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

  • 1State the three questions that define any regional technique
  • 2List the absolute contraindications to neuraxial blockade
  • 3Explain why local anaesthetics fail in infected tissue
  • 4Map pKa, lipid solubility and protein binding to their clinical effects
  • 5Distinguish ester from amide agents by metabolism and allergy risk
  • 6State the maximum safe doses of lignocaine and bupivacaine
  • 7Explain the three reasons adrenaline is added
  • 8Explain why ropivacaine and levobupivacaine were developed
  • 9Describe the layers traversed during lumbar puncture and the endpoint
  • 10Explain how baricity and position determine spinal block height
  • 11State the block heights required for common operations
  • 12Explain hypotension and bradycardia from sympathetic blockade
  • 13Compare spinal and epidural across volume, onset, density and risk
  • 14State the purpose of an epidural test dose
  • 15Recognise and manage a developing total spinal
  • 16Explain the mechanism and postural character of post-dural puncture headache
  • 17Compare cutting and pencil-point needles for headache incidence
  • 18Describe the epidural blood patch and its success rate
  • 19State the anticoagulation intervals before block and catheter removal
  • 20Recognise the progression of local anaesthetic systemic toxicity
  • 21State the lipid emulsion regimen and the modifications to resuscitation
  • 22Match brachial plexus approaches to their characteristic complications
  • 23Explain why bupivacaine is prohibited in intravenous regional anaesthesia
  • 24State how pregnancy alters local anaesthetic dose requirement
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Why this chapter matters in NEET PG
Regional anaesthesia looks like a collection of unrelated procedures with separate landmarks, doses and complications, which is why it is usually memorised badly. Every technique in fact answers the same three questions: where the needle stops, how much drug that space needs, and what happens if the drug ends up somewhere else. The first determines onset, block quality and every characteristic complication. The second explains why a spinal needs three millilitres and an epidural needs twenty. The third accounts for nearly every serious adverse event, since total spinal, systemic toxicity and vertebral canal haematoma are all drug or blood in the wrong compartment. Held that way the chapter becomes reasoning rather than recall, and the examined details fall out of the mechanism.

Regional & Spinal Anesthesia

Regional anaesthesia looks like a collection of unrelated procedures with their own landmarks, doses and complications. It is not. Every technique in the chapter answers the same three questions, and once those are held in view the material collapses into something small enough to reason about.

The first question is where the needle stops. Subarachnoid, epidural, plexus, individual nerve, fascial plane. That single fact determines onset speed, drug volume, block quality and almost every complication.

The second question is how much drug the space needs. A space bathed directly in cerebrospinal fluid needs almost nothing. A space where the drug must diffuse through fat, dura and connective tissue needs ten to twenty times as much.

The third question is what happens if the drug goes somewhere else. Nearly every serious complication of regional anaesthesia is drug in the wrong compartment: too high in the subarachnoid space, in a vein, or in the subarachnoid space when the epidural space was intended.

Hold those three and the rest is detail.

1. Why Regional Anaesthesia Is Chosen

Regional anaesthesia blocks conduction in nerves supplying the surgical field while the patient remains conscious, or lightly sedated, with an intact airway and intact protective reflexes.

The advantages are concrete rather than aesthetic. The airway is not instrumented, so the risks of intubation and of aspiration during induction are avoided. Blood loss in hip and knee surgery is reduced. Postoperative nausea is far less frequent than after general anaesthesia.

The analgesic advantage extends past the operation. A block that outlasts the incision reduces opioid requirement in the first postoperative day, which reduces sedation, ileus and respiratory depression in exactly the patients least able to tolerate them.

There is a further benefit in obstetrics that has nothing to do with the mother's comfort alone. Regional technique for caesarean section avoids general anaesthesia in a population with a difficult airway rate several times that of the general surgical population.

The limitations are equally concrete. A block can fail or be incomplete, the duration is fixed once the drug is injected unless a catheter is placed, and a conscious patient may find a long operation intolerable even with a perfect block.

Absolute contraindications are few and worth knowing exactly: patient refusal, infection at the injection site, raised intracranial pressure, and uncorrected coagulopathy or therapeutic anticoagulation. Severe hypovolaemia and fixed cardiac output states such as critical aortic stenosis are relative but practically prohibitive for spinal anaesthesia.

2. Local Anaesthetic Pharmacology

Local anaesthetics block voltage-gated sodium channels from the inside of the axon, preventing the depolarisation that propagates an action potential.

The molecule must cross the membrane in its uncharged form and then act in its charged form. This single fact explains the most examined clinical observation in the chapter: local anaesthetics fail in infected tissue.

Inflamed tissue is acidic. A lower pH pushes the equilibrium towards the charged species, leaving less uncharged drug available to cross the nerve membrane, so less drug reaches the site of action. Injecting into an abscess therefore produces poor block, which is also why abscesses are drained under general anaesthesia or with a field block placed in healthy tissue outside the inflamed area.

Three physicochemical properties determine three clinical behaviours, and they map cleanly.

PropertyDeterminesExample
pKaSpeed of onsetLignocaine (pKa 7.9) is faster than bupivacaine (pKa 8.1)
Lipid solubilityPotencyBupivacaine is more lipid soluble and more potent than lignocaine
Protein bindingDurationBupivacaine binds more avidly and lasts longer

The two chemical classes differ in metabolism and in allergy. Esters such as procaine, chloroprocaine and tetracaine are hydrolysed by plasma cholinesterase to para-aminobenzoic acid, which is the reason true allergy is far commoner with esters.

Amides such as lignocaine, bupivacaine, ropivacaine and levobupivacaine are metabolised in the liver, so their duration is prolonged in hepatic disease and in low cardiac output states. The mnemonic that amides contain a second letter "i" in the drug name is crude but reliable.

Maximum safe doses are examined directly and are worth committing to memory rather than deriving. Lignocaine is 3 mg/kg plain and 7 mg/kg with adrenaline. Bupivacaine is 2 mg/kg, and adrenaline raises this only modestly to about 3 mg/kg.

Adrenaline is added for three reasons at once. It causes vasoconstriction that slows systemic absorption, which prolongs the block and raises the maximum safe dose, and it serves as an intravascular marker since a sudden tachycardia after a test dose suggests the needle is in a vein.

The traditional teaching that adrenaline must never be used in end-arterial territories such as digits has been substantially revised for elective digital blocks with commercial low-concentration adrenaline, but the caution remains standard examination material and remains sensible in compromised digits.

Ropivacaine and levobupivacaine exist for one reason: cardiotoxicity. Racemic bupivacaine binds cardiac sodium channels avidly and dissociates from them slowly, which is why bupivacaine cardiac arrest is notoriously resistant to resuscitation. The single-enantiomer agents retain most of the sensory block with a wider cardiac safety margin.

3. Spinal Anaesthesia

In spinal, or subarachnoid, block a small volume of local anaesthetic is injected directly into cerebrospinal fluid, where it bathes the nerve roots without any diffusion barrier.

This is why the drug volume is so small and the onset so fast. Two to three millilitres of 0.5 per cent bupivacaine produce a dense surgical block within five to ten minutes, compared with fifteen to twenty millilitres and twenty minutes for an epidural covering the same dermatomes.

