Biotechnology Research Center, Institute of Pharmaceutical Technology, Mashhad University of Medical Sciences, Mashhad, Iran.
Biotechnology Research Center, School of Pharmacy, Mashhad University of Medical Sciences, Mashhad, Iran.
Appl Biochem Biotechnol. 2018 Sep;186(1):245-255. doi: 10.1007/s12010-018-2734-2. Epub 2018 Mar 24.
Since the adult mammalian heart has limited regenerative capacity, cardiac trauma, disease, and aging cause permanent loss of contractile tissue. This has fueled the development of stem cell-based strategies to provide the damaged heart with new cardiomyocytes. Bone marrow-derived mesenchymal stem cells (BM-MSCs) are capable of self-renewal and differentiation into cardiomyocytes, albeit inefficiently. MicroRNAs (miRNAs, miRs) are non-coding RNAs that have the potential to control stem cell fate decisions and are employed in cardiac regeneration and repair. In this study, we tested the hypothesis that overexpression of miR-499a induces cardiomyogenic differentiation in BM-MSCs. Human BM-MSCs (hBM-MSCs) were transduced with lentiviral vectors encoding miR-499a-3p or miR-499a-5p and analyzed by immunostaining and western blotting methods 14 days post-transduction. MiR-499a-5p-transduced cells adopted a polygonal/rod-shaped (myocyte-like) phenotype and showed an increase in the expression of the cardiomyocyte markers α-actinin and cTnI, as cardiogenic differentiation markers. These results indicate that miR-499a-5p overexpression promotes the cardiomyogenic differentiation of hBM-MSCs and may thereby increase their therapeutic efficiency in cardiac regeneration.
由于成年哺乳动物的心脏再生能力有限,因此心脏创伤、疾病和衰老会导致收缩组织的永久性丧失。这促使人们开发了基于干细胞的策略,为受损的心脏提供新的心肌细胞。骨髓间充质干细胞(BM-MSCs)能够自我更新并分化为心肌细胞,但效率不高。微小 RNA(miRNA,miRs)是非编码 RNA,具有控制干细胞命运决定的潜力,并应用于心脏再生和修复。在这项研究中,我们检验了过表达 miR-499a 可诱导 BM-MSCs 向心肌细胞分化的假设。用人骨髓间充质干细胞(hBM-MSCs)转导编码 miR-499a-3p 或 miR-499a-5p 的慢病毒载体,并在转导后 14 天通过免疫染色和 Western blot 方法进行分析。miR-499a-5p 转导的细胞呈多边形/杆状(心肌样)形态,并显示心肌细胞标志物α-肌动蛋白和 cTnI 的表达增加,作为心肌分化标志物。这些结果表明,miR-499a-5p 的过表达促进了 hBM-MSCs 的心肌分化,并可能因此提高其在心脏再生中的治疗效率。