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Reactive Oxygen Species and Mitochondrial Homeostasis as Regulators of Stem Cell Fate and Function

细胞生物学 干细胞 生物 线粒体 蛋白质稳态 细胞命运测定 线粒体生物发生 线粒体ROS 平衡 活性氧 转录因子 生物化学 基因
作者
Darren Qiancheng Tan,Toshio Suda
出处
期刊:Antioxidants & Redox Signaling [Mary Ann Liebert]
卷期号:29 (2): 149-168 被引量:130
标识
DOI:10.1089/ars.2017.7273
摘要

Significance: The precise role and impact of reactive oxygen species (ROS) in stem cells, which are essential for lifelong tissue homeostasis and regeneration, remain of significant interest to the field. The long-term regenerative potential of a stem cell compartment is determined by the delicate balance between quiescence, self-renewal, and differentiation, all of which can be influenced by ROS levels. Recent Advances: The past decade has seen a growing appreciation for the importance of ROS and redox homeostasis in various stem cell compartments, particularly those of hematopoietic, neural, and muscle tissues. In recent years, the importance of proteostasis and mitochondria in relation to stem cell biology and redox homeostasis has garnered considerable interest. Critical Issues: Here, we explore the reciprocal relationship between ROS and stem cells, with significant emphasis on mitochondria as a core component of redox homeostasis. We discuss how redox signaling, involving cell-fate determining protein kinases and transcription factors, can control stem cell function and fate. We also address the impact of oxidative stress on stem cells, especially oxidative damage of lipids, proteins, and nucleic acids. We further discuss ROS management in stem cells, and present recent evidence supporting the importance of mitochondrial activity and its modulation (via mitochondrial clearance, biogenesis, dynamics, and distribution [i.e., segregation and transfer]) in stem cell redox homeostasis. Future Directions: Therefore, elucidating the intricate links between mitochondria, cellular metabolism, and redox homeostasis is envisioned to be critical for our understanding of ROS in stem cell biology and its therapeutic relevance in regenerative medicine. Antioxid. Redox Signal. 29, 149–168.
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