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嗅觉纤毛中离子浓度稳态的预测分布图。

Predicted profiles of ion concentrations in olfactory cilia in the steady state.

作者信息

Lindemann B

机构信息

Department of Physiology, Universität des Saarlandes, D-66421 Homburg, Germany.

出版信息

Biophys J. 2001 Apr;80(4):1712-21. doi: 10.1016/S0006-3495(01)76142-5.

Abstract

The role of ciliary geometry for transduction events was explored by numerical simulation. The changes in intraciliary ion concentrations, suspected to occur during transduction, could thus be estimated. The case of a single excised cilium, having a uniform distribution of membrane channels, voltage clamped to -80 mV, was especially investigated. The axial profile of membrane voltage was that of a leaky cable. The Ca(2+) concentration profile tended to show a maximum in proximal segments, due to a preponderance of Ca(2+) inflow over Ca(2+) export at those locations. The local increase in Ca(2+) concentration activated Cl(-) channels. The resulting current caused a local drop in Cl(-) concentration, especially at the tip of the cilium and in distal segments, accompanied by a drop in ciliary K(+) concentration. In consequence, the membrane Cl(-) current was low in distal segments but stronger in proximal segments, where resupply was sufficient. The model predicts that the Cl(-) depletion will codetermine the time course of the receptor potential or current and the ciliary stimulus-response curve. In conclusion, when modeling with transduction elements presently known to participate, the ciliary geometry has large effects on ion distributions and transduction currents because ciliary ion transport is limited by axial electrodiffusion.

摘要

通过数值模拟研究了纤毛几何结构在转导事件中的作用。由此可以估计转导过程中纤毛内离子浓度的变化。特别研究了单个切除的纤毛,其膜通道均匀分布,电压钳制在 -80 mV 的情况。膜电压的轴向分布呈漏电电缆状。由于在这些位置 Ca(2+) 流入量超过 Ca(2+) 流出量,Ca(2+) 浓度分布在近端段倾向于显示最大值。Ca(2+) 浓度的局部增加激活了 Cl(-) 通道。由此产生的电流导致 Cl(-) 浓度局部下降,特别是在纤毛尖端和远端段,同时伴随着纤毛 K(+) 浓度下降。因此,膜 Cl(-) 电流在远端段较低,但在近端段较强,因为近端段的补充足够。该模型预测,Cl(-) 耗尽将共同决定感受器电位或电流的时间进程以及纤毛刺激 - 反应曲线。总之,在用目前已知参与的转导元件进行建模时,纤毛几何结构对离子分布和转导电流有很大影响,因为纤毛离子运输受轴向电扩散限制。

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