首页> 外文期刊>The Journal of general physiology >A novel voltage-clamp/dye uptake assay reveals saturable transport of molecules through CALHM1 and connexin channels
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A novel voltage-clamp/dye uptake assay reveals saturable transport of molecules through CALHM1 and connexin channels

机译:一种新型电压 - 夹紧/染料摄取测定揭示了通过Calhm1和Connexin通道的可饱和分子运输

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Gaete et al. have designed a methodology that allows quantitative analysis of the permeation of ions and molecules through connexin and CALHM1 large-pore channels. Both channels display saturable transport of molecules that could be described by Michaelis-Menten kinetics with apparent K _(m) and V _(max). Large-pore channels permeable to small molecules such as ATP, in addition to atomic ions, are emerging as important regulators in health and disease. Nonetheless, their mechanisms of molecular permeation and selectivity remain mostly unexplored. Combining fluorescence microscopy and electrophysiology, we developed a novel technique that allows kinetic analysis of molecular permeation through connexin and CALHM1 channels in Xenopus oocytes rendered translucent. Using this methodology, we found that (1) molecular flux through these channels saturates at low micromolar concentrations, (2) kinetic parameters of molecular transport are sensitive to modulators of channel gating, (3) molecular transport and ionic currents can be differentially affected by mutation and gating, and (4) N-terminal regions of these channels control transport kinetics and permselectivity. Our methodology allows analysis of how human disease–causing mutations affect kinetic properties and permselectivity of molecular signaling and enables the study of molecular mechanisms, including selectivity and saturability, of molecular transport in other large-pore channels.
机译:Gaete等。设计了一种方法,允许通过Connexin和Calhm1大孔通道进行定量分析离子和分子的渗透。这两个通道显示出可饱和的分子传输,所述分子可以通过迈克莱斯 - 麦龄动力学描述,具有表观k _(m)和v _(max)。对于原子离子之外,除原子离子之外的小分子(如ATP)的大孔通道正在作为健康和疾病的重要调节因子。尽管如此,它们的分子渗透和选择性机制仍然是未探索的。结合荧光显微镜和电生理学,我们开发了一种新颖的技术,允许通过Connoxin和Calhm1通道进行分子渗透的动力学分析,其在Xenopus卵母细胞中呈现出半透明。使用这种方法,我们发现(1)通过这些通道的分子通量在低微摩尔浓度下饱和,(2)分子运输的动力学参数对通道门控的调节剂敏感,(3)分子运输和离子电流可以差异影响突变和门控,(4)这些通道的N末端区域控制传输动力学和渗透性。我们的方法允许分析人类疾病的突变如何影响分子信号的动力学性能和偏移能力,并能够研究其他大孔通道中的分子运输的分子机制,包括选择性和饱和性。

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