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Sensing and Responding to Membrane Tension: The Bacterial MscL Channel as a Model System

机译:感知和响应膜张力:细菌MscL通道作为模型系统

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摘要

Mechanosensors are important for many life functions, including the senses of touch, balance, and proprioception; cardiovascular regulation; kidney function; and osmoregulation. Many channels from an assortment of families are now candidates for eukaryotic mechanosensors and proprioception, as well as cardiovascular regulation, kidney function, and osmoregulation. Bacteria also possess two families of mechanosensitive channels, termed MscL and MscS, that function as osmotic emergency release valves. Of the two channels, MscL is the most conserved, most streamlined in structure, and largest in conductance at 3.6 nS with a pore diameter in excess of 30 Å; hence, the structural changes required for gating are exaggerated and perhaps more easily defined. Because of these properties, as well as its tractable nature, MscL represents a excellent model for studying how a channel can sense and respond to biophysical changes of a lipid bilayer. Many of the properties of the MscL channel, such as the sensitivity to amphipaths, a helix that runs along the membrane surface and is connected to the pore via a glycine, a twisting and turning of the transmembrane domains upon gating, and the dynamic changes in membrane interactions, may be common to other candidate mechanosensors. Here we review many of these properties and discuss their structural and functional implications.
机译:机械传感器对于许多生活功能都很重要,包括触摸,平衡和本体感觉。心血管调节;肾功能和渗透压。现在,来自各种家庭的许多渠道都可以用作真核机械传感器和本体感受以及心血管调节,肾脏功能和渗透调节的候选者。细菌还具有两个机械敏感通道家族,分别称为MscL和MscS,它们可作为渗透性紧急释放阀。在这两个通道中,MscL是最保守,最精简的结构,在3.6nS时的电导率最大,孔径超过30Å;因此,浇口所需的结构变化被夸大了,也许更容易定义。由于这些特性及其易处理的特性,MscL代表了一个出色的模型,用于研究通道如何感测和响应脂质双层的生物物理变化。 MscL通道的许多特性,例如对两亲性分子的敏感性,沿着膜表面延伸并通过甘氨酸连接到孔的螺旋,门控时跨膜结构域的扭曲和转向,以及动态变化等。膜相互作用可能是其他候选机械传感器所共有的。在这里,我们回顾了许多这些特性,并讨论了它们的结构和功能含义。

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