each element being the unopposed action of surviving muscles.
  • Klumpke's palsy is a C8 and T1 lower trunk injury giving a claw hand, and an accompanying Horner's syndrome localises the lesion proximally because T1 carries sympathetic fibres.
  • Radial nerve injury in the spiral groove causes wrist drop with preserved elbow extension; an axillary lesion such as crutch palsy also weakens the triceps.
  • The ulnar claw is loss of the medial two lumbricals; the ulnar paradox means a distal lesion looks worse because flexor digitorum profundus is spared.
  • A high median lesion gives the pointing index on attempting a fist; a low lesion gives thenar wasting and the ape thumb.
  • Carpal tunnel syndrome spares thenar skin sensation because the palmar cutaneous branch passes superficial to the flexor retinaculum.
  • Axillary nerve injury follows surgical neck fracture or shoulder dislocation, causing deltoid weakness and regimental badge sensory loss.
  • The scaphoid's supply enters distally and flows retrogradely, so a waist fracture puts the proximal pole at risk of avascular necrosis, and initial radiographs are often normal.
  • The femoral head depends on ascending retinacular branches of the medial circumflex femoral artery, so intracapsular fractures risk avascular necrosis while extracapsular ones do not.
  • Supracondylar humeral fracture threatens the brachial artery and can cause Volkmann's ischaemic contracture; Colles fracture gives the dinner fork deformity.
  • Superior gluteal nerve injury produces a Trendelenburg sign with the pelvis dropping on the contralateral side, and a waddling gait if bilateral.
  • The common peroneal nerve at the fibular neck is the most commonly injured lower limb nerve, giving foot drop with loss of eversion and a high-stepping gait.
  • Tibial nerve injury abolishes plantarflexion and inversion with loss of the ankle jerk, and the peroneal division of the sciatic nerve is the more vulnerable of the two.
  • Femoral nerve injury weakens knee extension and abolishes the knee jerk; the femoral triangle runs nerve, artery, vein from lateral to medial, with the canal medial to the vein.

Key formulas & results

Everything to memorise for the exam hall, in one card. Screenshot this for revision.

Brachial plexus organisation
Roots C5-T1 → Trunks (upper C5+C6, middle C7, lower C8+T1) → Divisions (anterior/posterior) → Cords (lateral, posterior, medial, named for their relation to the axillary artery) → Branches
ALL posterior divisions form the posterior cord, which is why it supplies the extensors via the radial and axillary nerves.
The unopposed-action principle
Any nerve-lesion deformity = the unopposed action of the muscles that are still innervated
This converts memorising deformities into reconstructing them, and works for Erb's, Klumpke's, ulnar claw, ape thumb and calcaneovalgus foot alike.
Erb's palsy (C5, C6, upper trunk)
Lost: shoulder abductors/lateral rotators, elbow flexors, supinator → shoulder ADDUCTED and MEDIALLY ROTATED, elbow EXTENDED, forearm PRONATED = waiter's tip posture
Mechanism is widening of the neck-shoulder angle: shoulder dystocia, or a fall onto the shoulder. Biceps and brachioradialis reflexes lost.
Klumpke's palsy (C8, T1, lower trunk)
Lost: small muscles of the hand → CLAW HAND with intrinsic wasting; T1 also carries sympathetic outflow → associated HORNER'S SYNDROME
Mechanism is forcible upward traction of the abducted arm. Horner's presence distinguishes a proximal lower trunk lesion from a distal ulnar lesion.
Radial nerve levels
SPIRAL GROOVE (midshaft humeral fracture, Saturday night palsy): wrist drop, triceps SPARED. AXILLA (crutch palsy): wrist drop PLUS weak elbow extension.
Sensory loss is small — the first dorsal interosseous space — because of overlap from adjacent nerves.
The ulnar paradox
A more PROXIMAL ulnar lesion produces a LESS obvious claw, because flexor digitorum profundus to the ring and little fingers is also ulnar-supplied and is denervated too
A distal (wrist) lesion spares FDP, which then flexes those fingers unopposed — so a worse-looking claw means a more distal injury.
Median nerve levels
HIGH (elbow): FDS and radial half of FDP lost → 'pointing index' / hand of benediction on making a fist. LOW (wrist): thenar muscles lost → APE THUMB, loss of opposition.
Carpal tunnel syndrome SPARES thenar skin sensation because the palmar cutaneous branch arises proximal to, and passes superficial to, the flexor retinaculum.
Retrograde blood supply principle
When the arterial supply must cross the fracture line to reach the distal fragment, that fragment undergoes avascular necrosis
The unifying explanation for both scaphoid waist and intracapsular femoral neck fractures.
Scaphoid blood supply
~80% from branches of the RADIAL ARTERY entering at the DORSAL RIDGE distally, flowing RETROGRADELY distal-to-proximal
Waist fracture endangers the proximal pole. Snuffbox tenderness with a NORMAL initial radiograph still requires immobilisation and repeat imaging or MRI.
Femoral head blood supply
Chiefly retinacular branches of the MEDIAL CIRCUMFLEX FEMORAL ARTERY, ascending along the neck beneath the capsule; the artery of ligamentum teres contributes little in adults
INTRAcapsular neck fracture disrupts them (AVN risk, often replace the head); EXTRAcapsular intertrochanteric fracture lies below their entry (fixation appropriate).
Trendelenburg sign direction
Gluteus medius and minimus (superior gluteal nerve) stabilise the pelvis in stance — the pelvis DROPS on the side OPPOSITE the lesion when standing on the affected leg
Bilateral involvement gives a waddling gait. The nerve is at risk from hip surgery and misplaced gluteal injections, hence the upper outer quadrant rule.
Common peroneal nerve
Winds around the FIBULAR NECK, subcutaneous against bone — the most commonly injured nerve in the lower limb. Deep branch = dorsiflexors, superficial branch = evertors → FOOT DROP with LOSS OF EVERSION and a high-stepping gait.
Preserved inversion (tibialis posterior, tibial nerve) plus the sensory pattern helps separate this from an L5 radiculopathy.
Femoral triangle contents
Lateral to medial: NERVE, ARTERY, VEIN — with the femoral canal medial to the vein
The femoral canal's position is where a femoral hernia descends.
⚠️

