The anchor domain is critical for Piezo1 channel mechanosensitivity.

Jinyuan Vero Li, Charles D Cox, Boris Martinac
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Abstract

The mechanosensitive channel Piezo1 is a crucial membrane mechanosensor ubiquitously expressed in mammalian cell types. Critical to its function in mechanosensory transduction is its ability to change conformation in response to applied mechanical force. Here, we interrogate the role of the anchor domain in the mechanically induced gating of human Piezo1 channels. Using the insertion of glycine residues at each corner of the triangular-shaped anchor domain to decouple this domain we provide evidence that the anchor is important in Piezo1 mechano-gating. Insertion of two extra glycine residues between the anchor and the outer helix of human Piezo1 causes abrogated inactivation and reduced mechanosensitivity. Whereas inserting two glycine residues at the apex of the anchor domain at the conserved amino acid P2113 causes the channel to be more sensitive to membrane forces. Correlation of stretch sensitivity with the volume of the neighboring amino acid, natively a phenylalanine (F2114), suggests this is caused by removal of steric hindrance on the inner pore-lining helix. Smaller volume amino acids at this residue increase sensitivity whereas larger volume reduces mechanosensitivity. The combined data show that the anchor domain is a critical region for Piezo1-mediated force transduction.

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锚域对于Piezo1通道的机械敏感性至关重要。
机械敏感通道 Piezo1 是哺乳动物细胞中普遍表达的一种重要膜机械传感器。其机械感觉传导功能的关键在于它能在外加机械力作用下改变构象。在这里,我们研究了锚结构域在人类 Piezo1 通道的机械诱导门控中的作用。通过在三角形锚结构域的每个角插入甘氨酸残基来解除该结构域的耦合,我们提供了锚结构域在 Piezo1 机械门控中的重要作用的证据。在人 Piezo1 的锚和外螺旋之间插入两个额外的甘氨酸残基会导致失活和机械敏感性降低。而在锚域顶点的保守氨基酸 P2113 上插入两个甘氨酸残基则会使通道对膜力更加敏感。拉伸敏感性与邻近氨基酸(原为苯丙氨酸(F2114))体积的相关性表明,这是由于消除了内孔衬里螺旋上的立体阻碍造成的。该残基上体积较小的氨基酸会提高灵敏度,而体积较大的氨基酸则会降低机械灵敏度。综合数据表明,锚结构域是 Piezo1 介导力传导的关键区域。
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