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首页> 外文期刊>Biochimica et biophysica acta. Biomembranes >Characterizing the mechanosensitive response of Paraburkholderia graminis membranes
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Characterizing the mechanosensitive response of Paraburkholderia graminis membranes

机译:表征Paraburkowneria Graminis膜的机械敏感反应

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摘要

Bacterial mechanosensitive channels gate in response to membrane tension, driven by shifts in environmental osmolarity. The mechanosensitive channels of small conductance (MscS) and large conductance (MscL) from Escherichia coli (Ec) gate in response to mechanical force applied to the membrane. Ec-MscS is the foundational member of the MscS superfamily of ion channels, a diverse family with at least fifteen subfamilies identified by homology to the pore lining helix of Ec-MscS, as well as significant diversity on the N- and C-termini. The MscL family of channels are homologous to Ec-MscL. In a rhizosphere associated bacterium, Paraburkholderia graminis C4D1M, mechanosensitive channels are essential for cell survival during changing osmotic environments such as a rainstorm. Utilizing bioinformatics, we predicted six MscS superfamily members and a single MscL homologue. The MscS superfamily members fall into at least three subfamilies: bacterial cyclic nucleotide gated, multi-TM, and extended N-terminus. Osmotic downshock experiments show that wildtype P. graminis cells contain a survival mechanism that prevents cell lysis in response to hypoosmotic shock. To determine if this rescue is due to mechanosensitive channels, we developed a method to create giant spheroplasts of P. graminis to explore the single channel response to applied mechanical tension. Patch clamp electrophysiology on these spheroplasts shows two unique conductances: MscL-like and MscS-like. These conductances are due to likely three unique proteins. This indicates that channels that gate in response to mechanical tension are present in the membrane. Here, we report the first single channel evidence of mechanosensitive ion channels from P. graminis membranes.
机译:响应于膜张力的细菌机械敏感通道栅极,由环境渗透性的变化驱动。响应于施加到膜的机械力,来自大肠杆菌(EC)栅极的小电导(MSCs)和大电导(MSCl)的机械敏感通道。 EC-MSCS是离子通道的MSCS超家族的基础成员,一个不同的家庭,具有至少十五次亚属的家族,其与EC-MSCs的孔隙衬里螺旋同源,以及N-和C-Termini的显着多样性。 MSCL系列的通道与EC-MSCL同源。在根际相关细菌中,Pulaburkowneria Graminis C4D1M,机械敏感通道对于改变渗透环境期间的细胞存活是必不可少的。利用生物信息学,我们预测了六个MSCS超家族成员和单一MSCL同源物。 MSCS超家族成员落入至少三个亚壳:细菌环状核苷酸门控,多Tm和延伸的N-末端。渗透下轴实验表明,粉丝克酰胺型细胞含有一种存活机制,可防止响应低血脓性休克的细胞裂解。为了确定这种救援是否是由于机械敏感频道,我们开发了一种制造P. Graminis的巨型球体形成的方法,以探索采用应用机械张力的单通道响应。这些纺血管体上的膜片电生理显示出两个独特的电导:MSCl样和MSC。这些电导是由于可能三种独特的蛋白质。这表明膜中响应于机械张力的沟道存在于膜中。在这里,我们报告了来自P. Graminis膜的机械敏感离子通道的第一个通道证据。

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