Piezo1通道调控骨性关节炎中软骨细胞及骨代谢紊乱的发病机制
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1)甘肃省中医院关节骨三科,兰州 730050;2)甘肃中医药大学中医临床学院,兰州 730050

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甘肃省中医药科研课题(GZKP-2021-13),陇原青年创新创业人才(2023LQTD08),陇原青年英才项目和甘肃省联合科研基金(24JRRA899)资助。


The Pathogenic Mechanism of Piezo1 Channel Regulating Chondrocytes and Bone Metabolism Disorders in Osteoarthritis
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1)Department of Articular Orthopedics, Gansu Provincial Hospital of Traditional Chinese Medicine, Lanzhou 730050, China;2)Clinical School of Traditional Chinese Medicine, Gansu University of Chinese Medicine, Lanzhou 730050, China

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This work was supported by grants from Gansu Provincial Traditional Chinese Medicine Research Project (GZKP-2021-13), Longyuan Youth Innovation and Entrepreneurship Talent Program (2023LQTD08), Longyuan Youth Elite Program, and Gansu Provincial Joint Research Fund (24JRRA899).

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    摘要:

    骨性关节炎(OA)是一种常见的退行性疾病,以关节软骨退变、骨质改变及慢性炎症为特征,严重影响患者生活质量,目前尚无根治方法。机械应力异常是其发病核心因素之一,而 Piezo1作为关键的机械敏感性离子通道,在感知和转导机械刺激中发挥重要作用,且在OA的发生发展中扮演关键角色。本文系统综述 Piezo1在OA中的表达调控机制,探讨其在介导机械应力诱导的软骨细胞凋亡、衰老、炎症反应及骨代谢紊乱等方面的作用,重点分析相关信号通路及下游效应分子。研究表明,OA 患者及动物模型中 Piezo1表达显著上调,机械过载与炎症因子(如IL-1β)可诱导其表达增加,形成“炎症-Piezo1 激活”正反馈循环。Piezo1通过介导Ca2+内流,激活多条信号通路,引发软骨细胞凋亡、衰老,加剧炎症反应,并影响骨代谢与关节结构重塑。同时,结合最新动物模型和临床研究,本文评估了 Piezo1作为潜在治疗靶点的前景,其抑制剂、基因沉默及条件性敲除等干预方式均显示出一定治疗效果。本文旨在为骨性关节炎的机制研究与治疗策略提供理论依据和新的研究思路。

    Abstract:

    Osteoarthritis (OA), a highly prevalent degenerative joint disease worldwide, is defined by articular cartilage degradation, abnormal bone remodeling, and persistent chronic inflammation. It severely compromises patients" quality of life, and currently, there is no radical cure. Abnormal mechanical stress is widely regarded as a core driver of OA pathogenesis, and the exploration of mechanical signal perception and transduction mechanisms has become crucial for deciphering OA"s pathophysiological processes. Piezo1, a key mechanosensitive cation channel belonging to the Piezo protein family, has recently gained significant attention due to its pivotal role in mediating cellular responses to mechanical stimuli in joint tissues. This review systematically examines Piezo1"s expression patterns, regulatory mechanisms, and pathological functions in OA, with a particular focus on its dual roles in modulating chondrocyte homeostasis and bone metabolism disorders, while also delving into the underlying molecular signaling pathways and potential therapeutic implications. Piezo1, consisting of approximately 2 500 amino acids and forming a unique trimeric propeller-like structure, is widely expressed in chondrocytes, osteocytes, mesenchymal stem cells, and synovial cells. It exhibits permeability to cations such as Ca2+, K+, and Na+, and directly responds to membrane tension changes induced by mechanical stimuli like fluid shear stress and mechanical overload. In OA patients and animal models, Piezo1 expression is significantly upregulated, especially in cartilage regions subjected to abnormal mechanical stress (e.g., human temporomandibular joint cartilage). This overexpression is closely associated with aggravated cartilage degeneration, increased chondrocyte apoptosis, accelerated cellular senescence, and intensified inflammatory responses. Mechanical overload and pro-inflammatory cytokines (e.g., IL-1β) are key inducers of Piezo1 upregulation: IL-1β activates the PI3K/AKT/mTOR signaling pathway to enhance Piezo1 expression, forming a pathogenic positive feedback loop that inhibits chondrocyte autophagy, promotes apoptosis, and further accelerates joint degeneration. Mechanistically, Piezo1 mediates OA progression through multiple interconnected pathways. When activated by mechanical stress, Piezo1 triggers excessive Ca2+ influx, leading to endoplasmic reticulum stress (ERS) and mitochondrial dysfunction, which directly induce chondrocyte apoptosis. This process involves the activation of downstream signaling cascades such as cGAS-STING and YAP-MMP13/ADAMTS5. YAP, a transcriptional regulator, upregulates the expression of matrix metalloproteinase 13 (MMP13) and aggrecanase (ADAMTS5), thereby accelerating cartilage matrix degradation. Additionally, Piezo1-driven Ca2+ overload promotes the accumulation of reactive oxygen species (ROS) and upregulates senescence markers (p16 and p21), accelerating chondrocyte senescence via the p38MAPK and NF-κB pathways. Senescent chondrocytes secrete senescence-associated secretory phenotype (SASP) factors (e.g., IL-6, IL-1β), further amplifying joint inflammation. In terms of bone metabolism, Piezo1 maintains joint homeostasis by promoting the differentiation of fibrocartilage stem cells into chondrocytes and balancing bone formation and resorption through regulating the FoxC1/YAP axis and RANKL/OPG ratio. Therapeutically, targeting Piezo1 shows promising potential. Preclinical studies have demonstrated that Piezo1 inhibitors (e.g., GsMTx4) can reduce joint damage and alleviate pain in OA mice. Simultaneously, siRNA-mediated co-silencing of Piezo1 and TRPV4 (another mechanosensitive channel) decreases intracellular Ca2+ concentration, inhibits chondrocyte apoptosis, and promotes cartilage repair. Conditional knockout of Piezo1 using Gdf5-Cre transgenic mice alleviates cartilage degeneration in post-traumatic OA models by downregulating MMP13 and ADAMTS5 expression. Despite existing challenges, such as off-target effects of inhibitors, inefficient local drug delivery, and interindividual genetic variability, strategies like developing selective Piezo1 antagonists, optimizing targeted nanocarriers, and combining Piezo1-targeted therapy with physical therapy provide viable avenues for clinical translation. The authors propose that Piezo1 serves as a critical therapeutic target for OA, and future research should focus on deciphering its context-dependent regulatory networks, developing tissue-specific intervention strategies, and validating their efficacy and safety in clinical trials to address the unmet medical needs of OA patients.

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李岩,刘涛,顾玉彪,田慧卿,张磊,白璧辉,何志军,陈文,李金鹏,李非. Piezo1通道调控骨性关节炎中软骨细胞及骨代谢紊乱的发病机制[J].生物化学与生物物理进展,,():

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  • 收稿日期:2025-07-26
  • 最后修改日期:2025-12-31
  • 录用日期:2025-12-31
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