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干细胞代谢:为基于细胞的治疗提供动力。

Stem Cell Metabolism: Powering Cell-Based Therapeutics.

机构信息

Center for Metabolic Disease Research (CMDR), Lewis Katz School of Medicine, Temple University, Philadelphia, PA 19140, USA.

Cardiovascular Research Center (CVRC), Lewis Katz School of Medicine, Temple University, Philadelphia, PA 19140, USA.

出版信息

Cells. 2020 Nov 16;9(11):2490. doi: 10.3390/cells9112490.

Abstract

Cell-based therapeutics for cardiac repair have been extensively used during the last decade. Preclinical studies have demonstrated the effectiveness of adoptively transferred stem cells for enhancement of cardiac function. Nevertheless, several cell-based clinical trials have provided largely underwhelming outcomes. A major limitation is the lack of survival in the harsh cardiac milieu as only less than 1% donated cells survive. Recent efforts have focused on enhancing cell-based therapeutics and understanding the biology of stem cells and their response to environmental changes. Stem cell metabolism has recently emerged as a critical determinant of cellular processes and is uniquely adapted to support proliferation, stemness, and commitment. Metabolic signaling pathways are remarkably sensitive to different environmental signals with a profound effect on cell survival after adoptive transfer. Stem cells mainly generate energy through glycolysis while maintaining low oxidative phosphorylation (OxPhos), providing metabolites for biosynthesis of macromolecules. During commitment, there is a shift in cellular metabolism, which alters cell function. Reprogramming stem cell metabolism may represent an attractive strategy to enhance stem cell therapy for cardiac repair. This review summarizes the current literature on how metabolism drives stem cell function and how this knowledge can be applied to improve cell-based therapeutics for cardiac repair.

摘要

在过去的十年中,基于细胞的心脏修复治疗已被广泛应用。临床前研究表明,同种异体干细胞移植可有效增强心脏功能。然而,多项基于细胞的临床试验结果却令人大失所望。一个主要的限制因素是细胞在恶劣的心脏环境中存活率低,只有不到 1%的供体细胞能够存活。最近的研究重点集中在增强基于细胞的治疗方法,并深入了解干细胞的生物学及其对环境变化的反应。干细胞代谢最近已成为细胞过程的关键决定因素,并能独特地适应支持增殖、干性和分化。代谢信号通路对不同的环境信号非常敏感,对细胞移植后的存活有深远影响。干细胞主要通过糖酵解产生能量,同时保持低氧化磷酸化(OxPhos),为大分子的生物合成提供代谢物。在分化过程中,细胞代谢发生转变,从而改变细胞功能。重编程干细胞代谢可能是增强心脏修复的干细胞治疗的一种有吸引力的策略。本文综述了目前关于代谢如何驱动干细胞功能的文献,并探讨了如何将这些知识应用于改善基于细胞的心脏修复治疗。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/33f1/7696341/8366048c5c8f/cells-09-02490-g001.jpg

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