The needle is inserted below the termination of the spinal cord, which lies at L1 to L2 in the adult and lower, at about L3, in the neonate. The L3-L4 interspace is used, identified from Tuffier's line joining the iliac crests.

The layers traversed from skin inwards are skin, subcutaneous fat, supraspinous ligament, interspinous ligament, ligamentum flavum, epidural space, dura and arachnoid. The endpoint is unambiguous: free flow of clear cerebrospinal fluid.

Spread within the cerebrospinal fluid is what determines block height, and it is governed principally by baricity and patient position, with the injected dose mattering more than the volume or the concentration.

Baricity is the density of the solution relative to cerebrospinal fluid. Hyperbaric solutions, made by adding dextrose, sink with gravity, so the block follows position and is predictable and controllable. This predictability is why hyperbaric bupivacaine is the standard agent.

Isobaric solutions stay approximately where they are placed and are less affected by position. Hypobaric solutions rise, and are used rarely and deliberately, for example in a lateral position for hip surgery.

Height matters because of what lies at each level. T10 covers hip surgery and transurethral resection. T6 to T8 covers lower abdominal surgery. T4, the nipple line, is required for caesarean section because peritoneal traction is otherwise felt.

The autonomic block extends roughly two segments above the sensory block, and the motor block roughly two segments below it. The autonomic component is what causes the haemodynamic consequences, and it is always higher than the level the patient reports.

Sympathetic blockade produces the two predictable cardiovascular effects. Vasodilatation below the block level causes hypotension by reducing venous return and systemic vascular resistance. A block above T4 also blocks the cardiac accelerator fibres from T1 to T4, producing bradycardia rather than the compensatory tachycardia that would otherwise occur.

Management follows the mechanism: fluid preload or co-load, left uterine displacement in the pregnant patient, and vasopressors. Phenylephrine is preferred in obstetrics because it restores resistance without the fetal acidosis associated with ephedrine, which crosses the placenta and stimulates fetal metabolism.

4. Epidural Anaesthesia

The epidural space is a potential space outside the dura containing fat, lymphatics and a rich venous plexus. Drug injected here must diffuse across the dura to reach the nerve roots, which changes everything about the technique.

Larger volume, slower onset, segmental block. Fifteen to twenty millilitres are needed, onset takes fifteen to twenty minutes, and the block spreads from the injection level in both directions rather than filling everything below a level.

Identification uses loss of resistance to saline or air as the needle passes through the dense ligamentum flavum into the space, most often with a Tuohy needle whose curved tip directs a catheter cranially.

The catheter is the point. A catheter allows the block to be topped up, extended, prolonged for days, and titrated to a level, none of which a single-shot spinal permits. This is why epidurals dominate labour analgesia and postoperative analgesia for thoracic and major abdominal surgery.

A test dose is given before the full dose because the epidural space contains veins and lies immediately outside the dura. A small dose of local anaesthetic with adrenaline distinguishes both misplacements: subarachnoid placement produces a rapid dense block, intravascular placement produces tachycardia.

Combined spinal-epidural technique takes the speed and density of the spinal and adds the catheter of the epidural, and is used where an operation may outlast a single-shot spinal or where postoperative analgesia is planned.

5. Spinal Compared With Epidural

The comparison is examined more often than either technique alone, because the differences all follow from one anatomical fact.

FeatureSpinalEpidural
SpaceSubarachnoid, in cerebrospinal fluidEpidural, outside dura
Volume2-3 mL15-20 mL
Onset5-10 minutes15-20 minutes
Block qualityDense, reliableLess dense, patchy failure possible
SpreadLevel-based, gravity dependentSegmental from injection point
CatheterUsually single shotCatheter routine
HypotensionRapid and pronouncedSlower and more manageable
Toxicity riskNegligible doseReal, large dose near veins
Headache riskDural puncture is intendedOnly if dura is punctured accidentally

The two risks trade against each other in a way worth stating explicitly. The spinal punctures the dura deliberately with a fine needle, so headache risk is low but not zero. The epidural should not puncture the dura at all, but if the large Tuohy needle does, headache risk is very high.

Similarly, systemic toxicity is essentially a non-issue for spinal because the dose is tiny, and a genuine hazard for epidural because the dose is large and the space is full of veins.

6. Complications of Neuraxial Blockade

Hypotension is the commonest, follows directly from sympathetic blockade, and is anticipated rather than treated as a surprise.

Total spinal is the emergency. It occurs when local anaesthetic intended for the epidural space enters the subarachnoid space, or when a spinal block ascends far higher than intended, blocking the cervical roots and the brainstem.

The presentation is progressive and unmistakable: rising sensory level, arm weakness, difficulty breathing and speaking, bradycardia, profound hypotension, then apnoea and loss of consciousness.

Management is entirely supportive and must be immediate. Secure the airway and ventilate, support the circulation with fluids and vasopressors, treat bradycardia with atropine, and sedate the patient, since a conscious patient who is paralysed and being ventilated is experiencing exactly what awareness under paralysis feels like.

Urinary retention follows blockade of the sacral parasympathetic outflow and is common enough that catheterisation is routine for longer blocks.

Vertebral canal haematoma is rare and catastrophic. It presents with back pain and progressive neurological deficit, and it requires urgent magnetic resonance imaging and decompression, ideally within eight hours, because delay converts a recoverable deficit into a permanent one. The risk is concentrated almost entirely in anticoagulated patients.

Epidural abscess presents more slowly, over days, with fever, back pain and then deficit, and is the reason for strict asepsis and for avoiding neuraxial technique through infected skin.

Transient neurological symptoms describe buttock and leg pain appearing after resolution of a spinal block, classically associated with lignocaine and the lithotomy position, self-limiting over days, and distinct from true neurological injury because there is no objective deficit.

Cauda equina syndrome, by contrast, is a genuine injury with saddle anaesthesia, bowel and bladder dysfunction and lower limb weakness, historically associated with high concentrations of local anaesthetic maldistributed through microcatheters.

7. Post-Dural Puncture Headache

Cerebrospinal fluid leaks through the dural hole faster than it is produced. Intracranial pressure falls, the brain sags, and traction on pain-sensitive meninges and vessels produces headache, with compensatory vasodilatation contributing.

The mechanism explains every feature of the presentation. The headache is postural, worse on sitting or standing and relieved by lying flat, because the sag is gravity dependent. It is frontal or occipital, and it is frequently accompanied by neck stiffness, photophobia, tinnitus and occasionally diplopia from sixth nerve traction.

Onset is typically twenty-four to forty-eight hours after the puncture, not immediately, which is a useful discriminator from other causes of postoperative headache.

Needle design is the dominant modifiable risk factor. Cutting needles such as the Quincke split dural fibres cleanly, leaving a hole that stays open. Pencil-point needles such as the Whitacre and Sprotte spread the fibres apart and produce a ragged tear whose inflammatory response seals it more effectively.

The numbers make the point. Incidence is under two per cent with fine-gauge pencil-point spinal needles, but rises to thirty to forty per cent after inadvertent dural puncture with a large-bore Tuohy epidural needle.

