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表面电位在快速溶液变化过程中测量脂质双层附近的离子浓度。

Surface potentials measure ion concentrations near lipid bilayers during rapid solution changes.

作者信息

Laver D R, Curtis B A

机构信息

Division of Neuroscience, John Curtin School of Medical Research, Australian National University, Canberra, Australia.

出版信息

Biophys J. 1996 Aug;71(2):722-31. doi: 10.1016/S0006-3495(96)79271-8.

Abstract

We describe a puffing method for changing solutions near one surface of lipid bilayers that allows simultaneous measurement of channel activity and extent of solution change at the bilayer surface. Ion adsorption to the lipid headgroups and screening of the bilayer surface charge by mobile ions provided a convenient probe for the ionic composition of the solution at the bilayer surface. Rapid ionic changes induced a shift in bilayer surface potential that generated a capacitive transient current under voltage-clamp conditions. This depended on the ion species and bilayer composition and was accurately described by the Stern-Gouy-Chapman theory. The time course of solute concentrations during solution changes could also be modeled by an exponential exchange of bath and puffing solutions with time constants ranging from 20 to 110 ms depending on the flow pressure. During changes in [Cs+] and [Ca2+] (applied separately or together) both the mixing model and capacitive currents predicted [Cs+] and [Ca2+] transients consistent with those determined experimentally from: 1) the known Cs(+)-dependent conductance of open ryanodine receptor channels and 2) the Ca(2+)-dependent gating of ryanodine receptor Ca2+ channels from cardiac and skeletal muscle.

摘要

我们描述了一种用于在脂质双层的一个表面附近更换溶液的吹泡方法,该方法能够同时测量通道活性以及双层表面溶液的更换程度。离子吸附到脂质头部基团以及移动离子对双层表面电荷的屏蔽作用,为双层表面溶液的离子组成提供了一种便捷的探针。快速的离子变化会引起双层表面电位的偏移,在电压钳制条件下会产生电容性瞬态电流。这取决于离子种类和双层组成,并且能由斯特恩-古伊-查普曼理论准确描述。溶液更换过程中溶质浓度随时间的变化过程,也可以通过浴液和吹泡溶液的指数交换来建模,其时间常数范围为20至110毫秒,具体取决于流动压力。在[Cs⁺]和[Ca²⁺](单独或一起施加)的变化过程中,混合模型和电容性电流所预测的[Cs⁺]和[Ca²⁺]瞬变,与通过以下方式实验测定的结果一致:1)已知的开放兰尼碱受体通道的Cs⁺依赖性电导,以及2)心肌和骨骼肌中兰尼碱受体Ca²⁺通道的Ca²⁺依赖性门控。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3d2f/1233528/ca0ad978e646/biophysj00046-0187-a.jpg

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