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MscS 样通道 YnaI 的门控机制基于柔性孔螺旋。

The MscS-like channel YnaI has a gating mechanism based on flexible pore helices.

机构信息

Biocenter, Julius-Maximilians-Universität Würzburg, 97080 Würzburg, Germany.

Rudolf-Virchow-Center, Julius-Maximilians-Universität Würzburg, 97080 Würzburg, Germany.

出版信息

Proc Natl Acad Sci U S A. 2020 Nov 17;117(46):28754-28762. doi: 10.1073/pnas.2005641117. Epub 2020 Nov 4.

Abstract

The mechanosensitive channel of small conductance (MscS) is the prototype of an evolutionarily diversified large family that fine-tunes osmoregulation but is likely to fulfill additional functions. has six osmoprotective paralogs with different numbers of transmembrane helices. These helices are important for gating and sensing in MscS but the role of the additional helices in the paralogs is not understood. The medium-sized channel YnaI was extracted and delivered in native nanodiscs in closed-like and open-like conformations using the copolymer diisobutylene/maleic acid (DIBMA) for structural studies. Here we show by electron cryomicroscopy that YnaI has an extended sensor paddle that during gating relocates relative to the pore concomitant with bending of a GGxGG motif in the pore helices. YnaI is the only one of the six paralogs that has this GGxGG motif allowing the sensor paddle to move outward. Access to the pore is through a vestibule on the cytosolic side that is fenestrated by side portals. In YnaI, these portals are obstructed by aromatic side chains but are still fully hydrated and thus support conductance. For comparison with large-sized channels, we determined the structure of YbiO, which showed larger portals and a wider pore with no GGxGG motif. Further in silico comparison of MscS, YnaI, and YbiO highlighted differences in the hydrophobicity and wettability of their pores and vestibule interiors. Thus, MscS-like channels of different sizes have a common core architecture but show different gating mechanisms and fine-tuned conductive properties.

摘要

小电导机械门控通道(MscS)是进化多样化大家族的原型,该家族精细调节渗透调节,但可能具有其他功能。该家族有六个具有不同跨膜螺旋数的渗透保护同源物。这些螺旋对于 MscS 的门控和传感很重要,但在同源物中,额外螺旋的作用尚不清楚。使用二异丁烯/马来酸共聚物(DIBMA)提取并以类似关闭和类似开放的构象在天然纳米盘中递呈中尺度通道 YnaI,用于结构研究。通过电子 cryomicroscopy,我们显示 YnaI 具有扩展的传感器桨叶,在门控过程中,相对于孔,该桨叶相对于孔螺旋中的 GGxGG 基序重新定位。YnaI 是六个同源物中唯一具有这种 GGxGG 基序的,允许传感器桨叶向外移动。通过胞质侧的前庭进入孔,该前庭由侧门孔 fenestrated。在 YnaI 中,这些门孔被芳香侧链阻塞,但仍完全水合,因此支持传导。为了与大通道进行比较,我们确定了 YbiO 的结构,其显示出更大的门孔和没有 GGxGG 基序的更宽孔。对 MscS、YnaI 和 YbiO 的进一步计算机模拟比较突出了它们的孔和前庭内部的疏水性和润湿性的差异。因此,不同大小的 MscS 样通道具有共同的核心结构,但显示出不同的门控机制和微调的传导特性。

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