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海马体中由类轴突I(A)型钾离子电导控制的动作电位传播。

Action-potential propagation gated by an axonal I(A)-like K+ conductance in hippocampus.

作者信息

Debanne D, Guérineau N C, Gähwiler B H, Thompson S M

机构信息

Brain Research Institute, Zurich, Switzerland. Brain Research Institute, Zurich, Switzerland.

出版信息

Nature. 1997 Sep 18;389(6648):286-9. doi: 10.1038/38502.

Abstract

Integration of membrane-potential changes is traditionally reserved for neuronal somatodendritic compartments. Axons are typically considered to transmit reliably the result of this integration, the action potential, to nerve terminals. By recording from pairs of pyramidal cells in hippocampal slice cultures, we show here that the propagation of action potentials to nerve terminals is impaired if presynaptic action potentials are preceded by brief or tonic hyperpolarization. Action-potential propagation fails only when the presynaptic action potential is triggered within the first 15-20ms of a depolarizing step from hyperpolarized potentials; action-potential propagation failures are blocked when presynaptic cells are impaled with electrodes containing 4-aminopyridine, indicating that a fast-inactivating, A-type K+ conductance is involved. Propagation failed between some, but not all, of the postsynaptic cells contacted by a single presynaptic cell, suggesting that the presynaptic action potentials failed at axonal branch points. We conclude that the physiological activation of an I(A)-like potassium conductance can locally block propagation of presynaptic action potentials in axons of the central nervous system. Thus axons do not always behave as simple electrical cables: their capacity to transmit action potentials is determined by a time-dependent integration of recent membrane-potential changes.

摘要

膜电位变化的整合传统上局限于神经元的胞体树突部分。轴突通常被认为是可靠地将这种整合的结果——动作电位——传递到神经末梢。通过对海马切片培养物中的成对锥体细胞进行记录,我们在此表明,如果突触前动作电位之前存在短暂或持续性超极化,动作电位向神经末梢的传播就会受损。只有当突触前动作电位在从超极化电位开始的去极化步骤的前15 - 20毫秒内被触发时,动作电位的传播才会失败;当用含有4 - 氨基吡啶的电极刺入突触前细胞时,动作电位传播失败的情况会被阻断,这表明涉及一种快速失活的A 型钾电导。在单个突触前细胞接触的一些但并非所有突触后细胞之间,传播失败,这表明突触前动作电位在轴突分支点处失败。我们得出结论,类I(A)钾电导的生理激活可以局部阻断中枢神经系统轴突中突触前动作电位的传播。因此,轴突并不总是表现得像简单的电缆:它们传递动作电位的能力由近期膜电位变化的时间依赖性整合所决定。

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