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人类PIEZO1离子通道的质子化使失活稳定。

Protonation of the human PIEZO1 ion channel stabilizes inactivation.

作者信息

Bae Chilman, Sachs Frederick, Gottlieb Philip A

机构信息

From the Department of Physiology and Biophysics, State University of New York at Buffalo, Buffalo, New York 14214.

From the Department of Physiology and Biophysics, State University of New York at Buffalo, Buffalo, New York 14214.

出版信息

J Biol Chem. 2015 Feb 20;290(8):5167-5173. doi: 10.1074/jbc.M114.604033. Epub 2015 Jan 5.

Abstract

PIEZO1 is a recently cloned eukaryotic cation-selective channel that opens with mechanical force. We found that extracellular protonation inhibits channel activation by ≈90% by increased occupancy in the closed or the inactivated state. Titration between pH 6.3 and 8.3 exhibited a pK of ≈6.9. The steepness of the titration data suggests positive cooperativity, implying the involvement of at least two protonation sites. Whole-cell recordings yielded results similar to patches, and pH 6.5 reduced whole-cell currents by >80%. The effects were reversible. To assess whether pH acts on the open or the inactivated state, we tested a double-mutant PIEZO1 that does not inactivate. Cell-attached patches and whole-cell currents from this mutant channel were pH-insensitive. Thus, protonation appears to be associated with domain(s) of the channel involved with inactivation. pH also did not affect mutant channels with point mutations at position 2456 that are known to exhibit slow inactivation. To determine whether the physical properties of the membrane are altered by pH and thereby affect channel gating, we measured patch capacitance during mechanical stimuli at pH 6.5 and 7.3. The rate constants for changes in patch capacitance were independent of pH, suggesting that bilayer mechanics are not involved. In summary, low pH stabilizes the inactivated state. This effect may be important when channels are activated under pathological conditions in which the pH is reduced, such as during ischemia.

摘要

PIEZO1是一种最近克隆出的真核阳离子选择性通道,可随机械力打开。我们发现,细胞外质子化通过增加通道在关闭或失活状态下的占有率,使通道激活受到约90%的抑制。在pH 6.3至8.3之间进行滴定,显示出约6.9的pK值。滴定数据的陡峭程度表明存在正协同效应,这意味着至少有两个质子化位点参与其中。全细胞记录得到的结果与膜片钳记录相似,pH 6.5使全细胞电流降低超过80%。这些效应是可逆的。为了评估pH是作用于开放状态还是失活状态,我们测试了一种不会失活的双突变PIEZO1。来自该突变通道的细胞贴附式膜片钳记录和全细胞电流对pH不敏感。因此,质子化似乎与通道中参与失活的结构域相关。pH对在2456位有已知表现出缓慢失活的点突变的突变通道也没有影响。为了确定膜的物理性质是否因pH而改变,进而影响通道门控,我们在pH 6.5和7.3下测量了机械刺激期间的膜片电容。膜片电容变化的速率常数与pH无关,这表明双层膜力学不参与其中。总之,低pH使失活状态稳定。当通道在pH降低的病理条件下(如缺血期间)被激活时,这种效应可能很重要。

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