Wang Shuze, Liu Jialin, Zhou Linxi, Xu Hao, Zhang Dan, Zhang Xing, Wang Qiang, Zhou Qing
Liaoning Provincial Key Laboratory of Oral Diseases, School and Hospital of Stomatology, China Medical University, Shenyang 110001, China.
Department of Orthodontics, Shanghai Ninth People's Hospital, Shanghai Jiao Tong University School of Medicine, Shanghai 200011, China.
Regen Biomater. 2024 Jul 1;11:rbae082. doi: 10.1093/rb/rbae082. eCollection 2024.
In recent years, the regulation of the cell microenvironment has opened up new avenues for bone defect repair. Researchers have developed novel biomaterials to influence the behavior of osteoblasts and immune cells by regulating the microenvironment, aiming to achieve efficient bone repair. Mitochondria, as crucial organelles involved in energy conversion, biosynthesis and signal transduction, play a vital role in maintaining bone integrity. Dysfunction of mitochondria can have detrimental effects on the transformation of the immune microenvironment and the differentiation of stem cells, thereby hindering bone tissue regeneration. Consequently, targeted therapy strategies focusing on mitochondria have emerged. This approach offers a wide range of applications and reliable therapeutic effects, thereby providing a new treatment option for complex and refractory bone defect diseases. In recent studies, more biomaterials have been used to restore mitochondrial function and promote positive cell differentiation. The main directions are mitochondrial energy metabolism, mitochondrial biogenesis and mitochondrial quality control. In this review, we investigated the biomaterials used for mitochondria-targeted treatment of bone defect repair in recent years from the perspective of progress and strategies. We also summarized the micro-molecular mechanisms affected by them. Through discussions on energy metabolism, oxidative stress regulation and autophagy regulation, we emphasized the opportunities and challenges faced by mitochondria-targeted biomaterials, providing vital clues for developing a new generation of bone repair materials.
近年来,细胞微环境的调控为骨缺损修复开辟了新途径。研究人员开发了新型生物材料,通过调节微环境来影响成骨细胞和免疫细胞的行为,旨在实现高效的骨修复。线粒体作为参与能量转换、生物合成和信号转导的关键细胞器,在维持骨完整性方面发挥着至关重要的作用。线粒体功能障碍会对免疫微环境的转变和干细胞的分化产生不利影响,从而阻碍骨组织再生。因此,针对线粒体的靶向治疗策略应运而生。这种方法具有广泛的应用范围和可靠的治疗效果,从而为复杂难治性骨缺损疾病提供了一种新的治疗选择。在最近的研究中,更多的生物材料被用于恢复线粒体功能并促进细胞正向分化。主要方向是线粒体能量代谢、线粒体生物发生和线粒体质量控制。在本综述中,我们从进展和策略的角度研究了近年来用于线粒体靶向治疗骨缺损修复的生物材料。我们还总结了受它们影响的微观分子机制。通过对能量代谢、氧化应激调节和自噬调节的讨论,我们强调了线粒体靶向生物材料面临的机遇和挑战,为开发新一代骨修复材料提供了重要线索。