Other risk factors are young age, female sex, pregnancy, low body mass index, and a previous history of the same complication.

Conservative management includes bed rest for symptom relief, hydration, simple analgesia and caffeine, but none of these alter the natural history and most are supportive only.

The definitive treatment is the epidural blood patch. Fifteen to twenty millilitres of the patient's own blood are injected into the epidural space at or below the level of the puncture, where it clots and seals the leak while simultaneously raising epidural pressure and restoring cerebrospinal fluid pressure.

Relief is often immediate, and reported success after a single patch ranges from about sixty-five to over ninety per cent, with the great majority of the remainder responding to a second patch.

8. Neuraxial Blockade and Anticoagulation

This is the area where a procedural decision most directly produces a permanent injury, which is why timing intervals are examined so precisely.

The logic is uniform across every drug. Wait long enough after the last dose for the anticoagulant effect to have substantially worn off before puncturing near the epidural venous plexus, and wait long enough after the block or after catheter removal before restarting.

Catheter removal is treated with the same caution as insertion, because withdrawing a catheter can traumatise a vein exactly as inserting a needle can. This is the single most commonly missed point.

AgentBefore block or catheter removal
Prophylactic low molecular weight heparin12 hours
Therapeutic low molecular weight heparin24 hours
Subcutaneous unfractionated heparin, prophylactic4-6 hours
Intravenous unfractionated heparin4-6 hours, with normal clotting
WarfarinStop and wait for INR 1.5 or less
Clopidogrel5-7 days
Prasugrel7-10 days
Ticagrelor5-7 days
Direct oral anticoagulantsAbout 72 hours, longer in renal impairment

Aspirin alone does not contraindicate neuraxial blockade, and non-steroidal anti-inflammatory drugs alone do not either. Combination therapy is the danger, and aspirin plus a thienopyridine plus prophylactic heparin is a genuinely high-risk combination.

The American Society of Regional Anesthesia guidance on antithrombotic therapy, whose fifth edition appeared in 2025, remains the reference standard for these intervals, and Indian practice follows it.

Whatever the interval used, the block does not end the vigilance. Regular neurological observation after neuraxial blockade exists specifically to detect haematoma while it is still reversible, and any deficit that is deeper or longer-lasting than the block should be is imaged urgently rather than watched.

9. Local Anaesthetic Systemic Toxicity

Systemic toxicity follows the plasma concentration, not the site of injection, and rises with vascularity of the site, total dose and speed of absorption.

Central nervous system toxicity appears before cardiovascular toxicity, because the brain is more sensitive, and this ordering is the reason early symptoms are worth teaching to patients receiving large-volume blocks.

The sequence is progressive: perioral tingling and metallic taste, then tinnitus and visual disturbance, then agitation and muscle twitching, then convulsions, then coma. Cardiovascular collapse follows only at higher concentrations.

Bupivacaine breaks this rule, and dangerously so. It can produce cardiovascular collapse with little or no central warning, and because it dissociates slowly from cardiac sodium channels, arrhythmias are refractory and resuscitation is prolonged.

Prevention is more effective than treatment: calculate the maximum dose by weight, aspirate before each incremental injection, inject in divided doses rather than as a bolus, and use ultrasound guidance to keep the needle tip away from vessels.

Treatment has a specific antidote, which is unusual in anaesthesia. Stop injecting, call for help, secure the airway with 100 per cent oxygen, control seizures with a benzodiazepine, and give intravenous lipid emulsion.

The lipid emulsion regimen is examined. Twenty per cent lipid emulsion is given as a bolus of 1.5 mL/kg over two to three minutes, or 100 mL for patients over seventy kilograms, followed by an infusion, with the bolus repeated or the infusion doubled if the response is inadequate, to an upper limit of about 12 mL/kg.

The proposed mechanism is a lipid sink that partitions the highly lipid-soluble drug out of cardiac tissue, together with a direct metabolic effect on the myocardium.

Two modifications to standard resuscitation matter. Propofol is not a substitute for lipid emulsion, since its lipid content is far too low and its cardiovascular depression is unhelpful. And adrenaline doses should be reduced, with vasopressin avoided, since large doses impair the effectiveness of lipid rescue.

Cardiac arrest from bupivacaine may require prolonged resuscitation, and cardiopulmonary bypass has been used successfully where available, so the standard duration of a resuscitation attempt does not apply.

10. Peripheral Nerve Blocks

Peripheral blocks anaesthetise a defined territory without any sympathetic blockade of the trunk, so they avoid the hypotension that limits neuraxial technique in the frail or cardiac patient.

Ultrasound guidance changed the field, replacing paraesthesia-seeking and blind landmark technique with direct visualisation of the nerve, the needle and the spread of local anaesthetic. It improves success rates, reduces the volume needed, and reduces vascular puncture.

Nerve stimulation remains a useful adjunct, since a motor response at a low current confirms proximity, but it is no longer the primary method in most centres.

The upper limb is supplied by the brachial plexus, and the approach is chosen by the site of surgery rather than by preference.

ApproachCoversCharacteristic complication
InterscaleneShoulderPhrenic nerve palsy, near universal
SupraclavicularWhole arm below shoulderPneumothorax
InfraclavicularElbow and belowDeeper, vascular puncture
AxillaryForearm and handMusculocutaneous nerve often spared

Interscalene block causes ipsilateral hemidiaphragmatic paresis in a very high proportion of cases through spread to the phrenic nerve, which is why it is avoided in patients with significant respiratory disease or contralateral phrenic palsy.

Lower limb surgery requires blockade of both the lumbar and sacral plexus contributions, most often a femoral or adductor canal block combined with a sciatic block. The adductor canal block is preferred after knee arthroplasty because it preserves quadriceps strength and therefore allows earlier mobilisation.

Fascial plane blocks deposit large volumes of dilute local anaesthetic in a plane between muscles, where it spreads to reach multiple small nerves. The transversus abdominis plane block for abdominal wall analgesia and the erector spinae plane block for thoracic and abdominal analgesia are the two most widely used.

Intravenous regional anaesthesia, or Bier's block, uses a different principle entirely: a tourniquet isolates the limb, and local anaesthetic injected intravenously diffuses out to the nerves. The tourniquet is the entire safety mechanism, so it must not be released before at least twenty minutes have elapsed, and bupivacaine must never be used because sudden release would deliver a cardiotoxic bolus.

11. Obstetric and Paediatric Considerations

Pregnancy changes both the anatomy and the drug requirement, and the changes act in the same direction.

Engorged epidural veins reduce the volume of the epidural and subarachnoid spaces, so the same dose spreads further. Progesterone additionally increases neural sensitivity to local anaesthetic. The dose requirement therefore falls by roughly a third.

Aortocaval compression by the gravid uterus in the supine position reduces venous return, and combined with sympathetic blockade this produces severe hypotension. Left uterine displacement, by wedge or table tilt, is mandatory rather than optional.

Spinal anaesthesia is the default for elective caesarean section, requiring a block to T4, with phenylephrine as the vasopressor of choice and fluid co-loading at the time of injection.

