首页> 美国卫生研究院文献>Journal of Cellular and Molecular Medicine >The human amniotic fluid stem cell secretome triggers intracellular Ca2+ oscillations NF‐κB nuclear translocation and tube formation in human endothelial colony‐forming cells
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The human amniotic fluid stem cell secretome triggers intracellular Ca2+ oscillations NF‐κB nuclear translocation and tube formation in human endothelial colony‐forming cells

机译:人刚性流体干细胞沉淀触发细胞内Ca2 +振荡NF-κB核转位和人类内皮菌落形成细胞中的管形成

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摘要

Second trimester foetal human amniotic fluid‐derived stem cells (hAFS) have been shown to possess remarkable cardioprotective paracrine potential in different preclinical models of myocardial injury and drug‐induced cardiotoxicity. The hAFS secretome, namely the total soluble factors released by cells in their conditioned medium (hAFS‐CM), can also strongly sustain in vivo angiogenesis in a murine model of acute myocardial infarction (MI) and stimulates human endothelial colony‐forming cells (ECFCs), the only truly recognized endothelial progenitor, to form capillary‐like structures in vitro. Preliminary work demonstrated that the hypoxic hAFS secretome (hAFS‐CMHypo) triggers intracellular Ca2+ oscillations in human ECFCs, but the underlying mechanisms and the downstream Ca2+‐dependent effectors remain elusive. Herein, we found that the secretome obtained by hAFS undergoing hypoxic preconditioning induced intracellular Ca2+ oscillations by promoting extracellular Ca2+ entry through Transient Receptor Potential Vanilloid 4 (TRPV4). TRPV4‐mediated Ca2+ entry, in turn, promoted the concerted interplay between inositol‐1,4,5‐trisphosphate‐ and nicotinic acid adenine dinucleotide phosphate‐induced endogenous Ca2+ release and store‐operated Ca2+ entry (SOCE). hAFS‐CMHypo‐induced intracellular Ca2+ oscillations resulted in the nuclear translocation of the Ca2+‐sensitive transcription factor p65 NF‐κB. Finally, inhibition of either intracellular Ca2+ oscillations or NF‐κB activity prevented hAFS‐CMHypo‐induced ECFC tube formation. These data shed novel light on the molecular mechanisms whereby hAFS‐CMHypo induces angiogenesis, thus providing useful insights for future therapeutic strategies against ischaemic‐related myocardial injury.
机译:第二三月胎儿胎儿羊水衍生的干细胞(HAF)已被证明在心肌损伤和药物诱导的心肌毒性不同的临床前模型中具有显着的心脏保护性旁静脉潜力。 Hafs ecrictleome,即细胞在其调节培养基(Hafs-cm)中释放的总可溶性因子,也可以强烈地在急性心肌梗死(Mi)的小鼠模型中体内血管生成,并刺激人类内皮菌落形成细胞(ECFC ),唯一真正公认的内皮祖细胞,形成毛细管样结构体外。初步工作证明,缺氧HAFS沉淀(HAFS-CMHYPO)触发人体ECFC中的细胞内Ca2 +振荡,但潜在的机制和下游CA2 +依赖性效应仍然难以捉摸。在此,我们发现通过通过瞬时受体潜在香草4(TRPV4)通过促进细胞外Ca2 +进入,通过促进细胞外Ca 2 +进入诱导细胞内Ca2 +振荡的Hafs获得的沉淀物。 TRPV4介导的CA2 +进入又促进了肌醇-1,4,5-三磷酸和烟酸腺嘌呤二核苷酸催化的内源CA2 +释放和储存的CA2 +进入(SOCE)之间的齐齐异的相互作用。 HAFS-CMHYPO诱导的细胞内CA2 +振荡导致CA2 + - 敏感转录因子P65 NF-κB的核转移。最后,抑制细胞内Ca2 +振荡或NF-κB活性阻止了HaFs-CmHypo诱导的ECFC管形成。这些数据流出了关于分子机制的新光,即Hafs-cmhypo诱导血管生成,从而为未来对缺血相关的心肌损伤的治疗策略提供有用的见解。

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