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The Synapse

The Synapse Objective 8 Explain how a synapse works. In Objectives 4-7, we saw the involvement of voltage-gated sodium and potassium channels in the creation and propagation of the action potential. Now, we turn our focus to a third kind of voltage-gated channel, the voltage-gated calcium (Ca2+) channel. This channel predominates where there are signals being sent from one neuron to a target cell, so we think of them as being associated with the axon terminals. Because there are 10,000 times as many calcium ions outside the cell as inside, the concentration gradient overwhelms any electrical gradient that might exist. If a voltage-gated Ca2+ channel opens, Ca2+ will always rush into the neuron. Voltage-gated Ca2+ channels are found only in the active zone. Active zones are, in turn, found only on the sending side of a synapse, a contact between a nerve cell and a target cell. The side sending the information is called the presynaptic side, and the side receiving the information is called the postsynaptic side. The postsynaptic target cell can be another neuron; skeletal, cardiac, or smooth muscle; or a gland. We’ve already seen skeletal muscle as a target when we studied the neuromuscular junction in Unit 10. When the target is distant from the presynaptic neuron and the chemical signal is carried by the bloodstream, it’s called a hormone, and we’ll study those in Unit 14. The release of a neuron’s chemical signal (neurotransmitter) from the presynaptic terminal is just a special case of a process we described in Unit 4, exocytosis (exo–, “out of”; –cyt–, “cell”; –osis, “process”). Here, we’re moving neurotransmitter out of the cell in response to an intracellular signal. The neurotransmitter is contained within vesicles (Latin: “little bladder”). As you might imagine, to release neurotransmitter on demand, and to receive the signal carried by the neurotransmitter, requires a complicated and exquisite machinery. This diagram shows the parts of a synapse. The presynaptic neuron and postsynaptic neuron are separated by a synaptic cleft. A voltage change causes the opening of voltage-gated Ca2+ channels. This, in turn, leads to the release of neurotransmitter from vesicles. The neurotransmitter diffuses across the synaptic cleft and interacts with ligand-gated ion channels on the postsynaptic membrane. Here are the steps, in order: - the action potential, or even a smaller voltage change called a graded potential, arrives at the axon terminal and opens voltage-gated Ca2+ channels; - Ca2+ enters the presynaptic terminal and, through a complicated process involving dozens of steps, triggers exocytosis; - the vesicles containing neurotransmitter spill their contents into the synaptic cleft, and the neurotransmitter diffuses across the synaptic cleft; - where it encounters transmembrane protein receptors, which transduce the chemical signal into an - electrical signal changing the voltage of the postsynaptic cell or - a biochemical change changing the f
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