Coste Bertrand, Murthy Swetha E, Mathur Jayanti, Schmidt Manuela, Mechioukhi Yasmine, Delmas Patrick, Patapoutian Ardem
1] Aix Marseille Université, CNRS, CRN2M-UMR7286, 13344 Marseille, France [2] Howard Hughes Medical Institute, Molecular and Cellular Neuroscience, The Scripps Research Institute, La Jolla, California 92037, USA.
Howard Hughes Medical Institute, Molecular and Cellular Neuroscience, The Scripps Research Institute, La Jolla, California 92037, USA.
Nat Commun. 2015 May 26;6:7223. doi: 10.1038/ncomms8223.
Piezo1 and Piezo2 encode mechanically activated cation channels that function as mechanotransducers involved in vascular system development and touch sensing, respectively. Structural features of Piezos remain unknown. Mouse Piezo1 is bioinformatically predicted to have 30-40 transmembrane (TM) domains. Here, we find that nine of the putative inter-transmembrane regions are accessible from the extracellular side. We use chimeras between mPiezo1 and dPiezo to show that ion-permeation properties are conferred by C-terminal region. We further identify a glutamate residue within a conserved region adjacent to the last two putative TM domains of the protein, that when mutated, affects unitary conductance and ion selectivity, and modulates pore block. We propose that this amino acid is either in the pore or closely associates with the pore. Our results describe important structural motifs of this channel family and lay the groundwork for a mechanistic understanding of how Piezos are mechanically gated and conduct ions.
Piezo1和Piezo2编码机械激活的阳离子通道,分别作为参与血管系统发育和触觉感知的机械转导器发挥作用。Piezo的结构特征尚不清楚。通过生物信息学预测,小鼠Piezo1具有30 - 40个跨膜(TM)结构域。在这里,我们发现九个假定的跨膜区域可从细胞外侧接近。我们使用mPiezo1和dPiezo之间的嵌合体表明离子渗透特性由C端区域赋予。我们进一步在该蛋白质最后两个假定的TM结构域相邻的保守区域内鉴定出一个谷氨酸残基,该残基发生突变时会影响单通道电导和离子选择性,并调节孔道阻断。我们认为该氨基酸要么在孔道中,要么与孔道紧密相关。我们的结果描述了这个通道家族的重要结构基序,并为从机制上理解Piezo如何进行机械门控和传导离子奠定了基础。