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预计震颤器K(+)通道可降低果蝇光感受器中神经信息的代谢成本。

Shaker K(+)-channels are predicted to reduce the metabolic cost of neural information in Drosophila photoreceptors.

作者信息

Niven J E, Vähäsöyrinki M, Juusola M

机构信息

Physiological Laboratory, University of Cambridge, Downing Street, Cambridge CB2 3EG, UK.

出版信息

Proc Biol Sci. 2003 Aug 7;270 Suppl 1(Suppl 1):S58-61. doi: 10.1098/rsbl.2003.0010.

Abstract

Shaker K(+)-channels are one of several voltage-activated K(+)-channels expressed in Drosophila photoreceptors. We have shown recently that Shaker channels act as selective amplifiers, attenuating some signals while boosting others. Loss of these channels reduces the photoreceptor information capacity (bits s(-1)) and induces compensatory changes in photoreceptors enabling them to minimize the impact of this loss upon coding natural-like stimuli. Energy as well as coding is also an important consideration in understanding the role of ion channels in neural processing. Here, we use a simple circuit model that incorporates the major ion channels, pumps and exchangers of the photoreceptors to derive experimentally based estimates of the metabolic cost of neural information in wild-type (WT) and Shaker mutant photoreceptors. We show that in WT photoreceptors, which contain Shaker K(+)-channels, each bit of information costs approximately half the number of ATP molecules than each bit in Shaker photoreceptors, in which lack of the Shaker K(+)-channels is compensated by increased leak conductance. Additionally, using a Hodgkin-Huxley-type model coupled to the circuit model we show that the amount of leak present in both WT and Shaker photoreceptors is optimized to both maximize the available voltage range and minimize the metabolic cost.

摘要

Shaker钾离子通道是果蝇光感受器中表达的几种电压激活钾离子通道之一。我们最近发现,Shaker通道起到选择性放大器的作用,对一些信号进行衰减而对另一些信号进行增强。这些通道的缺失会降低光感受器的信息容量(比特/秒),并在光感受器中引发补偿性变化,使它们能够将这种缺失对编码自然类刺激的影响降至最低。在理解离子通道在神经处理中的作用时,能量以及编码也是重要的考虑因素。在这里,我们使用一个简单的电路模型,该模型纳入了光感受器的主要离子通道、泵和离子交换体,以得出基于实验的野生型(WT)和Shaker突变体光感受器中神经信息代谢成本的估计值。我们表明,在含有Shaker钾离子通道的野生型光感受器中,每比特信息消耗的ATP分子数量大约是Shaker光感受器中每比特的一半,在Shaker光感受器中,Shaker钾离子通道的缺失通过增加的漏电导得到补偿。此外,使用与电路模型耦合的霍奇金-赫胥黎型模型,我们表明野生型和Shaker光感受器中存在的漏电数量都经过了优化,以在最大化可用电压范围的同时最小化代谢成本。

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