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Review key Neurons: Cellular Anatomy, Action Potentials & Synaptic Neurotransmission exam facts and rate your mastery to track revision.
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#1
A neuron is an electrically excitable cell specialized for generating, conducting, and transmitting biological signals across the nervous system.
#2
The human brain contains approximately 86 billion neurons, supported by an equal or greater number of non-neuronal glial cells (neuroglia).
#3
The structural anatomy of a neuron comprises three primary parts: dendrites (signal reception), the soma/cell body (metabolic integration), and the axon (signal transmission).
#4
Nissl granules (or Nissl bodies) located within the neuronal soma are specialized granules of rough endoplasmic reticulum and ribosomes dedicated to protein synthesis.
#5
The axon hillock is the conical junction between the soma and the axon where graded postsynaptic potentials integrate to trigger an action potential.
#6
The resting membrane potential of an unstimulated neuron is approximately -70 millivolts (mV), with the interior of the cell negatively charged relative to the extracellular fluid.
#7
The sodium-potassium pump ( ATPase) consumes ATP to actively transport 3 ions out of the neuron in exchange for 2 ions entering the cell.
#8
An action potential operates on the 'all-or-none' principle: if depolarizing stimuli fail to achieve the threshold potential (around -55 mV), no action potential fires.
#9
Depolarization is driven by the rapid opening of voltage-gated sodium () channels, causing an influx of positively charged sodium ions up to approximately +30 mV.
#10
Repolarization occurs as sodium channels inactivate and voltage-gated potassium () channels open, allowing ions to exit the intracellular space.
#11
The refractory period is a brief interval following an action potential during which the axon membrane cannot generate another impulse, enforcing unidirectional signal propagation.
#12
Myelin is a lipid-rich insulating sheath produced by oligodendrocytes in the Central Nervous System (CNS) and by Schwann cells in the Peripheral Nervous System (PNS).
#13
Nodes of Ranvier are periodic unmyelinated gaps along the axon where high densities of voltage-gated ion channels allow saltatory conduction.
#14
Saltatory conduction enables nerve impulses to jump between Nodes of Ranvier, increasing signal propagation velocity up to 120 metres per second while conserving metabolic energy.
#15
At chemical synapses, action potential arrival depolarizes the presynaptic terminal, triggering the opening of voltage-gated calcium () channels.
#16
Calcium influx drives synaptic vesicle exocytosis, releasing neurotransmitters (such as acetylcholine, dopamine, or GABA) across the 20-nanometre synaptic cleft.
#17
Multiple Sclerosis (MS) is an autoimmune neurodegenerative disorder where the immune system destroys myelin sheaths, impairing action potential conduction.
#18
Spanish neuroanatomist Santiago Ramón y Cajal established the 'Neuron Doctrine' in the late 19th century, proving that neurons are individual discrete cells rather than a continuous web.
Subject Specialist Commentary
Analytical perspective & practical exam advice from the Master10 academic board
Neurons are specialized excitable cells that form the communications network of our nervous system. Each neuron consists of branch-like dendrites that receive incoming signals, a central cell body housing protein-making Nissl granules, and a long axon that transmits electrical pulses. At rest, sodium-potassium pumps maintain an internal negative charge of minus seventy millivolts. When a stimulus crosses the threshold, voltage-gated ion channels open, producing an action potential that travels rapidly down the axon to release chemical neurotransmitters.
General Science sections in SSC CGL, CDS, and UPSC Prelims love testing neuronal physiology. A common trap is the ion stoichiometry of the sodium-potassium ATPase pump; remember the classic mnemonic NOKIA: 3 Na+ Out, 2 K+ In, powered by 1 ATP. Another frequent exam trap is myelin production: oligodendrocytes coat axons in the central nervous system, whereas Schwann cells insulate peripheral nerves. Also keep in mind that action potentials strictly follow an all-or-none rule.
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