Deininger Lab, Versiti, Blood Research Institute, Milwaukee, WI, USA.
Department of Pediatrics, Ann & Robert H. Lurie Children's Hospital, 303 E Superior SQRB 4th floor, Chicago, IL, USA.
Stem Cell Rev Rep. 2023 Aug;19(6):2038-2051. doi: 10.1007/s12015-023-10565-7. Epub 2023 Jun 1.
Stem cell therapy provides a hope to no option heart disease patient group. Stem cells work via different mechanisms of which paracrine mechanism is reported to justify most of the effects. Therefore, identifying the control arms for paracrine cocktail production is necessary to tailor stem cell functions in disease contextual manner. In this study, we describe a novel paracrine cocktail regulatory axis, in stem cells, to enhance their cardioprotective abilities. We identified that HSF1 knockout resulted in reduced cardiac regenerative abilities of mesenchymal stem cells (MSCs) while its overexpression had opposite effects. Altered exosome biognesis and their miRNA cargo enrichment were found to be underlying these altered regenerative abilities. Decreased production of exosomes by MSCs accompanied their loss of HSF1 and vice versa. Moreover, the exosomes derived from HSF1 depleted MSCs showed significantly reduced candidate miRNA expression (miR-145, miR-146, 199-3p, 199b and miR-590) compared to those obtained from HSF1 overexpressing MSCs. We further discovered that HSF1 mediates miRNAs' enrichment into exosomes via Y binding protein 1 (YBX1) and showed, by loss and gain of function strategies, that miRNAs' enrichment in mesenchymal stem cell derived exosomes is deregulated with altered YBX1 expression. It was finally demonstrated that absence of YBX1 in MSCs, with normal HSF1 expression, resulted in significant accumulation of candidate miRNAs into the cells. Together, our data shows that HSF1 plays a critical role in determining the regenerative potential of stem cells. HSF1 does that by affecting exosome biogenesis and miRNA cargo sorting via regulation of YBX1 gene expression.
干细胞治疗为无选择的心脏病患者群体提供了希望。干细胞通过不同的机制发挥作用,其中旁分泌机制被报道可以解释大部分作用。因此,确定旁分泌鸡尾酒产生的对照臂对于以疾病背景方式调整干细胞功能是必要的。在这项研究中,我们描述了一种新的干细胞旁分泌鸡尾酒调节轴,以增强其心脏保护能力。我们发现 HSF1 敲除导致间充质干细胞 (MSC) 的心脏再生能力降低,而其过表达则产生相反的效果。发现改变外泌体生物发生及其 miRNA 货物的丰度是这些改变再生能力的基础。MSC 中 HSF1 的减少伴随着外泌体产生的减少,反之亦然。此外,与 HSF1 过表达 MSC 来源的外泌体相比,源自 HSF1 耗尽的 MSC 的外泌体显示出明显减少的候选 miRNA 表达(miR-145、miR-146、199-3p、199b 和 miR-590)。我们进一步发现,HSF1 通过 Y 结合蛋白 1 (YBX1) 将 miRNA 富集到外泌体中,并通过丧失和获得功能策略表明,间充质干细胞衍生的外泌体中 miRNA 的富集是通过改变 YBX1 表达来调节的。最后证明,在 YBX1 缺失但 HSF1 表达正常的 MSC 中,候选 miRNA 会大量积累到细胞中。总之,我们的数据表明 HSF1 通过影响外泌体生物发生和 miRNA 货物分选来调节 YBX1 基因表达,从而在决定干细胞的再生潜力方面发挥关键作用。