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Mechanosensitive Channel Gating Transitions Resolved by Functional Changes upon Pore Modification

机译:机械敏感性通道门控转换通过孔隙修饰上的功能变化解决

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摘要

The mechanosensitive channel of large conductance acts as a biological “emergency release valve” that protects bacterial cells from hypoosmotic stress. Although structural and functional studies and molecular dynamic simulations of this channel have led to several models for the structural transitions that occur in the gating process, inconsistencies linger and details are lacking. A previous study, using a method coined as the “in vivo SCAM”, identified several residues in the channel pore that were exposed to the aqueous environment in the closed and opening conformations. Briefly, the sulfhydryl reagent MTSET was allowed to react, in the presence or absence of hypoosmotic shock, with cells expressing mechanosensitive channel of large conductance channels that contained cysteine substitutions; channel dysfunction was assessed solely by cell viability. Here we evaluate the MTSET-induced functional modifications to these mechanosensitive channel activities by measuring single channel recordings. The observed changes in residue availability in different states, as well as channel kinetics and sensitivity, have allowed us to elucidate the microenvironment encountered for a number of pore residues, thus testing many aspects of previous models and giving a higher resolution of the pore domain and the structural transitions it undergoes from the closed to open state.
机译:大电导的机械敏感通道充当生物“紧急释放阀”,可保护细菌细胞免受低渗压力的影响。尽管对该通道的结构和功能研究以及分子动力学模拟已经为门控过程中发生的结构转变建立了多个模型,但仍存在不一致之处,并且缺乏细节。先前的研究,使用一种被称为“体内SCAM”的方法,在通道孔中发现了几个残留物,这些残留物以封闭和开放的构型暴露于水性环境。简而言之,在存在或不存在低渗休克的情况下,使巯基试剂MTSET与表达含有半胱氨酸取代的大电导通道的机械敏感通道的细胞发生反应。通道功能障碍仅通过细胞生存力评估。在这里,我们通过测量单通道记录来评估MTSET诱导的对这些机械敏感通道活性的功能修饰。在不同状态下观察到的残渣可用性变化以及通道动力学和灵敏度,使我们能够阐明许多孔残渣遇到的微环境,从而测试了先前模型的许多方面,并提供了更高的孔域分辨率和从关闭状态到打开状态的结构转换。

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