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miR-21-5p 调控线粒体网络动态变化并重塑骨质疏松症 SAM/P6 小鼠骨髓基质细胞(BMSCs)的衰老表型。

MiR-21-5p regulates the dynamic of mitochondria network and rejuvenates the senile phenotype of bone marrow stromal cells (BMSCs) isolated from osteoporotic SAM/P6 mice.

机构信息

Department of Experimental Biology, The Faculty of Biology and Animal Science, University of Environmental and Life Sciences Wroclaw, Norwida 27B St, 50-375, Wrocław, Poland.

Department of Medicine and Epidemiology, School of Veterinary Medicine, University of California, One Shields Avenue, Davis, CA, 95616-8739, USA.

出版信息

Stem Cell Res Ther. 2023 Mar 29;14(1):54. doi: 10.1186/s13287-023-03271-1.

Abstract

BACKGROUND

Progression of senile osteoporosis is associated with deteriorated regenerative potential of bone marrow-derived mesenchymal stem/stromal cells (BMSCs). According to the recent results, the senescent phenotype of osteoporotic cells strongly correlates with impaired regulation of mitochondria dynamics. Moreover, due to the ageing of population and growing osteoporosis incidence, more efficient methods concerning BMSCs rejuvenation are intensely investigated. Recently, miR-21-5p was reported to play a vital role in bone turnover, but its therapeutic mechanisms in progenitor cells delivered from senile osteoporotic patients remain unclear. Therefore, the goal of this paper was to investigate for the first time the regenerative potential of miR-21-5p in the process of mitochondrial network regulation and stemness restoration using the unique model of BMSCs isolated from senile osteoporotic SAM/P6 mice model.

METHODS

BMSCs were isolated from healthy BALB/c and osteoporotic SAM/P6 mice. We analysed the impact of miR-21-5p on the expression of crucial markers related to cells' viability, mitochondria reconstruction and autophagy progression. Further, we established the expression of markers vital for bone homeostasis, as well as defined the composition of extracellular matrix in osteogenic cultures. The regenerative potential of miR-21 in vivo was also investigated using a critical-size cranial defect model by computed microtomography and SEM-EDX imaging.

RESULTS

MiR-21 upregulation improved cells' viability and drove mitochondria dynamics in osteoporotic BMSCs evidenced by the intensification of fission processes. Simultaneously, miR-21 enhanced the osteogenic differentiation of BMSCs evidenced by increased expression of Runx-2 but downregulated Trap, as well as improved calcification of extracellular matrix. Importantly, the analyses using the critical-size cranial defect model indicated on a greater ratio of newly formed tissue after miR-21 application, as well as upregulated content of calcium and phosphorus within the defect site.

CONCLUSIONS

Our results demonstrate that miR-21-5p regulates the fission and fusion processes of mitochondria and facilitates the stemness restoration of senile osteoporotic BMSCs. At the same time, it enhances the expression of RUNX-2, while reduces TRAP accumulation in the cells with deteriorated phenotype. Therefore, miR-21-5p may bring a novel molecular strategy for senile osteoporosis diagnostics and treatment.

摘要

背景

老年性骨质疏松症的进展与骨髓间充质干细胞/基质细胞(BMSCs)再生潜能的恶化有关。根据最近的研究结果,骨质疏松细胞的衰老表型与线粒体动力学调节受损密切相关。此外,由于人口老龄化和骨质疏松症发病率的上升,人们正在深入研究更有效的 BMSCs 年轻化方法。最近,miR-21-5p 被报道在骨转换中发挥重要作用,但它在来自老年骨质疏松症患者的祖细胞中的治疗机制尚不清楚。因此,本文的目的是首次使用从老年骨质疏松症 SAM/P6 小鼠模型中分离的 BMSCs 的独特模型,研究 miR-21-5p 在调节线粒体网络和干细胞功能恢复过程中的再生潜力。

方法

从健康 BALB/c 和骨质疏松症 SAM/P6 小鼠中分离 BMSCs。我们分析了 miR-21-5p 对与细胞活力、线粒体重建和自噬进展相关的关键标志物表达的影响。此外,我们还建立了与骨稳态相关的关键标志物的表达,并确定了成骨培养物中细胞外基质的组成。还通过计算微断层扫描和 SEM-EDX 成像研究了 miR-21 在体内的再生潜力。

结果

miR-21 的上调提高了骨质疏松症 BMSCs 的细胞活力,并通过加强分裂过程驱动线粒体动力学。同时,miR-21 增强了 BMSCs 的成骨分化,表现为 Runx-2 表达增加,Trap 表达减少,以及细胞外基质的钙化增强。重要的是,使用临界尺寸颅缺损模型的分析表明,miR-21 应用后,新形成的组织比例更大,并且在缺陷部位的钙和磷含量增加。

结论

我们的研究结果表明,miR-21-5p 调节线粒体的分裂和融合过程,并促进老年骨质疏松症 BMSCs 的干细胞功能恢复。同时,它增强了 RUNX-2 的表达,同时减少了具有恶化表型的细胞中 Trap 的积累。因此,miR-21-5p 可能为老年性骨质疏松症的诊断和治疗提供新的分子策略。

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