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PIEZO1 通过激活 Ca/Calpain/YAP 通路介导细胞外基质硬度诱导的肾透明细胞癌肿瘤进展。

PIEZO1 mediates matrix stiffness-induced tumor progression in kidney renal clear cell carcinoma by activating the Ca/Calpain/YAP pathway.

机构信息

Department of Urology, The Central Hospital of Wuhan, Tongji Medical College, Huazhong University of Science and Technology, Wuhan, Hubei 430014, China.

Department of Urology, The Central Hospital of Wuhan, Tongji Medical College, Huazhong University of Science and Technology, Wuhan, Hubei 430014, China.

出版信息

Biochim Biophys Acta Mol Cell Res. 2025 Jan;1872(1):119871. doi: 10.1016/j.bbamcr.2024.119871. Epub 2024 Oct 28.

Abstract

OBJECTIVE

The significance of physical factors in the onset and progression of tumors has been increasingly substantiated by a multitude of studies. The extracellular matrix, a pivotal component of the tumor microenvironment, has been the subject of extensive investigation in connection with the advancement of KIRC (Kidney Renal Clear Cell Carcinoma) in recent years. PIEZO1, a mechanosensitive ion channel, has been recognized as a modulator of diverse physiological processes. Nonetheless, the precise function of PIEZO1 as a transducer of mechanical stimuli in KIRC remains poorly elucidated.

METHODS

A bioinformatics analysis was conducted using data from The Cancer Genome Atlas (TCGA) and the Clinical Proteomic Tumor Analysis Consortium (CPTAC) to explore the correlation between matrix stiffness indicators, such as COL1A1 and LOX mRNA levels, and KIRC prognosis. Expression patterns of mechanosensitive ion channels, particularly PIEZO1, were examined. Collagen-coated polyacrylamide hydrogel models were utilized to simulate varying stiffness environments and study their effects on KIRC cell behavior in vitro. Functional experiments, including PIEZO1 knockdown and overexpression, were performed to investigate the molecular mechanisms underlying matrix stiffness-induced cellular changes. Interventions in the Ca2/Calpain/YAP Pathway were conducted to evaluate their effects on cell growth, EMT, and stemness characteristics.

RESULTS

Our findings indicate a significant correlation between matrix stiffness and the prognosis of KIRC patients. It is observed that higher mechanical stiffness can facilitate the growth and metastasis of KIRC cells. Notably, we have also observed that the deficiency of PIEZO1 hinders the proliferation, EMT, and stemness characteristics of KIRC cells induced by a stiff matrix. Our study suggests that PIEZO1 plays a crucial role in mediating KIRC growth and metastasis through the activation of the Ca/Calpain/YAP Pathway.

CONCLUSION

This study elucidates a novel mechanism through which the activation of PIEZO1 leads to calcium influx, subsequent calpain activation, and YAP nuclear translocation, thereby contributing to the progression of KIRC driven by matrix stiffness.

摘要

目的

大量研究证实,物理因素在肿瘤的发生和发展中具有重要意义。细胞外基质是肿瘤微环境的关键组成部分,近年来,它与 KIRC(肾透明细胞癌)的进展密切相关,成为广泛研究的对象。PIEZO1 是一种机械敏感的离子通道,已被认为是多种生理过程的调节剂。然而,PIEZO1 作为机械刺激在 KIRC 中的转导器的确切功能仍未得到充分阐明。

方法

利用来自癌症基因组图谱(TCGA)和临床蛋白质组肿瘤分析联盟(CPTAC)的数据进行生物信息学分析,探讨基质硬度指标(如 COL1A1 和 LOX mRNA 水平)与 KIRC 预后之间的相关性。检测机械敏感离子通道(特别是 PIEZO1)的表达模式。使用胶原包被的聚丙烯酰胺水凝胶模型模拟不同硬度的环境,并研究其对 KIRC 细胞体外行为的影响。进行 PIEZO1 敲低和过表达的功能实验,以研究基质硬度诱导细胞变化的分子机制。干预 Ca2+/Calpain/YAP 通路,以评估其对细胞生长、EMT 和干性特征的影响。

结果

我们的研究结果表明,基质硬度与 KIRC 患者的预后显著相关。较高的机械硬度可促进 KIRC 细胞的生长和转移。值得注意的是,我们还观察到 PIEZO1 的缺乏可阻碍硬基质诱导的 KIRC 细胞的增殖、EMT 和干性特征。我们的研究表明,PIEZO1 通过激活 Ca/Calpain/YAP 通路在介导 KIRC 生长和转移中发挥关键作用。

结论

本研究阐明了一种新的机制,即 PIEZO1 的激活导致钙内流,随后钙蛋白酶激活和 YAP 核转位,从而促进由基质硬度驱动的 KIRC 进展。

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