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Inherent Dynamics of the Acid-Sensing Ion Channel 1 Correlates with the Gating Mechanism

机译:酸敏感离子通道1的固有动力学与门控机制相关

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The acid-sensing ion channel 1 (ASIC1) is a key receptor for extracellular protons. Although numerous structural and functional studies have been performed on this channel, the structural dynamics underlying the gating mechanism remains unknown. We used normal mode analysis, mutagenesis, and electrophysiological methods to explore the relationship between the inherent dynamics of ASIC1 and its gating mechanism. Here we show that a series of collective motions among the domains and subdomains of ASIC1 correlate with its acid-sensing function. The normal mode analysis result reveals that the intrinsic rotation of the extracellular domain and the collective motions between the thumb and finger induced by proton binding drive the receptor to experience a deformation from the extracellular domain to the transmembrane domain, triggering the channel pore to undergo 'twist-to-open' motions. The movements in the transmembrane domain indicate that the likely position of the channel gate is around Leu440. These motion modes are compatible with a wide body of our complementary mutations and electrophysiological data. This study provides the dynamic fundamentals of ASIC1 gating.
机译:酸敏感离子通道1(ASIC1)是细胞外质子的关键受体。尽管已经对该通道进行了许多结构和功能研究,但仍不清楚门控机制的结构动力学。我们使用正常模式分析,诱变和电生理方法来探讨ASIC1固有动力学与其门控机制之间的关系。在这里,我们显示ASIC1的域和子域之间的一系列集体运动与其酸感应功能相关。正常模式分析结果表明,胞外域的固有旋转以及质子结合引起的拇指和手指之间的集体运动驱使受体经历从胞外域到跨膜域的变形,从而触发通道孔经历“旋转打开动作。跨膜域的运动表明通道门的可能位置在Leu440附近。这些运动模式与我们广泛的互补突变和电生理数据兼容。这项研究提供了ASIC1门控的动态基础。

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