Traps NEET PG sets — and how to dodge them

These are the exact option-traps and misreads that cost marks under negative marking.

WATCH OUT
Reversing the side of pelvic drop in the Trendelenburg sign
The hip abductors hold up the UNSUPPORTED, opposite hemipelvis during single-leg stance. So with a superior gluteal nerve lesion, standing on the affected leg makes the pelvis drop on the CONTRALATERAL side. Reason it from the muscle's job, not from a memorised rule.
WATCH OUT
Reversing the ulnar paradox
A DISTAL lesion produces the MORE striking claw, because flexor digitorum profundus to the ring and little fingers is spared and flexes them unopposed. A proximal lesion denervates FDP too, blunting the deformity.
WATCH OUT
Expecting extensive sensory loss with radial nerve injury
The autonomous sensory zone is small — over the first dorsal interosseous space on the dorsum of the hand — because adjacent nerves overlap heavily. A stem describing minimal sensory loss with wrist drop is consistent, not contradictory.
WATCH OUT
Missing thenar skin sparing in carpal tunnel syndrome
The palmar cutaneous branch of the median nerve arises proximal to the flexor retinaculum and runs superficial to it, escaping compression. Numbness over the thenar eminence skin therefore points to a lesion proximal to the tunnel.
WATCH OUT
Treating a normal initial radiograph as excluding a scaphoid fracture
Early films are frequently normal in scaphoid fracture. Snuffbox tenderness after a fall on the outstretched hand mandates immobilisation with repeat imaging or MRI — discharging the patient is the error that leads to non-union and avascular necrosis.
WATCH OUT
Confusing intracapsular with extracapsular hip fractures
Only the intracapsular fracture disrupts the ascending retinacular branches of the medial circumflex femoral artery and threatens the head. Extracapsular intertrochanteric fractures lie below their entry point, so the head keeps its supply and fixation is appropriate.
WATCH OUT
Assuming all foot drop is a common peroneal nerve lesion
An L5 radiculopathy also causes foot drop. Test inversion (tibialis posterior, tibial nerve) and check the sensory distribution — a peroneal lesion loses eversion and spares inversion, with sensory loss over the dorsum of the foot and lateral leg.
WATCH OUT
Forgetting to document axillary nerve function around shoulder dislocation
The axillary nerve winds around the surgical neck and is at risk from both the dislocation and its reduction. Sensation over the regimental badge area should be tested and recorded BEFORE and AFTER reduction.
WATCH OUT
Memorising Erb's posture instead of deriving it
Each element of the waiter's tip position is simply the unopposed action of surviving muscles once C5 and C6 are lost. Derived this way it cannot be misremembered, and the same reasoning transfers to every other nerve lesion in this chapter.

