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Piezos are pore-forming subunits of mechanically activated channels

机译:压电体被成孔机械活化的通道亚基

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摘要

Mechanotransduction plays a crucial role in physiology. Biological processes including sensing touch and sound waves require yet unidentified cation channels that detect pressure. Mouse piezo1 (mpiezo1) and mpiezo2 induce mechanically activated cationic currents in cells; however, it is unknown if piezos are pore-forming ion channels or modulate ion channels. We show that Drosophila piezo (dpiezo) also induces mechanically activated currents in cells, but through channels with remarkably distinct pore properties including sensitivity to the pore blocker ruthenium red and single channel conductances. mpiezo1 assembles as a ~1.2 million-Dalton homo-oligomer, with no evidence of other proteins in this complex. Finally, purified mpiezo1 reconstituted into asymmetric lipid bilayers and liposomes forms ruthenium red-sensitive ion channels. These data demonstrate that piezos are an evolutionarily conserved ion channel family involved in mechanotransduction.
机译:机械手机在生理学中起着至关重要的作用。包括传感触摸和声波的生物过程需要检测压力的未识别的阳离子通道。小鼠压电1(MPIEZO1)和MPIEZO2在细胞中诱导机械活化的阳离子电流;然而,如果压电是孔形成离子通道或调制离子通道,则尚不清楚。我们表明果蝇压电(DPIEZO)也诱导细胞机械活性电流,但通过具有显着不同的孔隙性能的通道,包括对孔阻滞剂钌的敏感性和单通道导电。 MPIEZO1组装为〜120万达尔顿均多 - 低聚物,没有这种复合物中其他蛋白质的证据。最后,纯化的MPIEZO1重构成不对称脂质双层和脂质体形成钌红色敏感离子通道。这些数据表明,压电是参与机械展现的进化保守的离子通道系列。

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