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Stem cell mitochondria during aging. | LitMetric

Stem cell mitochondria during aging.

Semin Cell Dev Biol

Stem Cell & Regenerative Biology, Genome Institute of Singapore, 60 Biopolis St, S138672, Singapore. Electronic address:

Published: April 2016

AI Article Synopsis

  • - Mitochondria are essential for energy production and regulate reactive oxygen species (ROS) levels, with their own DNA that influences cellular metabolism and stem cell behavior during regeneration and aging.
  • - Stem cell factors and nutrient-sensitive signaling pathways interact with mitochondrial processes to balance self-renewal and differentiation, impacting longevity and tissue homeostasis as organisms age.
  • - Targeting mitochondrial repair in stem cells may offer a promising approach to address aging-related degenerative diseases, given the significant role mitochondria play in cellular health and longevity.

Article Abstract

Mitochondria are the central hubs of cellular metabolism, equipped with their own mitochondrial DNA (mtDNA) blueprints to direct part of the programming of mitochondrial oxidative metabolism and thus reactive oxygen species (ROS) levels. In stem cells, many stem cell factors governing the intricate balance between self-renewal and differentiation have been found to directly regulate mitochondrial processes to control stem cell behaviors during tissue regeneration and aging. Moreover, numerous nutrient-sensitive signaling pathways controlling organismal longevity in an evolutionarily conserved fashion also influence stem cell-mediated tissue homeostasis during aging via regulation of stem cell mitochondria. At the genomic level, it has been demonstrated that heritable mtDNA mutations and variants affect mammalian stem cell homeostasis and influence the risk for human degenerative diseases during aging. Because such a multitude of stem cell factors and signaling pathways ultimately converge on the mitochondria as the primary mechanism to modulate cellular and organismal longevity, it would be most efficacious to develop technologies to therapeutically target and direct mitochondrial repair in stem cells, as a unified strategy to combat aging-related degenerative diseases in the future.

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Source
http://dx.doi.org/10.1016/j.semcdb.2016.02.005DOI Listing

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