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Pore conformations and gating mechanism of a Cys-loop receptor

机译:半胱氨酸环受体的孔构象和门控机制

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Neurons regulate the propagation of chemoelectric signals throughout the nervous system by opening and closing ion channels, a process known as gating. Here, histidine-based metal-binding sites were engineered along the intrinsic pore of a chimeric Cys-loop receptor to probe state-dependent Zn~(2+)-channel interactions. Patterns of Zn~(2+) ion binding within the pore reveal that, in the closed state, the five pore-lining segments adopt an oblique orientation relative to the axis of ion conduction and constrict into a physical gate at their intracellular end. The interactions of Zn~(2+) with the open state indicate that the five pore-lining segments should rigidly tilt to enable the movement of their intracellular ends away from the axis of ion conduction, so as to open the constriction (i.e., the gate). Alignment of the functional results with the 3D structure of an acetylcholine receptor allowed us to generate structural models accounting for the closed and open pore conformations and for a gating mechanism of a Cys-loop receptor.
机译:神经元通过打开和关闭离子通道来调节化学电信号在整个神经系统中的传播,这一过程称为门控。在这里,基于组氨酸的金属结合位点沿着嵌合的Cys环受体的内在孔工程,以探测依赖状态的Zn〜(2 +)-通道相互作用。孔中Zn〜(2+)离子结合的模式表明,在闭合状态下,五个孔衬段相对于离子传导轴呈倾斜方向,并在其细胞内端收缩成物理门。 Zn〜(2+)与开放态的相互作用表明,五个孔衬段应刚性倾斜,以使它们的细胞内端移动远离离子传导轴,从而打开收缩区(即门)。功能结果与乙酰胆碱受体的3D结构的比对,使我们能够生成结构模型,说明封闭和开放的孔构象以及Cys环受体的门控机制。

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