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发束连接:遗传学是通向功能的大门。

Hair-Bundle Links: Genetics as the Gateway to Function.

机构信息

Sussex Neuroscience, School of Life Sciences, University of Sussex, Falmer, Brighton BN1 9QG, United Kingdom.

Institut Pasteur, 75724 Paris Cedex 15, France.

出版信息

Cold Spring Harb Perspect Med. 2019 Dec 2;9(12):a033142. doi: 10.1101/cshperspect.a033142.

Abstract

Up to five distinct cell-surface specializations interconnect the stereocilia and the kinocilium of the mature hair bundle in some species: kinocilial links, tip links, top connectors, shaft connectors, and ankle links. In developing hair bundles, transient lateral links are prominent. Mutations in genes encoding proteins associated with these links cause Usher deafness/blindness syndrome or nonsyndromic (isolated) forms of human hereditary deafness, and mice with constitutive or conditional alleles of these genes have provided considerable insight into the molecular composition and function of the different links. We describe the structure of these links and review evidence showing CDH23 and PCDH15 are components of the tip, kinocilial, and transient-lateral links, that stereocilin (STRC) and protein tyrosine phosphatase (PTPRQ) are associated with top and shaft connectors, respectively, and that USH2A and ADGRV1 are associated with the ankle links. Whereas tip links are required for mechanoelectrical transduction, all link proteins play key roles in the normal development and/or the maintenance of hair bundle structure and function. Recent crystallographic and single-particle analyses of PCDH15 and CDH23 provide insight as to how the structure of tip link may contribute to the elastic element predicted to lie in series with the hair cell's mechanoelectrical transducer channel.

摘要

在某些物种中,多达五种不同的细胞表面特化结构将成熟毛束的静纤毛和动纤毛连接起来:动纤毛连接、顶端连接、顶部连接、轴连接和踝连接。在发育中的毛束中,暂时的侧连接很突出。编码与这些连接相关的蛋白的基因突变会导致 Usher 耳聋/失明综合征或非综合征(孤立)形式的人类遗传性耳聋,而这些基因的组成型或条件性等位基因的小鼠为不同连接的分子组成和功能提供了重要的见解。我们描述了这些连接的结构,并回顾了表明 CDH23 和 PCDH15 是顶端、动纤毛和暂时侧连接的组成部分的证据,表明 stereocilin (STRC) 和蛋白酪氨酸磷酸酶 (PTPRQ) 分别与顶部和轴连接相关,而 USH2A 和 ADGRV1 与踝连接相关。虽然顶端连接对于机电转导是必需的,但所有连接蛋白在毛束结构和功能的正常发育和/或维持中都发挥着关键作用。最近对 PCDH15 和 CDH23 的晶体学和单颗粒分析提供了关于顶端连接结构如何有助于预测与毛细胞机电换能器通道串联的弹性元件的见解。

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