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皮质张力调节桥粒形态发生。

Cortical tension regulates desmosomal morphogenesis.

作者信息

Moch Marcin, Schieren Jana, Leube Rudolf E

机构信息

Institute of Molecular and Cellular Anatomy, RWTH Aachen University, Aachen, Germany.

出版信息

Front Cell Dev Biol. 2022 Oct 4;10:946190. doi: 10.3389/fcell.2022.946190. eCollection 2022.

Abstract

Mechanical stability is a fundamental and essential property of epithelial cell sheets. It is in large part determined by cell-cell adhesion sites that are tightly integrated by the cortical cytoskeleton. An intimate crosstalk between the adherens junction-associated contractile actomyosin system and the desmosome-anchored keratin intermediate filament system is decisive for dynamic regulation of epithelial mechanics. A major question in the field is whether and in which way mechanical stress affects junctional plasticity. This is especially true for the desmosome-keratin scaffold whose role in force-sensing is virtually unknown. To examine this question, we inactivated the actomyosin system in human keratinocytes (HaCaT) and canine kidney cells (MDCK) and monitored changes in desmosomal protein turnover. Partial inhibition of myosin II by para-nitro-blebbistatin led to a decrease of the cells' elastic modulus and to reduced desmosomal protein turnover in regions where nascent desmosomes are formed and, to a lower degree, in regions where larger, more mature desmosomes are present. Interestingly, desmosomal proteins are affected differently: a significant decrease in turnover was observed for the desmosomal plaque protein desmoplakin I (DspI), which links keratin filaments to the desmosomal core, and the transmembrane cadherin desmoglein 2 (Dsg2). On the other hand, the turnover of another type of desmosomal cadherin, desmocollin 2 (Dsc2), was not significantly altered under the tested conditions. Similarly, the turnover of the adherens junction-associated E-cadherin was not affected by the low doses of para-nitro-blebbistatin. Inhibition of actin polymerization by low dose latrunculin B treatment and of ROCK-driven actomyosin contractility by Y-27632 treatment also induced a significant decrease in desmosomal DspI turnover. Taken together, we conclude that changes in the cortical force balance affect desmosome formation and growth. Furthermore, they differentially modulate desmosomal protein turnover resulting in changes of desmosome composition. We take the observations as evidence for a hitherto unknown desmosomal mechanosensing and mechanoresponse pathway responding to an altered force balance.

摘要

机械稳定性是上皮细胞片层的一项基本且重要的特性。它在很大程度上由通过皮质细胞骨架紧密整合的细胞间粘附位点所决定。粘附连接相关的收缩性肌动球蛋白系统与桥粒锚定的角蛋白中间丝系统之间的密切相互作用对于上皮力学的动态调节起决定性作用。该领域的一个主要问题是机械应力是否以及以何种方式影响连接可塑性。对于桥粒 - 角蛋白支架而言尤其如此,其在力感知中的作用几乎未知。为了研究这个问题,我们使人类角质形成细胞(HaCaT)和犬肾细胞(MDCK)中的肌动球蛋白系统失活,并监测桥粒蛋白周转的变化。对肌球蛋白 II 的部分抑制通过对硝基 blebbistatin 导致细胞弹性模量降低,并导致在新生桥粒形成区域以及程度较低的在存在更大、更成熟桥粒的区域中桥粒蛋白周转减少。有趣的是,桥粒蛋白受到的影响不同:对于将角蛋白丝连接到桥粒核心的桥粒斑蛋白桥粒芯蛋白 I(DspI)以及跨膜钙粘蛋白桥粒芯糖蛋白 2(Dsg2),观察到周转显著降低。另一方面,在测试条件下,另一种桥粒钙粘蛋白桥粒胶蛋白 2(Dsc2)的周转没有显著改变。同样,粘附连接相关的 E - 钙粘蛋白的周转不受低剂量对硝基 blebbistatin 的影响。低剂量拉春库林 B 处理抑制肌动蛋白聚合以及 Y - 27632 处理抑制 ROCK 驱动的肌动球蛋白收缩性也导致桥粒 DspI 周转显著降低。综上所述,我们得出结论,皮质力平衡的变化影响桥粒的形成和生长。此外,它们差异调节桥粒蛋白周转,导致桥粒组成发生变化。我们将这些观察结果视为存在一种迄今未知的桥粒机械传感和机械反应途径以响应改变的力平衡的证据。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b223/9577410/d186c1072ea8/fcell-10-946190-g001.jpg

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