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Ch. 14 The Autonomic Nervous System
Marieb - Human Anatomy & Physiology 11th Edition
Marieb, Hoehn11th EditionHuman Anatomy & PhysiologyISBN: 9780136874034Non è quello che usi tu?Cambia libro di testo
Capitolo 14, Problema 21

Since at any moment a neuron is likely to have thousands of neurons releasing neurotransmitters at its surface, how is neuronal activity (to fire or not to fire) determined?

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1
Understand that a neuron receives inputs from many other neurons through synapses, where neurotransmitters are released and bind to receptors on the neuron's membrane.
Recognize that these inputs can be excitatory or inhibitory, meaning they either increase or decrease the likelihood that the neuron will generate an action potential (fire).
Learn that the neuron integrates all these excitatory and inhibitory postsynaptic potentials (EPSPs and IPSPs) by summing them spatially (across different synapses) and temporally (over time).
Focus on the concept of the axon hillock, the region where the neuron decides whether to fire an action potential based on whether the combined membrane potential reaches a certain threshold.
Conclude that neuronal activity is determined by whether the net effect of all incoming signals depolarizes the membrane potential at the axon hillock enough to reach the threshold for firing an action potential.

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Synaptic Integration

Synaptic integration is the process by which a neuron combines multiple excitatory and inhibitory inputs received from thousands of synapses. The neuron sums these inputs spatially and temporally to determine whether the overall signal reaches the threshold to trigger an action potential.
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Action Potential Threshold

The action potential threshold is the critical level of membrane depolarization that must be reached for a neuron to fire. If the combined synaptic inputs depolarize the membrane beyond this threshold, voltage-gated ion channels open, initiating the action potential.
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Action Potential

Excitatory and Inhibitory Neurotransmitters

Neurotransmitters can be excitatory, increasing the likelihood of firing by depolarizing the neuron, or inhibitory, decreasing it by hyperpolarizing the membrane. The balance between these opposing signals determines the neuron's overall response.
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Neurotransmitter Receptors