Wu Jianing, Zhou Xin, Xu Xin, Xie Jing
State Key Laboratory of Oral Diseases, National Clinical Research Center for Oral Diseases, West China Hospital of Stomatology, Sichuan University, Chengdu 610041, China.
State Key Laboratory of Oral Diseases & National Center for Stomatology & National Clinical Research Center for Oral Diseases & Department of Pediatric Dentistry, West China Hospital of Stomatology, Sichuan University, Chengdu 610041, Sichuan, China.
ACS Pharmacol Transl Sci. 2025 May 22;8(6):1473-1497. doi: 10.1021/acsptsci.4c00706. eCollection 2025 Jun 13.
Cartilage-related osteoarthritis (OA) and intervertebral disc degeneration (IVDD) are typical degenerative diseases that cause a heavy socioeconomic burden for lack of disease-modifying treatments. Due to the avascular and hypoxic microenvironment of cartilage, chondrocytes primarily achieve energy supply through cytoplasmic anaerobic glycolysis; thus, mitochondria, energy producers through aerobic phosphorylation, have received little attention until recently. Mitochondria carry out a crucial role in the regulation of cellular bioenergetics, metabolism, and signaling while also serving as a central platform where diverse biological processes converge, thereby contributing significantly to cellular homeostasis and cartilage physiology. Mitochondrial functionality is intertwined with mitochondrial morphology, which is determined by a dynamic balance between mitochondrial fusion and fission. Disruption of the equilibrium leads to mitochondrial dysfunction and the onset of diseases. Although the potential role of mitochondria in the pathogenesis of cartilage-related diseases has been proposed and sporadic studies have begun to focus on the underlying molecular mechanisms of mitochondrial fusion/fission, the importance of the physiological and pathological functions of mitochondrial fusion-fission dynamics in cartilage biological processes is little discussed. This review aims to bridge the gap by characterizing its interplay with mitochondrial quality control, energy metabolism, redox homeostasis regulation, cellular senescence, and apoptosis, which are all closely associated with cartilage physiology and pathology. Moreover, its role in cartilage-related diseases, especially OA and IVDD, is further discussed. This review emphasizes the emerging field of mitochondrial fusion-fission dynamics in skeletal systems and possibly provides new cues for disease control and clinical intervention.
软骨相关骨关节炎(OA)和椎间盘退变(IVDD)是典型的退行性疾病,由于缺乏改善病情的治疗方法,给社会经济带来了沉重负担。由于软骨的无血管和低氧微环境,软骨细胞主要通过细胞质无氧糖酵解来实现能量供应;因此,作为通过有氧磷酸化产生能量的线粒体,直到最近才受到较少关注。线粒体在细胞生物能量学、代谢和信号传导的调节中发挥着关键作用,同时也是各种生物过程汇聚的中心平台,从而对细胞稳态和软骨生理起着重要作用。线粒体功能与线粒体形态相互交织,而线粒体形态由线粒体融合与裂变之间的动态平衡决定。这种平衡的破坏会导致线粒体功能障碍和疾病的发生。尽管已经提出线粒体在软骨相关疾病发病机制中的潜在作用,并且零星的研究也已开始关注线粒体融合/裂变的潜在分子机制,但线粒体融合-裂变动力学在软骨生物学过程中的生理和病理功能的重要性却很少被讨论。本综述旨在通过描述其与线粒体质量控制、能量代谢、氧化还原稳态调节、细胞衰老和细胞凋亡的相互作用来填补这一空白,这些都与软骨生理和病理密切相关。此外,还进一步讨论了其在软骨相关疾病,尤其是OA和IVDD中的作用。本综述强调了骨骼系统中线粒体融合-裂变动力学这一新兴领域,并可能为疾病控制和临床干预提供新的线索。