Exam-pattern practice

PYQ-style questions with full solutions. Work through them as a readiness check — mark yourself honestly and get your gap report at the end.

Readiness check

Are you exam-ready for Upper & Lower Limb?

9 problems from this chapter. Try each one, reveal the worked solution, mark yourself honestly — get your gap report at the end.

9 questions~6 min

5-minute revision

The whole chapter, distilled. Read this the night before the exam.

  • Plexus order is roots, trunks, divisions, cords, branches; all posterior divisions form the posterior cord, giving the radial and axillary nerves and hence the extensors.
  • Every deformity is the unopposed action of surviving muscles — derive it rather than memorising it.
  • Erb's (C5, C6): shoulder adducted and medially rotated, elbow extended, forearm pronated, waiter's tip. Biceps and brachioradialis reflexes lost.
  • Klumpke's (C8, T1): claw hand with intrinsic wasting, plus Horner's syndrome because T1 carries sympathetic fibres.
  • Radial nerve in the spiral groove: wrist drop, triceps spared. In the axilla (crutch palsy): triceps also weak. Sensory loss is small.
  • Ulnar claw = loss of medial two lumbricals. Ulnar paradox: distal lesion looks worse because FDP is spared. Froment's sign tests adductor pollicis.
  • Median high lesion: pointing index on making a fist. Low lesion: thenar wasting, ape thumb. Carpal tunnel spares thenar skin via the palmar cutaneous branch.
  • Axillary nerve: surgical neck fracture or shoulder dislocation, deltoid weakness, regimental badge sensory loss.
  • Retrograde supply principle: if the artery must cross the fracture line, the distal fragment dies.
  • Scaphoid: ~80% supply from the radial artery at the dorsal ridge, flowing distal to proximal. Waist fracture risks proximal pole AVN; early X-rays are often normal.
  • Femoral head: retinacular branches of the medial circumflex femoral artery. Intracapsular fracture risks AVN; extracapsular does not.
  • Supracondylar humeral fracture threatens the brachial artery and can cause Volkmann's ischaemic contracture. Colles gives a dinner fork deformity; Smith's is its volar mirror.
  • Trendelenburg: pelvis drops on the side OPPOSITE the superior gluteal nerve lesion; bilateral gives a waddling gait. Inject in the upper outer quadrant.
  • Common peroneal at the fibular neck is the most commonly injured lower limb nerve: foot drop with lost eversion, high-stepping gait, dorsal foot sensory loss.
  • Tibial nerve injury: lost plantarflexion and inversion, calcaneovalgus foot, absent ankle jerk. The peroneal division of the sciatic is more vulnerable than the tibial.
  • Femoral nerve: weak knee extension, absent knee jerk. Femoral triangle runs nerve, artery, vein lateral to medial, canal medial to the vein.

NEET PG question blueprint

How this topic is asked, tier by tier — so you can prep to the pattern.

Typical weightage: Each NEET PG question is worth +4/-1; limb anatomy typically contributes 2-3 questions per attempt, more when Orthopedics overlap is counted

Question styleMarks eachTypical countWhat it tests
Brachial plexus4~1Root-level localisation, Erb's and Klumpke's postures, Horner's as a localising sign
Upper limb nerve lesions4~1Radial, ulnar, median and axillary deficits, the ulnar paradox and carpal tunnel sensory sparing
Fracture and blood supply4~1Scaphoid and femoral neck avascular necrosis, supracondylar fracture complications
Lower limb nerves and gait4~1Trendelenburg direction, common peroneal foot drop, tibial and femoral nerve deficits
Prep strategy
  • First pass: learn each major nerve's motor territory only, and practise deriving the deformity from it. The deformity lists then become redundant.
  • Second pass: drill the direction-sensitive facts the exam exploits (Trendelenburg side, ulnar paradox, triceps sparing, thenar sensory sparing), since reversing any one of them converts a known answer into a wrong one.
  • Final pass: work fracture vignettes specifically, asking each time where the artery enters relative to the break, so the vascular reasoning becomes automatic rather than recalled.

