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Quiescence Preconditioned Human Multipotent Stromal Cells Adopt a Metabolic Profile Favorable for Enhanced Survival under Ischemia

机译:静止预处理人类多能基质细胞采用一种代谢型材,优缺于缺血的增强存活率

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A major impediment to the development of therapies with mesenchymal stem cells/multipotent stromal cells (MSC) is the poor survival and engraftment of MSCs at the site of injury. We hypothesized that lowering the energetic demand of MSCs by driving them into a quiescent state would enhance their survival under ischemic conditions. Human MSCs (hMSCs) were induced into quiescence by serum deprivation (SD) for 48 hours. Such preconditioned cells (SD-hMSCs) exhibited reduced nucleotide and protein syntheses compared to unpreconditioned hMSCs. SD-hMSCs sustained their viability and their ATP levels upon exposure to severe, continuous, near-anoxia (0.1% O-2) and total glucose depletion for up to 14 consecutive days in vitro, as they maintained their hMSC multipotential capabilities upon reperfusion. Most importantly, SD-hMSCs showed enhanced viability in vivo for the first week postimplantation in mice. Quiescence preconditioning modified the energy-metabolic profile of hMSCs: it suppressed energy-sensing mTOR signaling, stimulated autophagy, promoted a shift in bioenergetic metabolism from oxidative phosphorylation to glycolysis and upregulated the expression of gluconeogenic enzymes, such as PEPCK. Since the presence of pyruvate in cell culture media was critical for SD-hMSC survival under ischemic conditions, we speculate that these cells may utilize some steps of gluconeogenesis to overcome metabolic stress. These findings support that SD preconditioning causes a protective metabolic adaptation that might be taken advantage of to improve hMSC survival in ischemic environments.
机译:对间充质干细胞/多能基质细胞(MSC)的疗法发展的主要障碍是损伤部位的MSCs存活率和植入差。我们假设通过将它们驱动成静态状态来降低MSC的能量需求将在缺血条件下提高他们的生存。通过血清剥夺(SD)诱导人体MSCs(HMSCs)48小时诱导静脉。与未申请的HMSC相比,这种预处理的细胞(SD-HMSCs)表现出降低的核苷酸和蛋白质合成。在暴露于严重,连续的近缺氧(0.1%O-2)和体外连续14天的暴露时,SD-HMSCs持续其可行性及其ATP水平,因为它们在再灌注时保持其HMSC多电像能力。最重要的是,SD-HMSCs在小鼠前一周的前提下显示体内的增强活力。静止预处理改性HMSCs的能量代谢谱:抑制了能量感应的MTOR信号传导,刺激的自噬,促进生物能量代谢的转变从氧化磷酸化到糖醇分解并上调葡糖酶的表达,例如PEPCK。由于细胞培养基中的丙酮酸的存在对于缺血条件下的SD-HMSC存活率至关重要,因此我们推测这些细胞可以利用葡糖生成的一些步骤来克服代谢应激。这些发现支持SD预处理导致保护性代谢适应,可能有利于改善缺血环境中的HMSC生存期。

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