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OmpF通道门控中的亚电导状态。

Subconductance states in OmpF gating.

作者信息

Baslé Arnaud, Iyer Ram, Delcour Anne H

机构信息

Department of Biology and Biochemistry, University of Houston, 369 Science and Research Building 2, Houston, TX 77204-5001, USA.

出版信息

Biochim Biophys Acta. 2004 Jul 1;1664(1):100-7. doi: 10.1016/j.bbamem.2004.04.009.

Abstract

Discrepancies were noted in the published conductance of the Escherichia coli porin OmpF. Results from various papers are hard to compare because of the use of different channel preparations, salt types and concentrations, and electrophysiological techniques (black lipid membrane (BLM) vs. patch clamp). To reconcile these data, we present a side-by-side comparison of OmpF activity studied with the two techniques on the same preparation of pure protein, and in the same low salt concentrations (150 mM KCl). The novel aspect of OmpF porin behavior revealed by this comparison is the ubiquitous existence of states of smaller conductance than the monomeric conductance (subconductance states), regardless of the techniques or experimental conditions used, and the drastic enhancement of subconductance gating by polyamines. Transitions to subconductance states have received little attention in previous publications, in particular when BLM electrophysiology was used. Monomeric closures are rare in recordings at clamped potentials, at least at voltages lower than approximately 100-120 mV. Most closing activity is in the form of subconductance gating, which becomes more dominant in the presence of spermine, with a more frequent and prolonged occupation of these substates. A discussion of the molecular basis for this hallmark behavior of porin is presented.

摘要

已注意到大肠杆菌孔蛋白OmpF已发表的电导率存在差异。由于使用了不同的通道制剂、盐的类型和浓度以及电生理技术(黑脂质膜(BLM)与膜片钳),不同论文的结果很难进行比较。为了协调这些数据,我们对在相同的纯蛋白制剂上、相同的低盐浓度(150 mM KCl)下使用这两种技术研究的OmpF活性进行了并排比较。通过这种比较揭示的OmpF孔蛋白行为的新方面是,无论使用何种技术或实验条件,都普遍存在比单体电导率小的状态(亚电导状态),以及多胺对亚电导门控的显著增强。向亚电导状态的转变在以前的出版物中很少受到关注,特别是在使用BLM电生理学的情况下。在钳制电位下的记录中,单体关闭很少见,至少在低于约100 - 120 mV的电压下是这样。大多数关闭活动是以亚电导门控的形式出现的,在精胺存在的情况下,这种亚电导门控变得更加占主导地位,这些亚状态的占据更加频繁和持久。本文对孔蛋白这种标志性行为的分子基础进行了讨论。

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