Labour epidural analgesia is titrated with dilute local anaesthetic and an opioid, aiming for analgesia without dense motor block, so that the mother can move and push.

In children, caudal block through the sacral hiatus is the commonest regional technique, used for sub-umbilical surgery. It is usually performed under general anaesthesia, which is accepted practice in paediatrics precisely because a moving child is more dangerous than an asleep one.

Local anaesthetic toxicity risk is higher in neonates and infants because of reduced protein binding, lower alpha-1 acid glycoprotein levels and immature hepatic metabolism, so weight-based maximum doses are calculated with particular care.

12. Worked Examples

Example 1. A patient develops bradycardia and hypotension five minutes after a spinal for caesarean section, then reports difficulty breathing and tingling in the hands. What is happening and what is done?

The block is ascending too high. Hand tingling indicates a level at C8 to T1, and dyspnoea indicates intercostal paralysis, with the diaphragm still working through C3 to C5.

The bradycardia confirms it: blockade above T4 has reached the cardiac accelerator fibres, so the normal compensatory tachycardia is abolished.

This is a developing total spinal. Management is anticipatory rather than reactive. Give 100 per cent oxygen, be prepared to intubate and ventilate, give fluids and a vasopressor, and treat bradycardia with atropine.

Ensure left uterine displacement, since aortocaval compression is contributing. Do not tilt the patient head-down with a hyperbaric solution, since that will make the ascent worse.

Example 2. A labouring woman receives an epidural. Two days later she has a severe frontal headache, relieved by lying flat. Explain and manage.

Post-dural puncture headache after inadvertent dural puncture by the Tuohy needle. The large bore of the needle explains the severity and the high incidence, which reaches thirty to forty per cent after such a puncture.

The postural character is diagnostic and follows directly from the mechanism: cerebrospinal fluid leaks out, intracranial pressure falls, and the brain sags under gravity, so upright posture worsens it.

Conservative measures give symptomatic relief only. The definitive treatment is an epidural blood patch, injecting fifteen to twenty millilitres of the patient's own blood at or below the level of the puncture, which seals the leak and restores pressure.

A crucial caution: in a postpartum woman, a headache that is not postural, or that is accompanied by fever, seizures, focal deficit or hypertension, is not this diagnosis, and pre-eclampsia and cerebral venous thrombosis must be excluded.

Example 3. Ten minutes after a supraclavicular block a patient reports a metallic taste and tinnitus, then convulses. What is the treatment sequence?

Local anaesthetic systemic toxicity from vascular absorption or unrecognised intravascular injection.

Stop injecting immediately and call for help. Secure the airway and give 100 per cent oxygen, since hypoxia and acidosis both worsen toxicity substantially.

Control the seizure with a benzodiazepine in preference to propofol, because propofol contains far too little lipid to be therapeutic and depresses the cardiovascular system further.

Give 20 per cent lipid emulsion: a bolus of 1.5 mL/kg over two to three minutes, or 100 mL if over seventy kilograms, followed by an infusion, repeated if the response is inadequate.

If cardiac arrest supervenes, modify standard resuscitation by reducing adrenaline doses and avoiding vasopressin, and continue for a prolonged period, since bupivacaine dissociates slowly from cardiac sodium channels and recovery can be late.

Example 4. A patient for hip surgery received prophylactic enoxaparin at 10 pm. Surgery is at 8 am. Can a spinal be performed?

Yes. Ten hours have not quite elapsed at 8 am, so the block is delayed to 10 am to satisfy the twelve-hour interval after a prophylactic dose of low molecular weight heparin.

The interval exists because puncturing the epidural venous plexus while the anticoagulant is active risks a vertebral canal haematoma, which produces permanent paraplegia unless it is decompressed within roughly eight hours.

The next dose is withheld until at least four hours after the block, and if a catheter is placed, removal is treated with the same caution as insertion, since withdrawal can traumatise a vein just as insertion can.

Postoperative neurological observation is not optional. Any deficit deeper or more prolonged than the expected block requires urgent magnetic resonance imaging, not observation.

Example 5. Why does a dental block fail in an abscessed tooth, and what is done instead?

Because local anaesthetics must cross the nerve membrane in the uncharged form and act from within in the charged form, and inflamed tissue is acidic.

The lower pH shifts the equilibrium towards the ionised species, so less uncharged drug is available to diffuse across the membrane and less reaches the sodium channel. The block is weak or absent regardless of how much is injected.

Increasing the dose does not solve it and risks systemic toxicity, since the acidic tissue is also hyperaemic and absorption is rapid.

The solutions are to inject proximally into healthy tissue, using a regional nerve block placed outside the inflamed field, or to use general anaesthesia, and to drain the pus, since removing the inflammation restores the tissue pH.

Summary

Regional anaesthesia is three questions: where the needle stops, how much drug that space needs, and what happens if the drug is somewhere else.

Local anaesthetics block sodium channels, crossing the membrane uncharged and acting charged, which is why they fail in acidic infected tissue. pKa sets onset, lipid solubility sets potency, protein binding sets duration.

Spinal injects a tiny dose into cerebrospinal fluid for a fast dense block whose height depends on baricity and position. Epidural injects a large dose outside the dura for a slower segmental block that a catheter can extend and prolong.

Hypotension follows sympathetic blockade, and bradycardia is added once the block passes T4. Total spinal is the emergency, treated entirely by supporting airway and circulation, with sedation, until it recedes.

Post-dural puncture headache is postural, commonest after a large needle punctures the dura, and definitively treated by epidural blood patch.

Anticoagulation intervals exist to prevent vertebral canal haematoma, and catheter removal counts as a puncture.

Systemic toxicity gives central symptoms before cardiovascular collapse, except with bupivacaine, and lipid emulsion is the specific treatment.

Peripheral blocks avoid trunk sympathetic blockade, and each approach carries a characteristic complication that follows from what lies next to the target.

