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快速恢复因毛细胞束机械位移而中断的尖端连接。

Fast recovery of disrupted tip links induced by mechanical displacement of hair bundles.

机构信息

HHMI, The Rockefeller University, New York, NY 10065.

Laboratory of Sensory Neuroscience, The Rockefeller University, New York, NY 10065.

出版信息

Proc Natl Acad Sci U S A. 2020 Dec 1;117(48):30722-30727. doi: 10.1073/pnas.2016858117. Epub 2020 Nov 16.

Abstract

Hearing and balance rely on the capacity of mechanically sensitive hair bundles to transduce vibrations into electrical signals that are forwarded to the brain. Hair bundles possess tip links that interconnect the mechanosensitive stereocilia and convey force to the transduction channels. A dimer of dimers, each of these links comprises two molecules of protocadherin 15 (PCDH15) joined to two of cadherin 23 (CDH23). The "handshake" that conjoins the four molecules can be disrupted in vivo by intense stimulation and in vitro by exposure to Ca chelators. Using hair bundles from the rat's cochlea and the bullfrog's sacculus, we observed that extensive recovery of mechanoelectrical transduction, hair bundle stiffness, and spontaneous bundle oscillation can occur within seconds after Ca chelation, especially if hair bundles are deflected toward their short edges. Investigating the phenomenon in a two-compartment ionic environment that mimics natural conditions, we combined iontophoretic application of a Ca chelator to selectively disrupt the tip links of individual frog hair bundles with displacement clamping to control hair bundle motion and measure forces. Our observations suggest that, after the normal Ca concentration has been restored, mechanical stimulation facilitates the reconstitution of functional tip links.

摘要

听力和平衡依赖于机械敏感毛束将振动转化为电信号的能力,这些电信号被传递到大脑。毛束具有尖端连接,将机械敏感的静纤毛相互连接,并将力传递到转导通道。这些连接由二聚体组成,每个连接由两个原钙黏蛋白 15(PCDH15)分子与两个钙黏蛋白 23(CDH23)分子连接而成。在体内,强烈的刺激可以破坏这四个分子的“握手”,在体外,暴露于 Ca 螯合剂也可以破坏这种“握手”。我们使用大鼠耳蜗和牛蛙囊的毛束进行观察,发现 Ca 螯合后几秒钟内就可以发生机械电转导、毛束硬度和自发毛束振荡的广泛恢复,特别是如果毛束向短边偏折的话。在模拟自然条件的两隔间离子环境中研究该现象时,我们将 Ca 螯合剂的离子导入应用于选择性地破坏单个青蛙毛束的尖端连接,并结合位移箝位来控制毛束运动和测量力。我们的观察表明,在正常 Ca 浓度恢复后,机械刺激有助于功能性尖端连接的重建。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ccd6/7720144/d7bcae076d74/pnas.2016858117fig01.jpg

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