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首页> 外文期刊>Stem Cell Reports >Enhanced Hemangioblast Generation and Improved Vascular Repair and Regeneration from Embryonic Stem Cells by Defined Transcription Factors
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Enhanced Hemangioblast Generation and Improved Vascular Repair and Regeneration from Embryonic Stem Cells by Defined Transcription Factors

机译:通过定义的转录因子增强成血成血管细胞生成并改善胚胎干细胞的血管修复和再生

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SummaryThe fetal liver kinase 1 (FLK-1)+ hemangioblast can generate hematopoietic, endothelial, and smooth muscle cells (SMCs). ER71/ETV2, GATA2, and SCL form a core transcriptional network in hemangioblast development. Transient coexpression of these three factors during mesoderm formation stage in mouse embryonic stem cells (ESCs) robustly enhanced hemangioblast generation by activating bone morphogenetic protein (BMP) and FLK-1 signaling while inhibiting phosphatidylinositol 3-kinase, WNT signaling, and cardiac output. Moreover, etsrp, gata2, and scl inhibition converted hematopoietic field of the zebrafish anterior lateral plate mesoderm to cardiac. FLK-1+ hemangioblasts generated by transient coexpression of the three factors (ER71-GATA2-SCL [EGS]-induced FLK-1+) effectively produced hematopoietic, endothelial, and SMCs in culture and in vivo. Importantly, EGS-induced FLK-1+ hemangioblasts, when codelivered with mesenchymal stem cells as spheroids, were protected from apoptosis and generated functional endothelial cells and SMCs in ischemic mouse hindlimbs, resulting in improved blood perfusion and limb salvage. ESC-derived, EGS-induced FLK-1+ hemangioblasts could provide an attractive cell source for future hematopoietic and vascular repair and regeneration.
机译:总结胎儿肝激酶1(FLK-1) + 成血管细胞可产生造血,内皮和平滑肌细胞(SMC)。 ER71 / ETV2,GATA2和SCL在成血管细胞发育中形成核心转录网络。在小鼠胚胎干细胞(ESC)的中胚层形成阶段,这三个因子的瞬时共表达通过激活骨形态发生蛋白(BMP)和FLK-1信号传导,同时抑制磷脂酰肌醇3激酶,WNT信号传导和心输出量,来强烈增强成血管细胞生成。此外,etsrp,gata2和scl抑制将斑马鱼前外侧板中胚层的造血场转换为心脏。瞬时共表达三个因子(ER71-GATA2-SCL [EGS]诱导的FLK-1 + )产生的FLK-1 + 成血管细胞有效地产生了造血,内皮和文化和体内SMC。重要的是,EGS诱导的FLK-1 + 成血成血管细胞与间充质干细胞共球体转运时,可防止细胞凋亡并在缺血小鼠后肢中产生功能性内皮细胞和SMC,从而改善血液灌注和肢体打捞。 ESC衍生,EGS诱导的FLK-1 + 成血管细胞可以为未来的造血和血管修复及再生提供有吸引力的细胞来源。

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