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Neurons

Neurons are nerve cells specialised to carry signals. A neuron receives input on its dendrites, adds it up at the axon hillock and, if the input reaches threshold, fires an all-or-nothing electrical impulse — an action potential — along its axon. At most synapses the signal crosses to the next cell as a chemical neurotransmitter. The adult human brain holds about 86 billion neurons and a similar number of non-neuronal cells.

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Signalling: integration, conduction and transmission

Dendrites receive synaptic input, and the axon hillock integrates it. When the summed depolarisation reaches threshold (about −55 mV), an all-or-nothing action potential starts. It travels along the axon and, in myelinated fibres, is regenerated at each node of Ranvier.

  • Chemical synapse: Ca²⁺ enters the terminal and makes vesicles fuse and release neurotransmitter. The transmitter diffuses across the cleft and binds ligand-gated channels, which depolarise or hyperpolarise the postsynaptic cell.
  • Electrical synapse: gap junctions join the two cells and pass current directly. These synapses are fewer, but every nervous system has them.
  • Glia: astrocytes supply nutrients, regulate the extracellular ion and chemical environment and support synapses structurally.
Common misconception: A synapse can be inhibitory as well as excitatory: neurotransmitter binding may hyperpolarise the postsynaptic cell, making it less likely to fire.
Full explanation — the complete reference version every reading depth is based on

What a neuron is

A neuron is a cell built for communication. Like other cells it has a nucleus, mitochondria and the usual organelles, but it also has extensions for sending and receiving signals. Neurons work alongside glial cells, which support them — astrocytes, for example, supply nutrients, control the chemical surroundings of neurons and give structural support to synapses.

  • Dendrites: branching extensions that receive messages from other neurons at synapses.
  • Cell body and axon hillock: the axon hillock integrates the incoming signals.
  • Axon: carries the signal away to the axon terminals.
  • Axon terminals: release chemicals that pass the signal to other neurons, muscles or organs.
  • Myelin: an insulating sheath on some axons that speeds conduction; the gaps in it are the nodes of Ranvier.

The action potential

At rest, the inside of a neuron is about 70 millivolts more negative than the outside (−70 mV, varying with neuron type and species). Excitatory input makes it less negative. If it reaches the threshold of about −55 mV, voltage-gated sodium channels open and positive sodium ions rush in, driving the membrane to about +40 mV. Then sodium channels close, potassium channels open and potassium leaves, returning the membrane to negative. During this refractory period the neuron cannot fire again.

ΔV=Vpeak−Vrest≈(+40 mV)−(−70 mV)=110 mV\begin{aligned} \Delta V &= V_{\text{peak}} - V_{\text{rest}} \\ &\approx (+40\,\text{mV}) - (-70\,\text{mV}) \\ &= 110\,\text{mV} \end{aligned}

Worked example: the swing in membrane potential from rest to the peak of a typical action potential (our arithmetic from the cited values).

Worked example: from rest (−70 mV) the membrane must rise by 15 mV to reach threshold (−55 mV); once it does, it swings all the way to about +40 mV — a total change of about 110 mV. A stronger stimulus does not make a bigger action potential, because firing is all-or-nothing.

Crossing the synapse

When an action potential reaches an axon terminal, calcium ions flow in and make tiny synaptic vesicles release neurotransmitter into the synaptic cleft — the gap between the two cells. The neurotransmitter diffuses across and binds to receptors on the next cell, opening ion channels there. Fewer synapses are electrical: the two cells are joined by gap-junction channels and current passes directly.

Common misconception: A common misconception is that neurons are wired together like electric cables, passing current straight from one to the next. At most synapses the signal crosses a gap as a chemical neurotransmitter; direct electrical synapses exist but are fewer.
Common misconception: It is often said the brain has 100 billion neurons and ten times as many glial cells. Direct counts of adult male brains found about 86 billion neurons and roughly the same number of non-neuronal cells.

Where this connects

Neurons are a specialised kind of cell, and the signals they carry depend on ions — sodium, potassium and calcium — moving across the cell membrane through channel proteins: an electric current carried by ions, driven by a potential difference measured in millivolts. Artificial neural networks in AI were inspired by the brain, but they are engineered systems, not realistic models of real neurons.

How we know

Camillo Golgi and Santiago Ramón y Cajal shared the 1906 Nobel Prize for their work on the structure of the nervous system. In 1952 Alan Hodgkin and Andrew Huxley published a quantitative description of the membrane currents behind nerve conduction and excitation, and in 1963 they shared the Nobel Prize with John Eccles for discoveries about the ionic mechanisms of nerve cell membranes. In 2009 Azevedo and colleagues counted brain cells directly using a method called the isotropic fractionator.

  • Fruit fly: 139,255 neurons in one adult brain, counted neuron by neuron for a 2024 wiring diagram.
  • Mouse: about 75 million neurons (textbook figure).
  • Octopus: about 500 million neurons, roughly 350 million of them in the arms.
  • Adult human (male, average): about 86 billion neurons.

Assumptions and limits

  • −70 mV, −55 mV and +40 mV are representative textbook values; resting potential in particular varies with neuron type and species.
  • '86 billion neurons' is an average for adult male brains, with a spread of about ±8 billion, counted using one marker (NeuN) and one method.
  • Not every synapse excites: at inhibitory synapses the postsynaptic membrane is hyperpolarised, making firing less likely.
  • Neuron counts for other animals come from different methods and cover different parts of the nervous system, so compare them only roughly.

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Content status: published 1 October 2026.

  • Scientific review: this version has not yet been signed off by a scientific reviewer.
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