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“脂力”门控机械敏感性通道受多不饱和脂肪酸调节。

"Force-from-lipids" gating of mechanosensitive channels modulated by PUFAs.

机构信息

Victor Chang Cardiac Research Institute, Darlinghurst, NSW 2010, Australia.

Institute for Biological Interfaces IBG-2, Karlsruhe Institute of Technology, Karlsruhe, Germany.

出版信息

J Mech Behav Biomed Mater. 2018 Mar;79:158-167. doi: 10.1016/j.jmbbm.2017.12.026. Epub 2017 Dec 28.

Abstract

UNLABELLED

The level of fatty acid saturation in phospholipids is a crucial determinant of the biophysical properties of the lipid bilayer. Integral membrane proteins are sensitive to changes of their bilayer environment such that their activities and localization can be profoundly affected. When incorporated into phospholipids of mammalian cells, poly-unsaturated fatty acids (PUFAs) determine the mechanical properties of the bilayer thereby affecting several membrane-associated functions such as endo- and exo-cytosis and ion channel/membrane receptor signalling cascades. In order to understand how membrane tension is propagated through poly-unsaturated bilayers, we characterized the effect of lipid saturation on liposome reconstituted MscS and MscL, the two bacterial mechanosensitive ion channels that have for many years served as models of ion- channel-mediated mechanotransduction. The combination of NMR and patch clamp experiments in this study demonstrate that bilayer thinning is the main responsible factor for the modulation of the MscL threshold of activation while a change in transbilayer pressure profile is indicated as the main factor behind the observed modulation of the MscS kinetics. Together, our data offer a novel insight into how the structural shape differences between the two types of mechanosensitive channels determine their differential modulation by poly-unsaturated phospholipids and thus lay the foundation for future functional studies of eukaryotic ion channels involved in the physiology of mechanosensory transduction processes in mammalian cells.

SUMMARY

Mechanosensitive channels MscL and MscS are differentially modulated by poly-unsaturated fatty acids in lipid bilayers. MscL becomes sensitized because of increased hydrophobic mismatch while MscS open state is stabilized due to changes in the bilayer lateral pressure profile determined by NMR.

摘要

未加标签

磷脂中脂肪酸饱和度的水平是脂质双层生物物理特性的关键决定因素。整合膜蛋白对其双层环境的变化很敏感,因此其活性和定位可能会受到深远影响。当多不饱和脂肪酸(PUFAs)被整合到哺乳动物细胞的磷脂中时,它们会决定双层的机械特性,从而影响几种与膜相关的功能,如内吞作用和外排作用以及离子通道/膜受体信号级联。为了了解膜张力如何通过多不饱和双层传递,我们研究了脂质饱和度对重新构建的 MscS 和 MscL 脂质体的影响,这两种细菌机械敏感离子通道多年来一直是离子通道介导的机械转导模型。本研究中的 NMR 和膜片钳实验的结合表明,双层变薄是调节 MscL 激活阈值的主要原因,而跨双层压力分布的变化被认为是观察到的 MscS 动力学调节的主要因素。总之,我们的数据提供了一个新的视角,即两种机械敏感通道的结构形状差异如何决定它们对多不饱和磷脂的不同调节,为未来研究参与哺乳动物细胞机械感觉转导过程生理学的真核离子通道的功能奠定了基础。

总结

多不饱和脂肪酸在脂质双层中对机械敏感通道 MscL 和 MscS 进行差异化调节。MscL 由于疏水性不匹配的增加而变得敏感,而 MscS 的开放状态由于 NMR 确定的双层横向压力分布的变化而得到稳定。

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