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Rejuvenation of adult stem cells: is age-associated dysfunction epigenetic?
Andrew R Mendelsohn1, James W Larrick
1Panorama Research Institute and Regenerative Sciences Institute, Sunnyvale, California 94089, USA. amend@regensci.org
Abstract:
The dysfunctional changes of aging are generally believed to be irreversible due to the accumulation of molecular and cellular damage within an organism's somatic cells and tissues. However, the importance of potentially reversible cell signaling and epigenetic changes in causing dysfunction has not been thoroughly investigated. Striking evidence that increased oxidative stress associated with hematopoietic stem cells (HSCs) from aging mice causes dysfunction has been reported. Forced expression of SIRT3, which activates the reactive oxygen species (ROS) scavenger superoxide dismutase 2 (SOD2) by de-acetylation to reduce oxidative stress, functionally rejuvenates mouse HSCs. These data, combined with numerous other reports, suggest that ROS act as a signal transducer to play a critical regulatory role in HSCs and at least in some other stem cells. It is likely that ectopic expression of SIRT3 restores homeostasis in gene expression networks sensitive to oxidative stress. This result was surprising because age-associated damage from impaired DNA repair had been thought to be irreversible in old HSCs. The effect of up-regulated SIRT3 in HSCs is one of first examples in which intrinsic cellular aging, not apparently associated with changes in the micro-environment, was reversed. However, the stability of rejuvenation in the absence of continued supplemental SIRT3 expression was not investigated. These data are consistent with a hypothesis that potentially reversible processes, such as aberrant signaling and epigenetic drift, are relevant to cellular aging. If true, rejuvenation of at least some aged cells may be simpler than generally appreciated.
Insights
Aging in hematopoietic stem cells (HSCs) may be reversible. Boosting SIRT3 expression reduced oxidative stress and rejuvenated aged mouse HSCs, suggesting cellular aging processes can be reversed.
Area of Science:
- Gerontology
- Stem Cell Biology
- Molecular Biology
Background:
- Aging is characterized by irreversible molecular and cellular damage.
- Hematopoietic stem cell (HSC) dysfunction in aging is linked to oxidative stress.
- The role of reversible signaling and epigenetic changes in aging remains under-explored.
Purpose of the Study:
- To investigate the potential for reversing cellular aging in HSCs.
- To explore the role of SIRT3 in mitigating age-related HSC dysfunction.
Main Methods:
- Utilized aging mouse models.
- Investigated the effects of forced SIRT3 expression in HSCs.
- Assessed changes in oxidative stress and HSC function.
Main Results:
- Forced SIRT3 expression rejuvenated aging mouse HSCs.
- SIRT3 activation reduced oxidative stress by upregulating SOD2.
- Rejuvenation occurred independently of micro-environmental changes, suggesting intrinsic cellular reversal.
Conclusions:
- Cellular aging, particularly in HSCs, may be reversible through interventions targeting signaling pathways.
- Oxidative stress and aberrant signaling are key contributors to cellular aging.
- Reversing intrinsic cellular aging might be more achievable than previously thought.
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