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纳米颗粒递送稳定的 miR-199a-5p 激动剂通过 HIF1a 通路改善人骨髓间充质干细胞的成骨作用。

Nanoparticle delivery of stable miR-199a-5p agomir improves the osteogenesis of human mesenchymal stem cells via the HIF1a pathway.

机构信息

Zhejiang Provincial Key Laboratory of Tissue Engineering and Regenerative Medicine, Zhejiang University, Hangzhou, Zhejiang Province, China; School of Biomedical Sciences, The Chinese University of Hong Kong, Hong Kong Special Administrative Region.

School of Biomedical Sciences, The Chinese University of Hong Kong, Hong Kong Special Administrative Region.

出版信息

Biomaterials. 2015 Jun;53:239-50. doi: 10.1016/j.biomaterials.2015.02.071. Epub 2015 Mar 14.

Abstract

Elucidating the regulatory mechanisms of osteogenesis of human mesenchymal stem cell (hMSC) is important for the development of cell therapies for bone loss and regeneration. Here we showed that hsa-miR-199a-5p modulated osteogenic differentiation of hMSCs at both early and late stages through HIF1a pathway. hsa-miR-199a expression was up-regulated during osteogenesis for both of two mature forms, miR-199a-5p and -3p. Over-expression of miR-199a-5p but not -3p enhanced differentiation of hMSCs in vitro, whereas inhibition of miR-199a-5p reduced the expression of osteoblast-specific genes, alkaline phosphatase (ALP) activity, and mineralization. Furthermore, over-expression of miR-199a enhanced ectopic bone formation in vivo. Chitosan nanoparticles were used for delivery of stable modified hsa-miR-199a-5p (agomir) both in vitro and in vivo, as a proof-of-concept for stable agomir delivery on bone regeneration. The hsa-mir199a-5p agomir were mixed with Chitosan nanoparticles to form nanoparticle/hsa-mir199a-5p agomir plasmid (nanoparticle/agomir) complexes, and nanoparticle/agomir complexes could improve the in vivo regeneration of bone. Further mechanism studies revealed that hypoxia enhanced osteogenesis at early stage and inhibited osteogenesis maturation at late stage through HIF1a-Twist1 pathway. At early stage of differentiation, hypoxia induced HIF1a-Twist1 pathway to enhance osteogenesis by up-regulating miR-199a-5p, while at late stage of differentiation, miR-199a-5p enhanced osteogenesis maturation by inhibiting HIF1α-Twist1 pathway.

摘要

阐明人骨髓间充质干细胞(hMSC)成骨的调控机制对于开发用于骨丢失和再生的细胞疗法非常重要。在这里,我们表明 hsa-miR-199a-5p 通过 HIF1a 通路调节 hMSC 在早期和晚期的成骨分化。两种成熟形式(miR-199a-5p 和 miR-199a-3p)的成骨过程中,hsa-miR-199a 的表达均上调。miR-199a-5p 的过表达而非 miR-199a-3p 增强了 hMSC 的体外分化,而 miR-199a-5p 的抑制则降低了成骨特异性基因、碱性磷酸酶(ALP)活性和矿化的表达。此外,miR-199a 的过表达增强了体内异位骨形成。壳聚糖纳米粒用于递送稳定修饰的 hsa-miR-199a-5p(激动剂),在体内和体外,作为稳定激动剂递送在骨再生上的概念验证。hsa-mir199a-5p 激动剂与壳聚糖纳米粒混合形成纳米粒/hsa-mir199a-5p 激动剂质粒(纳米粒/激动剂)复合物,纳米粒/激动剂复合物可以改善体内骨的再生。进一步的机制研究表明,低氧通过 HIF1a-Twist1 通路在早期增强成骨,在晚期抑制成骨成熟。在分化的早期,低氧通过诱导 HIF1a-Twist1 通路来增强成骨作用,上调 miR-199a-5p,而在分化的晚期,miR-199a-5p 通过抑制 HIF1α-Twist1 通路来增强成骨成熟。

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