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Voltage-dependent K+ channels improve the energy efficiency of signalling in blowfly photoreceptors

机译:电压依赖性K +通道提高了蝇蝇感光器中信号传导的能量效率

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摘要

Voltage-dependent conductances in many spiking neurons are tuned to reduce action potential energy consumption, so improving the energy efficiency of spike coding. However, the contribution of voltage-dependent conductances to the energy efficiency of analogue coding, by graded potentials in dendrites and non-spiking neurons, remains unclear. We investigate the contribution of voltage-dependent conductances to the energy efficiency of analogue coding by modelling blowfly R1-6 photoreceptor membrane. Two voltage-dependent delayed rectifier K+ conductances (DRs) shape the membrane's voltage response and contribute to light adaptation. They make two types of energy saving. By reducing membrane resistance upon depolarization they convert the cheap, low bandwidth membrane needed in dim light to the expensive high bandwidth membrane needed in bright light. This investment of energy in bandwidth according to functional requirements can halve daily energy consumption. Second, DRs produce negative feedback that reduces membrane impedance and increases bandwidth. This negative feedback allows an active membrane with DRs to consume at least 30% less energy than a passive membrane with the same capacitance and bandwidth. Voltage-dependent conductances in other non-spiking neurons, and in dendrites, might be organized to make similar savings.
机译:调整了许多尖峰神经元中依赖电压的电导,以减少动作电位能量消耗,从而提高了尖峰编码的能量效率。但是,尚不清楚电压依赖性电导对树突状和非尖峰神经元中的分级电势对模拟编码能量效率的贡献。我们通过模拟blow蝇R1-6感光膜来研究电压依赖性电导对模拟编码能量效率的贡献。两个依赖于电压的延迟整流器K + 电导(DRs)决定了膜的电压响应并有助于光适应。它们可以实现两种节能方式。通过降低去极化时的膜电阻,它们可以将暗光所需的廉价,低带宽膜片转换为亮光所需的昂贵的高带宽膜片。根据功能要求对带宽进行的这种能源投资可以使日常能源消耗减少一半。其次,DR产生负反馈,从而降低了膜阻抗并增加了带宽。这种负反馈使具有DR的有源膜比具有相同电容和带宽的无源膜的能耗至少低30%。可以组织其他非尖峰神经元和树突中依赖电压的电导,以实现类似的节省。

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