Activation of presynaptic receptors for a variety of neurotransmitters and neuromodulators inhibits transmitter release at many synapses. Such presynaptic inhibition might serve as a means of adjusting synaptic strength or preventing excessive transmitter release, or both. Previous evidence showed that presynaptic modulators inhibit Ca2+ channels and activate K+ channels at neuronal somata. These modulators also inhibit spontaneous transmitter release by mechanisms downstream of Ca2+ entry. The relative contribution of the above mechanisms to the inhibition of elicited release has been debated for a long time. Recent evidence at synapses where the relationship between transmitter release and presynaptic Ca2+ influx has been well characteriz...
Ca2+ influx through voltage-gated Ca2+ channels and the resulting elevation of intracellular Ca2+ co...
Voltage-gated calcium (Ca2+) channels initiate release of neurotransmitters at synapses, and regulat...
SummaryActivation of presynaptic ion channels alters the membrane potential of nerve terminals, lead...
Activation of presynaptic receptors for a variety of neurotransmitters and neuromodulators inhibits ...
AbstractPresynaptic receptors play an important role — typically inhibitory — in modulating the stre...
AbstractAction potentials are usually considered as the smallest unit of neuronal information convey...
Abstract: Several lines of evidence suggest that the modulation of presynaptic GABA release is media...
Action potentials are usually considered as the smallest unit of neuronal information conveyed by pr...
Presynaptic Ca2+ entry occurs through voltage-gated Ca2+ (CaV) channels which are activated by membr...
AbstractThe manner in which presynaptic Ca2+ influx controls the release of neurotransmitter was inv...
Fast synaptic inhibition in the mammalian brain is mediated principally by GABAA receptors, a large ...
Transmitter release at synapses is driven by elevated intracellular Ca2+ concentration ([Ca2+](i)) n...
SummaryIn order to release neurotransmitter synchronously in response to a presynaptic action potent...
inhibits many excitatory synapses in the mammalian brain. How-ever, the extent to which different me...
The release of neurotransmitters at classical chemical synapses occurs via Ca2+ influx through volta...
Ca2+ influx through voltage-gated Ca2+ channels and the resulting elevation of intracellular Ca2+ co...
Voltage-gated calcium (Ca2+) channels initiate release of neurotransmitters at synapses, and regulat...
SummaryActivation of presynaptic ion channels alters the membrane potential of nerve terminals, lead...
Activation of presynaptic receptors for a variety of neurotransmitters and neuromodulators inhibits ...
AbstractPresynaptic receptors play an important role — typically inhibitory — in modulating the stre...
AbstractAction potentials are usually considered as the smallest unit of neuronal information convey...
Abstract: Several lines of evidence suggest that the modulation of presynaptic GABA release is media...
Action potentials are usually considered as the smallest unit of neuronal information conveyed by pr...
Presynaptic Ca2+ entry occurs through voltage-gated Ca2+ (CaV) channels which are activated by membr...
AbstractThe manner in which presynaptic Ca2+ influx controls the release of neurotransmitter was inv...
Fast synaptic inhibition in the mammalian brain is mediated principally by GABAA receptors, a large ...
Transmitter release at synapses is driven by elevated intracellular Ca2+ concentration ([Ca2+](i)) n...
SummaryIn order to release neurotransmitter synchronously in response to a presynaptic action potent...
inhibits many excitatory synapses in the mammalian brain. How-ever, the extent to which different me...
The release of neurotransmitters at classical chemical synapses occurs via Ca2+ influx through volta...
Ca2+ influx through voltage-gated Ca2+ channels and the resulting elevation of intracellular Ca2+ co...
Voltage-gated calcium (Ca2+) channels initiate release of neurotransmitters at synapses, and regulat...
SummaryActivation of presynaptic ion channels alters the membrane potential of nerve terminals, lead...