Mechanical sensing protein PIEZO1 controls osteoarthritis via glycolysis mediated mesenchymal stem cells-Th17 cells crosstalk.

IF 8.1 1区 生物学 Q1 CELL BIOLOGY
Yikun Zhou, Mingzhao Li, Shuai Lin, Zilu Zhu, Zimeng Zhuang, Shengjie Cui, Liujing Chen, Ran Zhang, Xuedong Wang, Bo Shen, Chider Chen, Ruili Yang
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Abstract

Aberrant mechanical stimuli can cause tissue attrition and activate mechanosensitive intracellular signaling, impacting the progression of osteoarthritis (OA). However, the precise relationship between mechanical loading and bone metabolism remains unclear. Here, we present evidence that Piezo1 senses the mechanical stimuli to coordinate the crosstalk between mesenchymal stem cells (MSCs) and T helper 17 (Th17) cells, leading to the deterioration of bone and cartilage in osteoarthritis (OA). Mechanical loading impaired the property of MSCs by inhibiting their osteo-chondrogenic differentiation and promoting inflammatory signaling to enhance Th17 cells. Mechanistically, mechanical stimuli activated Piezo1, thereby facilitating Ca2+ influx which upregulated the activity of Hexokinase 2(HK2), the rate-limiting enzyme of glycolysis. The resultant increase in glycolytic activity enhanced communication between MSCs and T cells, thus promoting Th17 cell polarization in a macrophage migration inhibitory factor (MIF) dependent manner. Functionally, Wnt1cre; Piezo1fl/fl mice reduced bone and cartilage erosion in the temporomandibular joint condyle following mechanical loading compared to control groups. Additionally, we observed activated Piezo1 and HK2-mediated glycolysis in patients with temporomandibular joint OA, thereby confirming the clinical relevance of our findings. Overall, our results provide insights into how Piezo1 in MSCs coordinates with mechano-inflammatory signaling to regulate bone metabolism. The schema shows that mechanical sensing protein PIEZO1 in MSCs controls osteoarthritis via glycolysis mediated MSCs and Th17 cells crosstalk in a MIF dependent manner.

机械传感蛋白PIEZO1通过糖酵解介导的间充质干细胞- th17细胞串扰控制骨关节炎。
异常的机械刺激可引起组织磨损并激活机械敏感的细胞内信号,影响骨关节炎(OA)的进展。然而,机械负荷与骨代谢之间的确切关系尚不清楚。在这里,我们提供的证据表明,Piezo1感知机械刺激来协调间充质干细胞(MSCs)和T辅助17 (Th17)细胞之间的串扰,导致骨关节炎(OA)中骨和软骨的恶化。机械负荷通过抑制MSCs的骨软骨分化和促进炎症信号传导来增强Th17细胞,从而损害MSCs的特性。从机制上讲,机械刺激激活Piezo1,从而促进Ca2+内流,从而上调糖酵解限速酶己糖激酶2(HK2)的活性。糖酵解活性的增加增强了MSCs和T细胞之间的通讯,从而以巨噬细胞迁移抑制因子(MIF)依赖的方式促进Th17细胞极化。Wnt1cre功能;与对照组相比,Piezo1fl/fl小鼠在机械负荷后减少了颞下颌关节髁的骨和软骨侵蚀。此外,我们在颞下颌关节OA患者中观察到活化的Piezo1和hk2介导的糖酵解,从而证实了我们研究结果的临床相关性。总的来说,我们的研究结果为MSCs中的Piezo1如何与机械炎症信号协调以调节骨代谢提供了见解。图式显示MSCs中的机械传感蛋白PIEZO1通过糖酵解介导的MSCs和Th17细胞以MIF依赖的方式串扰来控制骨关节炎。
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
Cell Death & Disease
Cell Death & Disease CELL BIOLOGY-
CiteScore
15.10
自引率
2.20%
发文量
935
审稿时长
2 months
期刊介绍: Brought to readers by the editorial team of Cell Death & Differentiation, Cell Death & Disease is an online peer-reviewed journal specializing in translational cell death research. It covers a wide range of topics in experimental and internal medicine, including cancer, immunity, neuroscience, and now cancer metabolism. Cell Death & Disease seeks to encompass the breadth of translational implications of cell death, and topics of particular concentration will include, but are not limited to, the following: Experimental medicine Cancer Immunity Internal medicine Neuroscience Cancer metabolism
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