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首页> 外文期刊>Stem Cell Research & Therapy >Mitochondria transfer enhances proliferation, migration, and osteogenic differentiation of bone marrow mesenchymal stem cell and promotes bone defect healing
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Mitochondria transfer enhances proliferation, migration, and osteogenic differentiation of bone marrow mesenchymal stem cell and promotes bone defect healing

机译:线粒体转移增强骨髓间充质干细胞的增殖,迁移和骨质发生分化,促进骨缺损愈合

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Bone marrow-derived mesenchymal stem cell (BMSC) transplantation is considered a promising therapeutic approach for bone defect repair. However, during the transplantation procedure, the functions and viability of BMSCs may be impaired due to extended durations of in vitro culture, aging, and disease conditions of patients. Inspired by spontaneous intercellular mitochondria transfer that naturally occurs within injured tissues to rescue cellular or tissue function, we investigated whether artificial mitochondria transfer into pre-transplant BMSCs in vitro could improve cellular function and enhance their therapeutic effects on bone defect repair in situ. Mitochondria were isolated from donor BMSCs and transferred into recipient BMSCs of the same batch and passage. Subsequently, changes in proliferative capacity and cell senescence were evaluated by live cell imaging, Cell Counting Kit-8 assay, cell cycle analysis, Ki67 staining, qPCR and Western blot analysis of c-Myc expression, and β-galactosidase staining. Migration ability was evaluated by the transwell migration assay, wound scratch healing, and cell motility tests. Alkaline phosphatase (ALP) staining, Alizarin Red staining, and combined with qPCR and Western blot analyses of Runx2 and BMP2 were performed to elucidate the effects of mitochondria transfer on the osteogenic potential of BMSCs in vitro. After that, in vivo experiments were performed by transplanting mitochondria-recipient BMSCs into a rat cranial critical-size bone defect model. Micro CT scanning and histological analysis were conducted at 4 and 8?weeks after transplantation to evaluate osteogenesis in situ. Finally, in order to establish the correlation between cellular behavioral changes and aerobic metabolism, OXPHOS (oxidative phosphorylation) and ATP production were assessed and inhibition of aerobic respiration by oligomycin was performed. Mitochondria-recipient BMSCs exhibited significantly enhanced proliferation and migration, and increased osteogenesis upon osteogenic induction. The in vivo results showed more new bone formation after transplantation of mitochondria-recipient BMSCs in situ. Increased OXPHOS activity and ATP production were observed, which upon inhibition by oligomycin attenuated the enhancement of proliferation, migration, and osteogenic differentiation induced by mitochondria transfer. Mitochondria transfer is a feasible technique to enhance BMSC function in vitro and promote bone defect repair in situ through the upregulation of aerobic metabolism. The results indicated that mitochondria transfer may be a novel promising technique for optimizing stem cell therapeutic function.
机译:骨髓衍生的间充质干细胞(BMSC)移植被认为是骨缺损修复的有前途的治疗方法。然而,在移植过程中,由于患者的体外培养,老化和疾病病症的延长持续时间,BMSCs的功能和活力可能受到损害。灵感来自于自发的细胞内线粒体转移,即天然发生在受伤组织中以拯救细胞或组织功能,我们研究了人造线粒体是否转移到移植前BMSCs体外,可以改善细胞功能,并提高它们原位骨缺损修复的治疗效果。线粒体与供体BMSCs分离,并转移到相同批量和通道的受体BMSC中。随后,通过活细胞成像,细胞计数试剂盒-8测定,细胞循环分析,Ki67染色,QPCR和β-半乳糖苷酶染色来评估增殖能力和细胞衰老的变化。通过Transwell迁移测定,伤口划伤愈合和细胞运动测试评估迁移能力。进行碱性磷酸酶(ALP)染色,茜素红染色和与QPCR和RUNX2和BMP2的蛋白质印迹分析进行进行,以阐明线粒体转移对体外BMSCs稳定性潜力的影响。之后,通过将线粒体 - 受体BMSC移植到大鼠颅临时骨缺陷模型中进行体内实验。微型CT扫描和组织学分析在移植后4和8周进行,以评估原位骨质发生。最后,为了建立蜂窝行为变化和有氧代谢之间的相关性,评估毒药(氧化磷酸化)和ATP产生,并进行寡霉素的有氧呼吸。线粒体 - 受体BMSCs表现出显着提高的增殖和迁移,以及骨质发生诱导的骨质发生增加。体内结果表明,在原位发生线粒体 - 受体BMSCs后,更新骨形成。观察到增加的奥治毒性活性和ATP产量,这在寡霉素抑制后,抑制了线粒体转移诱导的增殖,迁移和骨质发生分化的增强。线粒体转移是一种可行的技术,以通过促进有氧代谢的上调来增强BMSC功能,促进骨缺损修复。结果表明,线粒体转移可以是用于优化干细胞治疗功能的新颖有前途的技术。

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