Key formulas & results

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

The organising tool
EVERY REGIONAL TECHNIQUE ANSWERS THREE QUESTIONS: WHERE DOES THE NEEDLE STOP, HOW MUCH DRUG DOES THAT SPACE NEED, AND WHAT HAPPENS IF THE DRUG IS SOMEWHERE ELSE.
NEARLY EVERY SERIOUS COMPLICATION IS DRUG IN THE WRONG COMPARTMENT: TOO HIGH IN THE SUBARACHNOID SPACE, IN A VEIN, OR SUBARACHNOID WHEN EPIDURAL WAS INTENDED.
Mechanism of action
LOCAL ANAESTHETICS BLOCK VOLTAGE-GATED SODIUM CHANNELS FROM INSIDE THE AXON, PREVENTING PROPAGATION OF THE ACTION POTENTIAL.
THE MOLECULE MUST CROSS THE MEMBRANE IN ITS UNCHARGED FORM AND THEN ACT IN ITS CHARGED FORM, WHICH IS THE KEY TO SEVERAL EXAMINED OBSERVATIONS.
Why blocks fail in infected tissue
INFLAMED TISSUE IS ACIDIC, WHICH SHIFTS THE EQUILIBRIUM TOWARDS THE CHARGED SPECIES AND LEAVES LESS UNCHARGED DRUG ABLE TO CROSS THE NERVE MEMBRANE.
INJECT PROXIMALLY INTO HEALTHY TISSUE OR USE GENERAL ANAESTHESIA, AND DRAIN THE PUS. INCREASING THE DOSE DOES NOT HELP AND RISKS TOXICITY.
Three properties, three effects
PKA SETS ONSET. LIPID SOLUBILITY SETS POTENCY. PROTEIN BINDING SETS DURATION.
LIGNOCAINE HAS THE LOWER PKA AND FASTER ONSET. BUPIVACAINE IS MORE LIPID SOLUBLE, MORE PROTEIN BOUND, MORE POTENT AND LONGER LASTING.
Esters versus amides
ESTERS ARE HYDROLYSED BY PLASMA CHOLINESTERASE TO PARA-AMINOBENZOIC ACID. AMIDES ARE METABOLISED IN THE LIVER.
TRUE ALLERGY IS FAR COMMONER WITH ESTERS. AMIDE DURATION IS PROLONGED IN HEPATIC DISEASE AND LOW CARDIAC OUTPUT.
Maximum safe doses
LIGNOCAINE 3 MG/KG PLAIN, 7 MG/KG WITH ADRENALINE. BUPIVACAINE 2 MG/KG, ABOUT 3 MG/KG WITH ADRENALINE.
THESE ARE CALCULATED BY WEIGHT BEFORE ANY LARGE-VOLUME BLOCK, AND THE MARGIN IS NARROWER IN NEONATES BECAUSE OF REDUCED PROTEIN BINDING.
Why adrenaline is added
VASOCONSTRICTION SLOWS ABSORPTION, WHICH PROLONGS THE BLOCK AND RAISES THE MAXIMUM SAFE DOSE, AND A TACHYCARDIA AFTER A TEST DOSE MARKS INTRAVASCULAR PLACEMENT.
THREE BENEFITS FROM ONE ADDITIVE, WHICH IS WHY IT IS ROUTINE RATHER THAN OPTIONAL IN LARGE-VOLUME INFILTRATION.
Why the single enantiomers exist
RACEMIC BUPIVACAINE BINDS CARDIAC SODIUM CHANNELS AVIDLY AND DISSOCIATES SLOWLY, SO ITS CARDIAC ARREST IS RESISTANT TO RESUSCITATION.
ROPIVACAINE AND LEVOBUPIVACAINE RETAIN MOST OF THE SENSORY BLOCK WITH A WIDER CARDIAC SAFETY MARGIN.
Spinal: why so little drug
THE DRUG IS PLACED DIRECTLY IN CEREBROSPINAL FLUID BATHING THE NERVE ROOTS, WITH NO DIFFUSION BARRIER. 2-3 ML PRODUCES A DENSE BLOCK IN 5-10 MINUTES.
AN EPIDURAL DOSE MUST DIFFUSE ACROSS THE DURA, SO IT NEEDS 15-20 ML AND 15-20 MINUTES FOR THE SAME DERMATOMES.
Level of insertion
THE CORD ENDS AT L1-L2 IN THE ADULT AND ABOUT L3 IN THE NEONATE, SO THE L3-L4 INTERSPACE IS USED, IDENTIFIED FROM TUFFIER'S LINE.
LAYERS TRAVERSED: SKIN, SUBCUTANEOUS FAT, SUPRASPINOUS AND INTERSPINOUS LIGAMENTS, LIGAMENTUM FLAVUM, EPIDURAL SPACE, DURA, ARACHNOID. ENDPOINT IS FREE FLOW OF CLEAR FLUID.
Baricity
HYPERBARIC SOLUTIONS CONTAIN DEXTROSE AND SINK WITH GRAVITY, SO THE BLOCK FOLLOWS POSITION AND IS PREDICTABLE. ISOBARIC STAYS PUT. HYPOBARIC RISES.
PREDICTABILITY IS WHY HYPERBARIC BUPIVACAINE IS STANDARD. DOSE MATTERS MORE THAN VOLUME OR CONCENTRATION FOR THE HEIGHT ACHIEVED.
Block heights required
T10 FOR HIP SURGERY AND TRANSURETHRAL RESECTION. T6-T8 FOR LOWER ABDOMINAL SURGERY. T4, THE NIPPLE LINE, FOR CAESAREAN SECTION.
CAESAREAN SECTION NEEDS T4 BECAUSE PERITONEAL TRACTION IS OTHERWISE FELT. AUTONOMIC BLOCK IS ABOUT TWO SEGMENTS HIGHER, MOTOR ABOUT TWO LOWER.
The two cardiovascular effects
VASODILATATION BELOW THE BLOCK CAUSES HYPOTENSION. BLOCK ABOVE T4 REACHES THE CARDIAC ACCELERATOR FIBRES FROM T1-T4 AND CAUSES BRADYCARDIA.
BRADYCARDIA WITH HYPOTENSION AFTER A SPINAL IS THEREFORE A SIGN OF A HIGH BLOCK, NOT AN INCIDENTAL FINDING.
Vasopressor choice in obstetrics
PHENYLEPHRINE IS PREFERRED, WITH FLUID CO-LOADING AND LEFT UTERINE DISPLACEMENT.
EPHEDRINE CROSSES THE PLACENTA AND STIMULATES FETAL METABOLISM, PRODUCING FETAL ACIDOSIS THAT PHENYLEPHRINE AVOIDS.
The epidural test dose
A SMALL DOSE OF LOCAL ANAESTHETIC WITH ADRENALINE DETECTS BOTH MISPLACEMENTS: A RAPID DENSE BLOCK MEANS SUBARACHNOID, A TACHYCARDIA MEANS INTRAVASCULAR.
IT IS GIVEN BECAUSE THE EPIDURAL SPACE CONTAINS A RICH VENOUS PLEXUS AND LIES IMMEDIATELY OUTSIDE THE DURA.
Total spinal
RISING SENSORY LEVEL, ARM WEAKNESS, DIFFICULTY BREATHING AND SPEAKING, BRADYCARDIA, PROFOUND HYPOTENSION, THEN APNOEA AND UNCONSCIOUSNESS.
MANAGEMENT IS ENTIRELY SUPPORTIVE: AIRWAY AND VENTILATION, FLUIDS AND VASOPRESSORS, ATROPINE, AND SEDATION, SINCE A PARALYSED CONSCIOUS PATIENT IS AWARE.
Post-dural puncture headache
CEREBROSPINAL FLUID LEAKS FASTER THAN IT IS PRODUCED, INTRACRANIAL PRESSURE FALLS AND THE BRAIN SAGS, PRODUCING A POSTURAL HEADACHE 24-48 HOURS LATER.
WORSE SITTING, RELIEVED LYING FLAT, WITH NECK STIFFNESS, PHOTOPHOBIA, TINNITUS AND OCCASIONALLY DIPLOPIA FROM SIXTH NERVE TRACTION.
Needle design and incidence
UNDER 2 PER CENT WITH FINE PENCIL-POINT SPINAL NEEDLES, BUT 30-40 PER CENT AFTER INADVERTENT DURAL PUNCTURE WITH A LARGE-BORE TUOHY NEEDLE.
PENCIL-POINT NEEDLES SPREAD FIBRES AND LEAVE A RAGGED TEAR THAT SEALS. CUTTING NEEDLES LEAVE A CLEAN HOLE THAT STAYS OPEN.
Epidural blood patch
15-20 ML OF THE PATIENT'S OWN BLOOD INJECTED AT OR BELOW THE PUNCTURE LEVEL, WHICH CLOTS TO SEAL THE LEAK AND RAISES EPIDURAL PRESSURE.
SUCCESS AFTER A SINGLE PATCH IS REPORTED FROM ABOUT 65 TO OVER 90 PER CENT, WITH MOST OF THE REMAINDER RESPONDING TO A SECOND.
Anticoagulation intervals
PROPHYLACTIC LMWH 12 HOURS, THERAPEUTIC LMWH 24 HOURS, SUBCUTANEOUS OR INTRAVENOUS HEPARIN 4-6 HOURS, WARFARIN UNTIL INR 1.5 OR LESS, CLOPIDOGREL AND TICAGRELOR 5-7 DAYS, PRASUGREL 7-10 DAYS, DIRECT ORAL ANTICOAGULANTS ABOUT 72 HOURS.
CATHETER REMOVAL COUNTS AS A PUNCTURE AND OBEYS THE SAME INTERVALS. THE ASRA ANTITHROMBOTIC GUIDANCE, FIFTH EDITION 2025, IS THE REFERENCE STANDARD.
Vertebral canal haematoma
BACK PAIN WITH PROGRESSIVE NEUROLOGICAL DEFICIT, REQUIRING URGENT MAGNETIC RESONANCE IMAGING AND DECOMPRESSION IDEALLY WITHIN EIGHT HOURS.
DELAY CONVERTS A RECOVERABLE DEFICIT INTO A PERMANENT ONE. ANY DEFICIT DEEPER OR LONGER THAN THE EXPECTED BLOCK IS IMAGED, NOT WATCHED.
Toxicity sequence
PERIORAL TINGLING AND METALLIC TASTE, THEN TINNITUS AND VISUAL DISTURBANCE, THEN AGITATION AND TWITCHING, THEN CONVULSIONS, THEN COMA. CARDIOVASCULAR COLLAPSE FOLLOWS.
BUPIVACAINE BREAKS THIS ORDER AND CAN CAUSE COLLAPSE WITH LITTLE CENTRAL WARNING, WITH REFRACTORY ARRHYTHMIAS BECAUSE IT DISSOCIATES SLOWLY.
Lipid emulsion regimen
20 PER CENT LIPID EMULSION, BOLUS 1.5 ML/KG OVER 2-3 MINUTES OR 100 ML IF OVER 70 KG, THEN AN INFUSION, REPEATED OR DOUBLED IF INADEQUATE, TO ABOUT 12 ML/KG.
PROPOFOL IS NOT A SUBSTITUTE. REDUCE ADRENALINE DOSES, AVOID VASOPRESSIN, AND CONTINUE RESUSCITATION FAR LONGER THAN USUAL.
Brachial plexus approaches
INTERSCALENE FOR SHOULDER, SUPRACLAVICULAR FOR THE WHOLE ARM, INFRACLAVICULAR FOR ELBOW AND BELOW, AXILLARY FOR FOREARM AND HAND.
INTERSCALENE CAUSES NEAR-UNIVERSAL PHRENIC PALSY, SUPRACLAVICULAR RISKS PNEUMOTHORAX, AND AXILLARY OFTEN SPARES THE MUSCULOCUTANEOUS NERVE.
Bier's block
A TOURNIQUET ISOLATES THE LIMB AND LOCAL ANAESTHETIC INJECTED INTRAVENOUSLY DIFFUSES OUT TO THE NERVES.
THE TOURNIQUET IS THE ENTIRE SAFETY MECHANISM, SO IT IS NOT RELEASED BEFORE 20 MINUTES, AND BUPIVACAINE IS NEVER USED.
Pregnancy changes the dose
ENGORGED EPIDURAL VEINS REDUCE THE SPACE AND PROGESTERONE INCREASES NEURAL SENSITIVITY, SO THE REQUIREMENT FALLS BY ROUGHLY A THIRD.
LEFT UTERINE DISPLACEMENT IS MANDATORY, SINCE AORTOCAVAL COMPRESSION PLUS SYMPATHETIC BLOCKADE PRODUCES SEVERE HYPOTENSION.
⚠️

