Adaptive behavior of bacterial mechanosensitive channels is coupled to membrane mechanics.

Vladislav Belyy, Kishore Kamaraju, Bradley Akitake, Andriy Anishkin, Sergei Sukharev
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引用次数: 68

Abstract

Mechanosensitive channel of small conductance (MscS), a tension-driven osmolyte release valve residing in the inner membrane of Escherichia coli, exhibits a complex adaptive behavior, whereas its functional counterpart, mechanosensitive channel of large conductance (MscL), was generally considered nonadaptive. In this study, we show that both channels exhibit similar adaptation in excised patches, a process that is completely separable from inactivation prominent only in MscS. When a membrane patch is held under constant pressure, adaptation of both channels is manifested as a reversible current decline. Their dose-response curves recorded with 1-10-s ramps of pressure are shifted toward higher tension relative to the curves measured with series of pulses, indicating decreased tension sensitivity. Prolonged exposure of excised patches to subthreshold tensions further shifts activation curves for both MscS and MscL toward higher tension with similar magnitude and time course. Whole spheroplast MscS recordings performed with simultaneous imaging reveal activation curves with a midpoint tension of 7.8 mN/m and the slope corresponding to approximately 15-nm(2) in-plane expansion. Inactivation was retained in whole spheroplast mode, but no adaptation was observed. Similarly, whole spheroplast recordings of MscL (V23T mutant) indicated no adaptation, which was present in excised patches. MscS activities tried in spheroplast-attached mode showed no adaptation when the spheroplasts were intact, but permeabilized spheroplasts showed delayed adaptation, suggesting that the presence of membrane breaks or edges causes adaptation. We interpret this in the framework of the mechanics of the bilayer couple linking adaptation of channels in excised patches to the relaxation of the inner leaflet that is not in contact with the glass pipette. Relaxation of one leaflet results in asymmetric redistribution of tension in the bilayer that is less favorable for channel opening.

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细菌机械敏感通道的适应性行为与膜力学相耦合。
小电导机械敏感通道(MscS)是一种存在于大肠杆菌内膜的张力驱动的渗透液释放阀,具有复杂的适应行为,而其功能对应的大电导机械敏感通道(MscL)通常被认为是不适应的。在这项研究中,我们发现这两个通道在切除的斑块中表现出类似的适应性,这一过程与仅在MscS中突出的失活完全分离。当膜贴片处于恒定压力下时,两个通道的自适应表现为可逆的电流下降。相对于用一系列脉冲测量的曲线,用1-10-s的压力斜坡记录的剂量响应曲线向更高的张力偏移,表明张力敏感性降低。将切除斑块长时间暴露于阈下张力下,MscS和MscL的激活曲线进一步向具有相似强度和时间过程的更高张力方向移动。同时成像的整个球质体MscS记录显示,激活曲线的中点张力为7.8 mN/m,斜率约为15 nm(2)面内膨胀。在整个球质体模式下保持失活,但未观察到适应性。同样,MscL (V23T突变体)的整个球质体记录显示没有适应,这在切除的斑块中存在。当球质体完整时,在球质体附着模式下的MscS活性未表现出适应性,而通透性球质体表现出延迟的适应性,这表明膜断裂或边缘的存在导致了适应性。我们在双层偶联机制的框架中解释了这一点,该机制将切除斑块中通道的适应与不与玻璃移液器接触的内部小叶的松弛联系起来。单叶的松弛导致双分子层张力的不对称重新分配,不利于通道打开。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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