Piezo1 induces mitochondrial autophagy dysfunction leading to cartilage injury in knee osteoarthritis.

IF 6.4 2区 医学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Likai Yu, Zishan Su, Di Tian, Shangqi Liu, Li Zhang, Zeen Wang, Shaobo Guo, Wenhui Zhu, Peimin Wang, Nongshan Zhang
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Abstract

Background: External mechanical stress plays a pivotal role in the pathogenesis of knee osteoarthritis. Piezo1 can sense mechanical stress changes on the surface of various cell types and convert them into bioelectrical signals to regulate cellular functions. Therefore, our study aimed to investigate the role of Piezo1 in mechanically induced KOA and elucidate its underlying mechanisms.

Methods: In this study, we employed various techniques to assess the effects of mechanical stress on knee joint cartilage in vivo and in vitro experiments. In vivo, we performed Micro-CT scanning, H&E staining, and ELISA analysis on the knee joints to evaluate the degree of cartilage damage and the expression of pro-inflammatory factors. In vitro, we utilized a cell stretcher to apply mechanical stress specifically to chondrocytes. Subsequently, we investigated the expression levels of Piezo1, pro-inflammatory factors, Collagen II, and other relevant markers within the chondrocytes. This approach aimed to shed light on the potential impact of Piezo1 on chondrocytes when subjected to mechanical stress.

Results: Elevated expression of Piezo1 was observed in the cartilage of mice post-treadmill exercise intervention, with noticeable damage to the cartilage tissue and reduced surface smoothness. External mechanical stress significantly lowered the synthesis of the extracellular matrix in chondrocytes, potentially through the inhibition of mitochondrial autophagy levels, leading to increased mitochondrial dysfunction and the induction of pro-apoptotic proteins and pro-inflammatory cytokines.

Conclusions: Mechanical stress induces extracellular matrix degradation and promotes KOA progression through Piezo1-mediated chondrocyte autophagy dysfunction and apoptotic injury.

Piezo1诱导线粒体自噬功能障碍导致膝关节骨性关节炎软骨损伤。
背景:外机械应力在膝关节骨关节炎的发病机制中起关键作用。Piezo1可以感知各种细胞表面的机械应力变化,并将其转化为生物电信号来调节细胞功能。因此,我们的研究旨在探讨Piezo1在机械诱导KOA中的作用,并阐明其潜在的机制。方法:在体内和体外实验中,采用多种技术评估机械应力对膝关节软骨的影响。在体内,我们对膝关节进行Micro-CT扫描、H&E染色和ELISA分析,评估软骨损伤程度和促炎因子的表达。在体外,我们利用细胞拉伸器对软骨细胞施加机械应力。随后,我们研究了软骨细胞中Piezo1、促炎因子、Collagen II和其他相关标志物的表达水平。这种方法旨在阐明Piezo1在受到机械应力时对软骨细胞的潜在影响。结果:在跑步机运动干预后,小鼠软骨组织中Piezo1表达升高,软骨组织损伤明显,表面光滑度降低。外部机械应力可能通过抑制线粒体自噬水平显著降低软骨细胞胞外基质的合成,导致线粒体功能障碍增加,诱导促凋亡蛋白和促炎细胞因子。结论:机械应力诱导细胞外基质降解,并通过piezo1介导的软骨细胞自噬功能障碍和凋亡损伤促进KOA进展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Molecular Medicine
Molecular Medicine 医学-生化与分子生物学
CiteScore
8.60
自引率
0.00%
发文量
137
审稿时长
1 months
期刊介绍: Molecular Medicine is an open access journal that focuses on publishing recent findings related to disease pathogenesis at the molecular or physiological level. These insights can potentially contribute to the development of specific tools for disease diagnosis, treatment, or prevention. The journal considers manuscripts that present material pertinent to the genetic, molecular, or cellular underpinnings of critical physiological or disease processes. Submissions to Molecular Medicine are expected to elucidate the broader implications of the research findings for human disease and medicine in a manner that is accessible to a wide audience.
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