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
Injecting more local anaesthetic when a block fails in infected tissue
The failure is due to acidosis shifting the drug to its charged form, so more drug does not reach the channel. The tissue is also hyperaemic, so absorption is rapid and the extra dose risks systemic toxicity. Block proximally in healthy tissue instead.
WATCH OUT
Confusing which physicochemical property does what
pKa determines onset, lipid solubility determines potency, and protein binding determines duration. Lignocaine's lower pKa makes it fast; bupivacaine's lipid solubility and protein binding make it potent and long-lasting.
WATCH OUT
Attributing allergy to amide local anaesthetics
True allergy is far commoner with esters, because they are hydrolysed to para-aminobenzoic acid. Reported amide reactions are usually to preservatives, to intravascular injection, or to adrenaline effects rather than immunological.
WATCH OUT
Performing lumbar puncture above L2 in an adult
The cord terminates at L1 to L2, so a higher interspace risks direct cord injury. L3-L4 is used, identified from Tuffier's line, and the level is lower still in neonates where the cord ends at about L3.
WATCH OUT
Treating bradycardia after spinal as unrelated to the block
A block extending above T4 reaches the cardiac accelerator fibres from T1 to T4, abolishing the compensatory tachycardia. Bradycardia with hypotension is therefore a marker of a high block and a warning that it may be still ascending.
WATCH OUT
Tilting a patient head-down to treat hypotension after a hyperbaric spinal
A hyperbaric solution follows gravity, so head-down tilt drives the block higher and worsens the situation. Treat with fluids, vasopressors, oxygen and left uterine displacement in pregnancy, and prepare to support ventilation.
WATCH OUT
Using ephedrine as first-line vasopressor in obstetric spinal hypotension
Ephedrine crosses the placenta and stimulates fetal metabolism, producing fetal acidosis. Phenylephrine restores systemic vascular resistance without that effect and is the preferred agent, with co-loading and uterine displacement.
WATCH OUT
Omitting the epidural test dose
The epidural space contains a rich venous plexus and lies immediately outside the dura, so both intravascular and subarachnoid misplacement are real. A small dose with adrenaline distinguishes both before the full volume is committed.
WATCH OUT
Forgetting sedation during management of a total spinal
The patient is paralysed and being ventilated but may be fully conscious until the block reaches the brainstem. Sedation is part of the management, exactly as it is in prolonged suxamethonium blockade.
WATCH OUT
Diagnosing post-dural puncture headache without checking the postural character
The headache must be worse upright and relieved lying flat, because the mechanism is gravity-dependent brain sag. A non-postural headache, or one with fever, seizures, focal deficit or hypertension, demands exclusion of pre-eclampsia and cerebral venous thrombosis.
WATCH OUT
Offering only conservative treatment for a disabling post-dural puncture headache
Bed rest, hydration and caffeine give symptomatic relief but do not alter the natural history. The definitive treatment is an epidural blood patch, which seals the leak and often relieves symptoms immediately.
WATCH OUT
Applying anticoagulation intervals to insertion but not to catheter removal
Withdrawing a catheter can traumatise an epidural vein exactly as inserting a needle can. Removal obeys the same intervals, and the next anticoagulant dose is delayed for several hours afterwards.
WATCH OUT
Treating aspirin as a contraindication to neuraxial blockade
Aspirin alone, and non-steroidal anti-inflammatory drugs alone, do not contraindicate the block. The genuine hazard is combination therapy, particularly aspirin with a thienopyridine and prophylactic heparin together.
WATCH OUT
Using propofol to treat local anaesthetic systemic toxicity
Its lipid content is far too low to act as a sink and it depresses an already failing cardiovascular system. Control seizures with a benzodiazepine and give 20 per cent lipid emulsion as the specific treatment.
WATCH OUT
Giving standard adrenaline doses during resuscitation from local anaesthetic toxicity
Large adrenaline doses impair the effectiveness of lipid rescue, and vasopressin is avoided. Doses are reduced, and resuscitation continues far longer than usual since bupivacaine dissociates slowly from cardiac sodium channels.
WATCH OUT
Using an interscalene block in a patient with severe respiratory disease
Spread to the phrenic nerve causes ipsilateral hemidiaphragmatic paresis in a very high proportion of cases. In limited respiratory reserve or contralateral phrenic palsy this is not tolerated, and an alternative approach is chosen.
WATCH OUT
Using bupivacaine for intravenous regional anaesthesia
The tourniquet is the only thing containing the drug, and premature or accidental release delivers the whole dose systemically. With bupivacaine that is a cardiotoxic bolus, so it is prohibited and the cuff is not released before 20 minutes.
WATCH OUT
Using adult-equivalent local anaesthetic doses in neonates
Reduced protein binding, low alpha-1 acid glycoprotein and immature hepatic metabolism all raise free drug concentration. Weight-based maxima are calculated with particular care, and dilute solutions are used.

