Department of Plastic Surgery, The First Hospital of China Medical University, No. 155, Nanjing North Street, Heping District, Shenyang, Liaoning 110002, China.
School of Intelligent Medicine, China Medical University, No.77, Puhe Road, Shenyang, Liaoning 110122, China.
Acta Biomater. 2023 Jul 1;164:1-14. doi: 10.1016/j.actbio.2023.03.032. Epub 2023 Mar 25.
Bone damage may be triggered by a variety of factors, and the damaged area often requires a bone graft. Bone tissue engineering can serve as an alternative strategy for repairing large bone defects. Mesenchymal stem cells (MSCs), the progenitor cells of connective tissue, have become an important tool for tissue engineering due to their ability to differentiate into a variety of cell types. The precise regulation of the growth and differentiation of the stem cells used for bone regeneration significantly affects the efficiency of this type of tissue engineering. During the process of osteogenic induction, the dynamics and function of localized mitochondria are altered. These changes may also alter the microenvironment of the therapeutic stem cells and result in mitochondria transfer. Mitochondrial regulation not only affects the induction/rate of differentiation, but also influences its direction, determining the final identity of the differentiated cell. To date, bone tissue engineering research has mainly focused on the influence of biomaterials on phenotype and nuclear genotype, with few studies investigating the role of mitochondria. In this review, we provide a comprehensive summary of researches into the role of mitochondria in MSCs differentiation and critical analysis regarding smart biomaterials that are able to "programme" mitochondria modulation was proposed. STATEMENT OF SIGNIFICANCE: This review proposed the precise regulation of the growth and differentiation of the stem cells used to seed bone regeneration. • This review addressed the dynamics and function of localized mitochondria during the process of osteogenic induction and the effect of mitochondria on the microenvironment of stem cells. • This review summarized biomaterials which affect the induction/rate of differentiation, but also influences its direction, determining the final identity of the differentiated cell through the regulation of mitochondria.
骨损伤可能由多种因素引发,受损区域通常需要进行骨移植。骨组织工程可作为修复大骨缺损的替代策略。间充质干细胞(MSCs)是结缔组织的祖细胞,由于其能够分化为多种细胞类型,已成为组织工程的重要工具。用于骨再生的干细胞的生长和分化的精确调控显著影响这种组织工程的效率。在成骨诱导过程中,局部线粒体的动力学和功能发生改变。这些变化还可能改变治疗性干细胞的微环境,导致线粒体转移。线粒体的调控不仅影响诱导/分化的速度,还影响其方向,决定分化细胞的最终特性。迄今为止,骨组织工程研究主要集中在生物材料对表型和核基因型的影响上,很少有研究探讨线粒体的作用。在这篇综述中,我们全面总结了线粒体在间充质干细胞分化中的作用的研究,并对能够“编程”线粒体调节的智能生物材料进行了批判性分析。 意义声明: 这篇综述提出了精确调控用于种子骨再生的干细胞的生长和分化。 这篇综述探讨了成骨诱导过程中局部线粒体的动力学和功能,以及线粒体对干细胞微环境的影响。 这篇综述总结了通过调节线粒体影响诱导/分化速度,但也影响其方向,从而决定分化细胞最终特性的生物材料。