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原钙黏蛋白 15 在听觉和平衡感知中的力学和功能的结构决定因素。

Structural determinants of protocadherin-15 mechanics and function in hearing and balance perception.

机构信息

Department of Chemistry and Biochemistry, The Ohio State University, Columbus, OH 43210.

The Ohio State Biochemistry Program, The Ohio State University, Columbus, OH 43210.

出版信息

Proc Natl Acad Sci U S A. 2020 Oct 6;117(40):24837-24848. doi: 10.1073/pnas.1920444117. Epub 2020 Sep 22.

Abstract

The vertebrate inner ear, responsible for hearing and balance, is able to sense minute mechanical stimuli originating from an extraordinarily broad range of sound frequencies and intensities or from head movements. Integral to these processes is the tip-link protein complex, which conveys force to open the inner-ear transduction channels that mediate sensory perception. Protocadherin-15 and cadherin-23, two atypically large cadherins with 11 and 27 extracellular cadherin (EC) repeats, are involved in deafness and balance disorders and assemble as parallel homodimers that interact to form the tip link. Here we report the X-ray crystal structure of a protocadherin-15 + cadherin-23 heterotetrameric complex at 2.9-Å resolution, depicting a parallel homodimer of protocadherin-15 EC1-3 molecules forming an antiparallel complex with two cadherin-23 EC1-2 molecules. In addition, we report structures for 10 protocadherin-15 fragments used to build complete high-resolution models of the monomeric protocadherin-15 ectodomain. Molecular dynamics simulations and validated crystal contacts are used to propose models for the complete extracellular protocadherin-15 parallel homodimer and the tip-link bond. Steered molecular dynamics simulations of these models suggest conditions in which a structurally diverse and multimodal protocadherin-15 ectodomain can act as a stiff or soft gating spring. These results reveal the structural determinants of tip-link-mediated inner-ear sensory perception and elucidate protocadherin-15's structural and adhesive properties relevant in disease.

摘要

脊椎动物内耳负责听觉和平衡,能够感知源自极其广泛的声音频率和强度或头部运动的微小机械刺激。这些过程的组成部分是尖端连接蛋白复合物,它传递力以打开介导感觉感知的内耳转导通道。原钙黏蛋白-15 和钙黏蛋白-23 是两种具有 11 个和 27 个细胞外钙黏蛋白 (EC) 重复的非典型大钙黏蛋白,参与耳聋和平衡障碍,并组装为平行同源二聚体,相互作用形成尖端连接。在这里,我们报告了原钙黏蛋白-15 + 钙黏蛋白-23 异四聚体复合物在 2.9-Å 分辨率下的 X 射线晶体结构,描绘了原钙黏蛋白-15 EC1-3 分子的平行同源二聚体与两个钙黏蛋白-23 EC1-2 分子形成反平行复合物。此外,我们报告了用于构建完整高分辨率单体原钙黏蛋白-15 外域模型的 10 个原钙黏蛋白-15 片段的结构。使用分子动力学模拟和经过验证的晶体接触来提出完整的原钙黏蛋白-15 平行同源二聚体和尖端连接键的模型。对这些模型进行的定向分子动力学模拟表明,在结构多样和多模态的原钙黏蛋白-15 外域可以充当刚性或柔性门控弹簧的条件下。这些结果揭示了尖端连接介导的内耳感觉感知的结构决定因素,并阐明了原钙黏蛋白-15 在疾病中的结构和粘附特性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1b74/7547225/3907364aa679/pnas.1920444117fig01.jpg

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