首页> 美国卫生研究院文献>The Journal of Neuroscience >Neurotransmitter Release Can Be Stabilized by a Mechanism That Prevents Voltage Changes Near the End of Action Potentials from Affecting Calcium Currents
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Neurotransmitter Release Can Be Stabilized by a Mechanism That Prevents Voltage Changes Near the End of Action Potentials from Affecting Calcium Currents

机译:可以通过一种机制来稳定神经递质的释放该机制可以防止作用电位接近终点时的电压变化影响钙电流。

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摘要

At chemical synapses, presynaptic action potentials (APs) activate voltage-gated calcium channels, allowing calcium to enter and trigger neurotransmitter release. The duration, peak amplitude, and shape of the AP falling phase alter calcium entry, which can affect neurotransmitter release significantly. In many neurons, APs do not immediately return to the resting potential, but instead exhibit a period of depolarization or hyperpolarization referred to as an afterpotential. We hypothesized that presynaptic afterpotentials should alter neurotransmitter release by affecting the electrical driving force for calcium entry and calcium channel gating. In support of this, presynaptic calcium entry is affected by afterpotentials after standard instant voltage jumps. Here, we used the mouse calyx of Held synapse, which allows simultaneous presynaptic and postsynaptic patch-clamp recording, to show that the postsynaptic response is affected significantly by presynaptic afterpotentials after voltage jumps. We therefore tested the effects of presynaptic afterpotentials using simultaneous presynaptic and postsynaptic recordings and AP waveforms or real APs. Surprisingly, presynaptic afterpotentials after AP stimuli did not alter calcium channel responses or neurotransmitter release appreciably. We show that the AP repolarization time course causes afterpotential-induced changes in calcium driving force and changes in calcium channel gating to effectively cancel each other out. This mechanism, in which electrical driving force is balanced by channel gating, prevents changes in calcium influx from occurring at the end of the AP and therefore acts to stabilize synaptic transmission. In addition, this mechanism can act to stabilize neurotransmitter release when the presynaptic resting potential changes.>SIGNIFICANCE STATEMENT The shape of presynaptic action potentials (APs), particularly the falling phase, affects calcium entry and small changes in calcium influx can produce large changes in postsynaptic responses. We hypothesized that afterpotentials, which often follow APs, affect calcium entry and neurotransmitter release. We tested this in calyx of Held nerve terminals, which allow simultaneous recording of presynaptic calcium currents and postsynaptic responses. Surprisingly, presynaptic afterpotentials did not alter calcium current or neurotransmitter release. We show that the AP falling phase causes afterpotential-induced changes in electrical driving force and calcium channel gating to cancel each other out. This mechanism regulates calcium entry at the end of APs and therefore stabilizes synaptic transmission. This also stabilizes responses when the presynaptic resting potential changes.
机译:在化学突触中,突触前动作电位(AP)激活电压门控的钙通道,使钙进入并触发神经递质释放。 AP下降阶段的持续时间,峰值幅度和形状会改变钙的进入,从而严重影响神经递质的释放。在许多神经元中,AP不会立即恢复到静息电位,而是表现出一段称为去电位的去极化或超极化时期。我们假设突触前电位可能通过影响钙进入和钙通道门控的电驱动力来改变神经递质的释放。为此,标准瞬时电压跳变后,突触前钙的进入受到后电位的影响。在这里,我们使用了Held突触的小鼠花萼,允许同时进行突触前和突触后膜片钳记录,以显示突触后反应在电压跳跃后受到突触后电位的影响。因此,我们使用突触前和突触后同时录音和AP波形或实际AP测试了突触后电位的影响。令人惊讶的是,AP刺激后的突触前电位并没有明显改变钙通道反应或神经递质的释放。我们表明,AP复极化的时间过程会导致后电位诱导的钙驱动力变化和钙通道门控的变化,从而有效地相互抵消。通过通道选通来平衡电驱动力的这种机制可防止在AP末端发生钙流入的变化,因此可稳定突触传递。此外,这种机制还可以在突触前静息电位发生变化时稳定神经递质的释放。>意义声明。突触前动作电位(AP)的形状(尤其是下降阶段)会影响钙的进入和钙的微小变化。大量涌入可引起突触后反应的巨大变化。我们假设,经常跟随AP的后势会影响钙的进入和神经递质的释放。我们在保留神经末梢的萼片中对此进行了测试,该花萼可以同时记录突触前的钙电流和突触后的反应。出乎意料的是,突触前的后电位不会改变钙电流或神经递质的释放。我们表明,AP下降阶段会导致电驱动力和钙通道门控相互抵消而引起的后势诱导变化。该机制调节了AP末端的钙进入,因此稳定了突触传递。当突触前的静息电位改变时,这也可以稳定反应。

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