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脂质相互作用和门控滞后现象表明机械敏感通道YnaI具有生理作用。

Lipid interactions and gating hysteresis suggest a physiological role for mechanosensitive channel YnaI.

作者信息

Will Nathan, Hiotis Giorgos, Nakayama Yoshitaka, Angiulli Gabriella, Zhou Zijing, Cox Charles D, Martinac Boris, Walz Thomas

机构信息

Laboratory of Molecular Electron Microscopy, The Rockefeller University, New York, NY, USA.

Evolved by Nature, Needham, MA, USA.

出版信息

Nat Commun. 2025 Aug 12;16(1):7472. doi: 10.1038/s41467-025-62805-8.

Abstract

YnaI is a member of the family of bacterial MscS (mechanosensitive channel of small conductance)-like channels. Channel gating upon hypoosmotic stress and the role of lipids in this process have been extensively studied for MscS, but are less well understood for YnaI, which features two additional transmembrane helices. Here, we combined cryogenic electron microscopy, molecular dynamics simulations and patch-clamp electrophysiology to advance our understanding of YnaI. The two additional helices move the lipid-filled hydrophobic pockets in YnaI further away from the lipid bilayer and change the function of the pocket lipids from being a critical gating element in MscS to being more of a structural element in YnaI. Unlike MscS, YnaI shows pronounced gating hysteresis and remains open to a substantially lower membrane tension than is needed to initially open the channel. Thus, at near-lytic membrane tension, both MscL and YnaI will open, but while MscL has a large pore and must close quickly to minimize loss of essential metabolites, YnaI only conducts ions and can thus remain open for longer to continue to facilitate pressure equilibration across the membrane.

摘要

YnaI是细菌类小电导机械敏感通道(MscS)家族的一员。对于MscS,已经广泛研究了其在低渗胁迫下的通道门控以及脂质在此过程中的作用,但对于具有两个额外跨膜螺旋的YnaI,人们对此了解较少。在这里,我们结合低温电子显微镜、分子动力学模拟和膜片钳电生理学来增进对YnaI的理解。这两个额外的螺旋使YnaI中充满脂质的疏水口袋远离脂质双层,并将口袋脂质的功能从MscS中的关键门控元件转变为YnaI中更多的结构元件。与MscS不同,YnaI表现出明显的门控滞后现象,并且在比最初打开通道所需的膜张力低得多的情况下仍保持开放。因此,在接近裂解的膜张力下,MscL和YnaI都会打开,但MscL有一个大孔,必须迅速关闭以尽量减少必需代谢物的损失,而YnaI只传导离子,因此可以保持开放更长时间,以继续促进跨膜压力平衡。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8643/12344017/200cbaaf9d1b/41467_2025_62805_Fig1_HTML.jpg

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