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 "Regional & Spinal Anesthesia"?

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

8 questions~6 min

5-minute revision

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

  • Regional technique is three questions: where, how much, and what if it is misplaced.
  • Local anaesthetics block sodium channels from inside the axon.
  • The drug crosses the membrane uncharged and acts charged.
  • Acidic infected tissue leaves too little uncharged drug, so blocks fail.
  • pKa sets onset, lipid solubility sets potency, protein binding sets duration.
  • Esters are hydrolysed by plasma cholinesterase to para-aminobenzoic acid.
  • True allergy is far commoner with esters than amides.
  • Amides are metabolised hepatically and last longer in liver disease.
  • Lignocaine 3 mg/kg plain, 7 mg/kg with adrenaline.
  • Bupivacaine 2 mg/kg, about 3 mg/kg with adrenaline.
  • Adrenaline prolongs the block, raises the dose limit and marks intravascular injection.
  • Bupivacaine dissociates slowly from cardiac sodium channels.
  • Ropivacaine and levobupivacaine exist to widen the cardiac safety margin.
  • The cord ends at L1-L2 in adults, about L3 in neonates.
  • L3-L4 is used, located from Tuffier's line.
  • The endpoint of a spinal is free flow of clear cerebrospinal fluid.
  • Spinal needs 2-3 mL, epidural 15-20 mL.
  • Hyperbaric solutions sink with gravity and are therefore predictable.
  • T10 for hip, T6-T8 for lower abdomen, T4 for caesarean section.
  • Autonomic block runs about two segments above sensory.
  • Motor block runs about two segments below sensory.
  • Hypotension follows vasodilatation below the block.
  • Bradycardia means the block has passed T4.
  • Phenylephrine is preferred over ephedrine in obstetrics.
  • Left uterine displacement is mandatory in the pregnant patient.
  • The epidural test dose detects both intravascular and subarachnoid placement.
  • The catheter is the whole advantage of the epidural.
  • Combined spinal-epidural gives spinal speed with epidural duration.
  • Total spinal is treated by supporting airway and circulation, plus sedation.
  • Vertebral canal haematoma needs decompression within about eight hours.
  • Epidural abscess presents over days with fever, pain then deficit.
  • Transient neurological symptoms have no objective deficit and resolve.
  • Cauda equina syndrome is a true injury with saddle anaesthesia.
  • Post-dural puncture headache is postural, appearing at 24-48 hours.
  • Incidence is under 2 per cent with pencil-point spinal needles.
  • Incidence is 30-40 per cent after Tuohy needle dural puncture.
  • Epidural blood patch uses 15-20 mL of autologous blood.
  • Prophylactic LMWH requires a 12-hour interval, therapeutic 24 hours.
  • Clopidogrel and ticagrelor need 5-7 days, prasugrel 7-10 days.
  • Direct oral anticoagulants need about 72 hours.
  • Catheter removal obeys the same intervals as insertion.
  • Aspirin alone does not contraindicate neuraxial blockade.
  • Toxicity gives central symptoms before cardiovascular collapse.
  • Bupivacaine can cause collapse without central warning.
  • Lipid emulsion bolus is 1.5 mL/kg of 20 per cent, or 100 mL over 70 kg.
  • Propofol is not a substitute for lipid emulsion.
  • Reduce adrenaline and avoid vasopressin during lipid rescue.
  • Interscalene block causes near-universal phrenic palsy.
  • Supraclavicular block risks pneumothorax.
  • Axillary block often spares the musculocutaneous nerve.
  • Adductor canal block preserves quadriceps strength after knee replacement.
  • Bier's block never uses bupivacaine and never releases the cuff before 20 minutes.
  • Pregnancy reduces local anaesthetic requirement by roughly a third.
  • Caudal block is the commonest paediatric regional technique.
  • Neonates have higher free drug levels from reduced protein binding.

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; regional anaesthesia contributes 6-8 questions per attempt and overlaps with Obstetrics, Orthopedics and Pharmacology

Question styleMarks eachTypical countWhat it tests
Local anaesthetic pharmacology4~1pKa, potency, duration, ester versus amide and maximum safe doses
Spinal anaesthesia4~1Level of insertion, baricity, required block heights and cardiovascular effects
Spinal versus epidural4~1Volume, onset, density, spread and the trade-off in risks
Total spinal4~1Recognising the ascending block and the supportive management sequence
Post-dural puncture headache4~1Mechanism, postural character, needle design and the epidural blood patch
Anticoagulation and neuraxial block4~1The intervals, catheter removal and vertebral canal haematoma
Local anaesthetic toxicity4~1The symptom sequence, bupivacaine's exception and the lipid emulsion regimen
Peripheral nerve blocks4~1Approach selection and the characteristic complication of each

Exam-hall strategy

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

  1. Identify the space first: the stem's complications follow from where the needle stopped.
  2. For a failed block in infected tissue, the answer is always tissue acidosis.
  3. Bradycardia with hypotension after spinal means the block passed T4.
  4. A postural headache 24-48 hours after neuraxial block is a blood patch question.
  5. For anticoagulation stems, check whether catheter removal is what is being asked about.
  6. Metallic taste and tinnitus before convulsion is systemic toxicity, and lipid emulsion is the answer.
  7. Never choose propofol for local anaesthetic toxicity.
  8. With NEET PG's +4/-1 marking, the dose limits, block heights and intervals are high-certainty recall worth banking early.
  9. Under the 5-group, 42-minute time-bound format, clear those factual stems fast and spend the remaining minutes on the mechanism-based questions, 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.

