Q.Explain conduction of nerve impulse along a nerve fibre. OR Draw and explain the Tricarboxylic acid cycle (Kreb's cycle).
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Start your 14-day free trial to unlock the full solution →A nerve impulse travels along a fibre as a self-propagating wave of depolarisation (an action potential), generated by ion movements (Na+ in, K+ out) across the axon membrane, followed by repolarisation to restore the resting state.
This mechanism, central to the Neural Control and Coordination chapter, explains how neurons transmit electrical signals.
1. Resting potential (polarised state): when a nerve fibre is not conducting an impulse, the inside of the axon membrane is negatively charged relative to the outside (typically around -70 mV) — this is called the resting potential, and the membrane is said to be polarised. This difference is maintained by the sodium-potassium pump, which actively pumps 3 Na+ ions out of the cell for every 2 K+ ions pumped in, along with the membrane being more permeable to K+ than Na+ at rest (so K+ leaks out more, adding to the negative interior).
2. Stimulus and depolarisation: when a stimulus is applied to a polarised region of the membrane, the membrane's permeability to Na+ suddenly increases (voltage-gated Na+ channels open), causing a rapid influx of Na+ ions into the axon. This reverses the polarity — the inside becomes positive relative to the outside — a change called depolarisation, which generates the action potential (a sudden spike in membrane potential, roughly to +30 mV to +40 mV) at that point.
3. Propagation of the impulse: this local reversal of charge triggers depolarisation in the immediately adjacent region of the membrane (because the local circuit of ionic current affects neighbouring channels), and this process repeats sequentially along the entire length of the fibre — this is how the electrical impulse "travels" or is conducted along the nerve fibre, moving away from the point of stimulation.
4. Repolarisation: immediately after depolarisation, the Na+ channels close and voltage-gated K+ channels open, allowing K+ ions to rapidly flow out of the axon, restoring the negative internal charge — this is called repolarisation, bringing the membrane back to (or briefly below) its resting potential, after which the Na+/K+ pump restores the original ionic gradients.
5. Saltatory conduction in myelinated fibres: in myelinated nerve fibres, the myelin sheath (an insulating covering) is interrupted at intervals by gaps called the nodes of Ranvier. Since ion exchange can only occur at these nodes, the action potential appears to "jump" from one node to the next, a phenomenon called saltatory conduction, which makes impulse conduction considerably faster than in unmyelinated fibres, where the impulse must travel continuously point by point along the entire membrane.
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