Lin Jiaying, Zhu Qianqian, Huang Jialyu, Cai Renfei, Kuang Yanping
Department of Assisted Reproduction, Shanghai Ninth People's Hospital, Shanghai Jiao Tong University School of Medicine, Shanghai 200011, China.
Stem Cells Int. 2020 Feb 20;2020:2830565. doi: 10.1155/2020/2830565. eCollection 2020.
Adipose-derived stem cell (ADSC) is an alternative and less invasive source of mesenchymal stem cells which can be used to develop biological treatment strategies for tissue regeneration, and their therapeutic applications hinge on an understanding of their physiological characteristics. N6-Methyladenosine (m6A) is the most common chemical modification of mRNAs and has recently been revealed to play important roles in cell lineage differentiation and development. However, the role of m6A modification in the vascular smooth muscle cell (VSMC) differentiation of ADSCs remains unclear. Herein, we investigated the expression of N6-adenosine methyltransferases (Mettl3) and demethylases (Fto and Alkbh5) and found that Mettl3 was upregulated in ADSCs undergoing vascular smooth muscle differentiation induction. Moreover, silence of Mettle3 reduced the expression level of VSMC-specific markers, including -SMA, SM22, calponin, and SM-MHC. Meanwhile, Mettl3 knockdown also decreased the expression of paracrine factors, including VEGF, HGF, TGF-, GM-CSF, bFGF, and SDF-1. In addition, our results suggested that hypoxia stress promotes the ADSC differentiate into VMSCs and regulates the secretion of VEGF, HGF, TGF-, GM-CSF, bFGF, and SDF-1 by mediating Mettl3 gene expression. These observations might contribute to novel progress in understanding the role of epitranscriptomic regulation in the VSMC differentiation of ADSCs and provide a promising perspective for new therapeutic strategies for tissue regeneration.
脂肪来源干细胞(ADSC)是间充质干细胞的一种替代且侵入性较小的来源,可用于开发组织再生的生物治疗策略,其治疗应用取决于对其生理特性的了解。N6-甲基腺苷(m6A)是mRNA最常见的化学修饰,最近已被揭示在细胞谱系分化和发育中起重要作用。然而,m6A修饰在ADSCs向血管平滑肌细胞(VSMC)分化中的作用仍不清楚。在此,我们研究了N6-腺苷甲基转移酶(Mettl3)和去甲基酶(Fto和Alkbh5)的表达,发现Mettl3在经历血管平滑肌分化诱导的ADSCs中上调。此外,沉默Mettle3可降低VSMC特异性标志物的表达水平,包括α-SMA、SM22、钙调蛋白和SM-MHC。同时,Mettl3敲低也降低了旁分泌因子的表达,包括VEGF、HGF、TGF-β、GM-CSF、bFGF和SDF-1。此外,我们的结果表明,缺氧应激通过介导Mettl3基因表达促进ADSCs分化为VMSCs,并调节VEGF、HGF、TGF-β、GM-CSF、bFGF和SDF-1的分泌。这些观察结果可能有助于在理解表观转录组调控在ADSCs向VSMC分化中的作用方面取得新进展,并为组织再生的新治疗策略提供有前景的视角。