Spinal anaesthesia for caesarean section

Avoiding general anaesthesia in a population with a high difficult airway rate, while the mother remains awake for the birth, is the single largest use of regional technique in Indian practice.

Adductor canal block after knee replacement

Choosing a block that spares quadriceps strength allows the patient to stand and walk on the day of surgery, which is what actually determines length of stay and thromboembolic risk.

Delaying the list by two hours for an enoxaparin interval

An inconvenient delay is what prevents the vertebral canal haematoma that would otherwise leave a patient permanently paraplegic after routine hip surgery.

Keeping lipid emulsion in the block room

Local anaesthetic toxicity is rare enough that it is never expected and fast enough that the antidote must already be in the room, which is why stocking it is a standard rather than a precaution.

Where else this topic is tested

Prepare once, score in every exam that asks it.

FMGE / NExTVery high overlap — spinal versus epidural, post-dural puncture headache and toxicity are examined at identical depth
USMLE Step 2 CKHigh overlap — obstetric anaesthesia, local anaesthetic toxicity and anticoagulation timing are shared, with more emphasis on obstetric decision-making
MD Anaesthesiology and DNB entranceFoundational — assumed working knowledge, with ultrasound anatomy, fascial plane block sonoanatomy and pharmacokinetics of continuous infusion examined far more deeply

Questions aspirants ask

Pulled from the Q&A community and mentor sessions.

Because the two drugs are in different physical situations. Spinal drug is injected into cerebrospinal fluid, a continuous column of liquid within the subarachnoid space, and it distributes through that liquid according to its density relative to the fluid. A hyperbaric solution, made denser by added dextrose, sinks under gravity, so where it ends up depends on the shape of the spinal canal and the position of the patient. In the supine position it pools in the thoracic kyphosis, which is one reason blocks tend to settle around the mid-thoracic level. Because the mechanism is fluid movement under gravity, it is controllable: tilting the patient moves the drug, and the resulting block is a level, with everything below it blocked. Epidural drug is in a potential space filled with fat, veins, lymphatics and connective tissue, not a fluid column. It does not flow freely under gravity. It spreads a limited distance from the injection point through that tissue, upwards and downwards, and reaches the nerve roots by diffusing across the dura. The result is a segmental band centred on the injection level rather than a level with everything below it blocked. This is why an epidural placed at a thoracic level for thoracotomy can leave the legs unaffected, which is a clinical advantage, and why a poorly positioned catheter can produce a patchy or unilateral block.

Because it tells you something about the height of the block that the patient's report of sensation does not. Sympathetic blockade extends roughly two segments above the sensory level, so by the time a patient reports numbness at a given dermatome the autonomic block is already higher. Vasodilatation below the block reduces venous return and systemic vascular resistance, producing hypotension, and that alone would normally drive a reflex tachycardia through the intact cardiac sympathetic supply. The cardiac accelerator fibres leave the cord at T1 to T4. When the block reaches them, that reflex is abolished, and the unopposed vagal supply to the heart produces bradycardia instead. Falling venous return also reduces stretch on right atrial receptors, contributing further. So bradycardia with hypotension after a spinal is not an incidental finding: it is evidence that sympathetic blockade has reached the upper thoracic cord. The clinical importance is that a block at that height may still be ascending, and the next levels are the ones supplying the intercostal muscles and then the phrenic outflow. It changes the response from treating a number to preparing for a total spinal: oxygen, readiness to ventilate, atropine, a vasopressor, and no head-down tilt with a hyperbaric solution.

Because the headache depends entirely on how much cerebrospinal fluid escapes, and that depends on both the size of the hole and how well it seals. A cutting needle such as the Quincke has a bevelled tip that slices through dural fibres, leaving a clean-edged defect whose margins do not appose. Fluid continues to leak through it. A pencil-point needle such as the Whitacre or Sprotte has a closed conical tip with the aperture on the side, so it separates fibres rather than cutting them and produces a ragged defect. The torn edges appose and the local inflammatory response seals it far more effectively. Size compounds the effect. A fine 25 or 27 gauge spinal needle makes a small hole and the incidence is under two per cent. A 16 or 18 gauge Tuohy epidural needle, which is not designed to enter the dura at all, makes a very large hole, and after inadvertent puncture the incidence is thirty to forty per cent, with the headache correspondingly severe and prolonged. Patient factors modify this rather than drive it: young age, female sex, pregnancy, low body mass index and a previous episode all raise the risk. But needle choice is the factor under the anaesthetist's control, which is why fine pencil-point needles became the standard for spinal anaesthesia.

Local anaesthetics are highly lipid soluble, which is what allows them to cross nerve membranes and, unhelpfully, to partition into cardiac tissue where they block sodium channels and impair conduction and contractility. Intravenous lipid emulsion creates a large intravascular lipid phase into which the drug redistributes, pulling it out of the myocardium down a concentration gradient. This is the lipid sink hypothesis, and it is supported by the rapidity of recovery in reported cases. A second mechanism is metabolic: the failing heart under sodium channel blockade is energy-starved, and a large fatty acid load provides substrate for myocardial metabolism, supporting contractility directly. There is probably also an effect on intracellular calcium handling. Propofol is formulated in a lipid emulsion, which is why the substitution is tempting, but the arithmetic defeats it. The lipid content of a therapeutic propofol dose is a small fraction of what is required for the sink effect, and reaching an adequate lipid dose would require a propofol dose that would itself be lethal. Propofol also causes vasodilatation and myocardial depression in a patient whose cardiovascular system is already failing. Benzodiazepines are used for the seizures for the same reason: they control the fits without adding cardiovascular depression, and the definitive treatment remains 20 per cent lipid emulsion.

Because the injury that the intervals prevent is bleeding into the epidural space, and a catheter can cause that bleeding on the way out as easily as a needle can on the way in. The epidural space contains a valveless venous plexus, and the vessels are thin walled and easily torn. A catheter that has been in place for a day or more may lie against or within a vein, and withdrawing it can shear the vessel wall. If the patient is anticoagulated at that moment, the resulting bleeding is not self-limiting. The consequence is severe because of where the bleeding is. The vertebral canal is a rigid bony space with no room to accommodate volume, so a haematoma compresses the cord or cauda equina directly. Presentation is back pain, then progressive motor and sensory deficit, then bladder dysfunction. Recovery depends almost entirely on how quickly decompression happens, with good outcomes concentrated within about eight hours of onset. This is why anticoagulant timing is treated as a continuous responsibility rather than a single pre-procedure check, why the next dose is delayed for hours after removal, and why postoperative neurological observation is mandatory. A block that is denser or lasting longer than it should be is imaged, not watched, because the window is short and closes quietly.
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