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整合素连接激酶 1(KANK1)与 talin 相互作用的结构基础,该作用将黏着斑处的肌动蛋白细胞骨架和微管细胞骨架整合在一起。

The structural basis of the talin-KANK1 interaction that coordinates the actin and microtubule cytoskeletons at focal adhesions.

机构信息

Wellcome Centre for Cell-Matrix Research, Faculty of Biology, Medicine and Health, University of Manchester, Dover Street, Manchester M13 9PT, UK.

School of Biosciences, University of Kent, Canterbury CT2 7NJ, UK.

出版信息

Open Biol. 2023 Jun;13(6):230058. doi: 10.1098/rsob.230058. Epub 2023 Jun 21.

DOI:10.1098/rsob.230058
PMID:37339751
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10281804/
Abstract

Adhesion between cells and the extracellular matrix is mediated by heterodimeric () integrin receptors that are intracellularly linked to the contractile actomyosin machinery. One of the proteins that control this link is talin, which organizes cytosolic signalling proteins into discrete complexes on β-integrin tails referred to as focal adhesions (FAs). The adapter protein KANK1 binds to talin in the region of FAs known as the adhesion belt. Here, we adapted a non-covalent crystallographic chaperone to resolve the talin-KANK1 complex. This structure revealed that the talin binding KN region of KANK1 contains a novel motif where a β-hairpin stabilizes the α-helical region, explaining both its specific interaction with talin R7 and high affinity. Single point mutants in KANK1 identified from the structure abolished the interaction and enabled us to examine KANK1 enrichment in the adhesion belt. Strikingly, in cells expressing a constitutively active form of vinculin that keeps the FA structure intact even in the presence of myosin inhibitors, KANK1 localizes throughout the entire FA structure even when actomyosin tension is released. We propose a model whereby actomyosin forces on talin eliminate KANK1 from talin binding in the centre of FAs while retaining it at the adhesion periphery.

摘要

细胞与细胞外基质之间的黏附是由异二聚体()整合素受体介导的,这些受体与收缩性肌动球蛋白机械结构在细胞内相连。控制这种连接的蛋白质之一是桩蛋白,它将细胞质信号蛋白组织成β整合素尾部上称为黏附斑(FAs)的离散复合物。衔接蛋白 KANK1 在 FA 区域与桩蛋白结合。在这里,我们采用了一种非共价晶体结构伴侣来解析桩蛋白-KANK1 复合物。该结构揭示了 KANK1 的 talin 结合 KN 区域包含一个新的基序,其中β发夹稳定α螺旋区域,这解释了其与 talin R7 的特异性相互作用及其高亲和力。从结构中鉴定出的 KANK1 单点突变破坏了相互作用,并使我们能够检查黏附带中 KANK1 的富集。引人注目的是,在表达一种组成型激活形式的 vinculin 的细胞中,vinculin 即使在肌球蛋白抑制剂存在的情况下也能保持 FA 结构的完整性,KANK1 定位在整个 FA 结构中,即使肌动球蛋白张力被释放。我们提出了一个模型,即肌动球蛋白对桩蛋白的作用力将 KANK1 从 FAs 中心的桩蛋白结合中消除,同时在黏附边缘保留它。

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