Exam-hall strategy

Battle-tested tips from mentors and toppers for this topic under the sectional clock.

  1. When a stem describes a posture or deformity, name the muscles that are NOT working, then check which single nerve supplies all of them. This is faster and more reliable than matching the described posture to a remembered picture.
  2. For plexus questions, look for Horner's syndrome first. Its presence forces the lesion to the lower trunk or root level and eliminates every distal nerve option at once.
  3. In fracture questions, ask where the artery enters the bone relative to the fracture line. If it must cross the break, avascular necrosis is the answer being tested.
  4. For radial nerve questions, use the triceps as the level marker: spared means the spiral groove, weak means the axilla.
  5. In ulnar questions, judge the lesion level from the claw's severity in reverse — a more striking claw means a more distal lesion, never the other way round.
  6. For foot drop, immediately test eversion versus inversion mentally. That one comparison separates a common peroneal lesion from an L5 radiculopathy in most stems.
  7. With NEET PG's +4/-1 marking, eliminate by asking whether the proposed nerve even reaches the structure described. In limb anatomy this usually removes two options without needing the full answer.
  8. Under the 5-group, 42-minute time-bound format, limb anatomy items are typically quick derivations rather than long clinical reasoning — clear them early in a group so the saved minutes go to slower vignettes, since a closed group cannot be reopened.

Beyond the exam

Where this skill shows up in the job you're competing for — and in life.

Trauma and emergency assessment

Documenting radial nerve function after a humeral shaft fracture and axillary nerve function around shoulder dislocation are routine, medico-legally important examinations founded entirely on the anatomy here.

Orthopaedic decision-making

The choice between fixing and replacing a hip fracture, and the decision to immobilise a radiographically normal wrist, both follow directly from where the arterial supply enters the bone.

Obstetric practice

Recognising Erb's and Klumpke's palsies after difficult deliveries, and understanding the mechanisms that cause them, informs both shoulder dystocia management and the counselling that follows.

Safe injection and positioning practice

The upper outer quadrant rule for gluteal injections and the avoidance of pressure over the fibular neck during surgery or casting exist specifically to protect the superior gluteal and common peroneal nerves.

Where else this topic is tested

Prepare once, score in every exam that asks it.

USMLE Step 1Very high overlap — brachial plexus lesions, ulnar paradox and scaphoid/femoral neck avascular necrosis are all core content
FMGE / NExTVery high overlap, with the same nerve-lesion and fracture-complication emphasis
MS Orthopedics entrance and exit examsFoundational — fracture-associated neurovascular injury and the blood supply of the scaphoid and femoral head are entry-level requirements

Questions aspirants ask

Pulled from the Q&A community and mentor sessions.

Yes, and it is the single most useful habit for this chapter. Every deformity is the unopposed action of the muscles that remain innervated. Work out what the injured nerve supplies, remove it, and ask what the remaining muscles will do to the joint. Erb's waiter's tip, the ulnar claw, the ape thumb and the calcaneovalgus foot are all reconstructible this way in a few seconds, and reconstruction is far more reliable than recall under exam pressure.

Because they share one clinically important geometry — a retrograde arterial supply that has to cross the fracture-prone zone to reach the fragment at risk. That makes them the two clean examples of anatomy directly dictating management: immobilise and re-image the possible scaphoid fracture, and replace rather than fix the displaced intracapsular femoral neck fracture. A question on either is really a question about that principle.

Do not memorise a direction. Recall the muscle's actual job: gluteus medius and minimus on the standing leg hold up the opposite side of the pelvis, which has nothing beneath it. If that nerve is damaged, the unsupported side falls. So the drop is contralateral to the lesion, and you can re-derive it every time rather than risking a reversed memory.

It is genuinely useful, because it means the severity of the visible deformity localises the lesion. A dramatic claw suggests a distal injury at the wrist with flexor digitorum profundus intact, while a milder-looking hand may reflect a more extensive lesion at the elbow. Judging severity by appearance alone would lead you to exactly the wrong conclusion, which is why the point is emphasised in both teaching and examination.
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