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The effect of local bending on gating of MscL using a representative volume element and finite element simulation

机译:局部弯曲对MscL门控的影响(使用有代表性的体积元和有限元模拟)

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Many physiological processes such as cell division, endocytosis and exocytosis cause severe local curvature of the cell membrane. Local curvature has been shown experimentally to modulate numerous mechanosensitive (MS) ion channels. In order to quantify the effects of local curvature we introduced a coarse grain representative volume element for the bacterial mechanosensitive ion channel of large conductance (MscL) using continuum elasticity. Our model is designed to be consistent with the channel conformation in the closed and open states to capture its major continuum rheological behavior in response to the local membrane curvature. Herein we show that change in the local curvature of the lipid bilayer can modulate MscL activity considerably by changing both bilayer thickness and lateral pressure profile. Intriguingly, although bending in any direction results in almost the same free-energy cost, inward (cytoplasmic) bending favors channel opening, whereas outward (periplasmic) bending facilitates closing of the narrowest part of the MscL pore. This quantitative study using MscL as a model channel may have wide reaching consequences for the effect of local curvature on the physiological function of other types of prokaryotic and eukaryotic membrane proteins.
机译:许多生理过程,例如细胞分裂,内吞作用和胞吐作用会导致细胞膜严重的局部弯曲。实验表明,局部曲率可调节许多机械敏感(MS)离子通道。为了量化局部曲率的影响,我们引入了具有连续性弹性的粗粒代表体积元素,用于大电导(MscL)的细菌机械敏感离子通道。我们的模型设计为与闭合和打开状态下的通道构型一致,以响应局部膜曲率捕获其主要的连续流变行为。本文中,我们表明脂质双层的局部曲率的改变可以通过改变双层厚度和侧向压力分布来显着调节MscL活性。有趣的是,尽管在任何方向上弯曲都会导致几乎相同的自由能成本,但向内(胞质)弯曲有利于通道打开,而向外(周质)弯曲则有助于封闭MscL孔的最狭窄部分。使用MscL作为模型通道的这项定量研究可能会对局部曲率对其他类型的原核和真核膜蛋白的生理功能的影响产生广泛的影响。

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