| Literature DB >> 31383739 |
Amir Bahat1, Atan Gross2.
Abstract
Mitochondria are considered highly plastic organelles. This plasticity enables the mitochondria to undergo morphological and functional changes in response to cellular demands. Stem cells also need to remain functionally plastic (i.e. to have the ability to "decide" whether to remain quiescent or to undergo activation upon signaling cues to support tissue function and homeostasis). Mitochondrial plasticity is thought to enable this reshaping of stem cell functions, integrating signaling cues with stem cell outcomes. Indeed, recent evidence highlights the crucial role of maintaining mitochondrial plasticity for stem cell biology. For example, tricarboxylic acid (TCA) cycle metabolites generated and metabolized in the mitochondria serve as cofactors for epigenetic enzymes, thereby coupling mitochondrial metabolism and transcriptional regulation. Another layer of mitochondrial plasticity has emerged, pointing toward mitochondrial dynamics in regulating stem cell fate decisions. Imposing imbalanced mitochondrial dynamics by manipulating the expression levels of the key molecular regulators of this process influences cellular outcomes by changing the nuclear transcriptional program. Moreover, reactive oxygen species have also been shown to play an important role in regulating transcriptional profiles in stem cells. In this review, we focus on recent findings demonstrating that mitochondria are essential regulators of stem cell activation and fate decisions. We also discuss the suggested mechanisms and alternative routes for mitochondria-to-nucleus communications.Entities:
Keywords: ROS signaling; cell signaling; epigenetics; histone modification; metabolic cross-talk; metabolism; mitochondria; mitochondrial DNA (mtDNA); mitochondrial metabolism; molecular dynamics; nucleus; self-renewal; stem cells
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Year: 2019 PMID: 31383739 PMCID: PMC6755789 DOI: 10.1074/jbc.REV118.000828
Source DB: PubMed Journal: J Biol Chem ISSN: 0021-9258 Impact factor: 5.157