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1
Initial conditions and the kinetics of the sodium conductance in Myxicola giant axons. I. effects on the time-course of the sodium conductance.黏液虫巨型轴突中钠电导的初始条件及动力学。I. 对钠电导时间进程的影响
J Gen Physiol. 1978 Dec;72(6):863-77. doi: 10.1085/jgp.72.6.863.
2
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3
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8
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2
Insensitivity of activation delays in potassium and sodium channels to heavy water in Myxicola giant axons.黏液虫巨大轴突中钾离子和钠离子通道激活延迟对重水不敏感。
J Physiol. 1983 Apr;337:173-82. doi: 10.1113/jphysiol.1983.sp014618.
3
Sodium and gating current time shifts resulting from changes in initial conditions.由初始条件变化导致的钠电流和门控电流时间偏移。
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4
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6
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7
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9
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10
Gating of sodium and potassium channels.钠通道和钾通道的门控
J Membr Biol. 1985;88(2):97-111. doi: 10.1007/BF01868424.

黏液虫巨型轴突中钠电导的初始条件及动力学。I. 对钠电导时间进程的影响

Initial conditions and the kinetics of the sodium conductance in Myxicola giant axons. I. effects on the time-course of the sodium conductance.

作者信息

Hahin R, Goldman L

出版信息

J Gen Physiol. 1978 Dec;72(6):863-77. doi: 10.1085/jgp.72.6.863.

DOI:10.1085/jgp.72.6.863
PMID:731202
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2228488/
Abstract

The effects of conditioning polarizations, ranging from--150 to 0 mV and of durations from 50 mus to 30 ms, on the time-course of GNa during test steps in potential were studied in Myxicola giant axons. Beyond the effects of conditioning polarizations on the amplitude of GNa, the only effect was to produce a translation of GNa(t) along the time axis without a change in shape. For depolarizing conditioning potentials, Hodgkin-Huxley kinetics predict time shifts about threefold greater than found experimentally, whereas the predictions of the coupled model of Goldman (1975. Biophys. J. 15:119--136) were in approximate agreement with our experiments. The time shifts developed over an exponential time-course as the conditioning pulse duration was increased. The time constant of development of the time shift was considerably faster than, and showed the opposite dependency on potential from, the values predicted by both models. It had a mean Q10 of 1/2.50. This fast activation process cannot account for the observed rise time behavior of GNa, suggesting that there is an additional activation process. All results are consistent with the idea that the gating structure displays more than three states, with state intermediate between rest and conducting.

摘要

在黏液虫巨轴突中研究了条件极化(范围为 -150 至 0 mV,持续时间为 50 μs 至 30 ms)对测试电位步骤期间 GNa 时间进程的影响。除了条件极化对 GNa 幅度的影响外,唯一的影响是使 GNa(t) 沿时间轴平移而形状不变。对于去极化条件电位,霍奇金 - 赫胥黎动力学预测的时间偏移比实验发现的大约大三倍,而戈德曼(1975 年,《生物物理杂志》15:119 - 136)耦合模型的预测与我们的实验大致相符。随着条件脉冲持续时间的增加,时间偏移呈指数时间进程发展。时间偏移发展的时间常数比两个模型预测的值快得多,并且对电位的依赖性相反。其平均 Q10 为 1/2.50。这种快速激活过程无法解释观察到的 GNa 上升时间行为,表明存在额外的激活过程。所有结果都与门控结构显示不止三种状态的观点一致,其中存在介于静息和传导之间的中间状态。