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A Suppressor Screen for the Characterization of Genetic Links Regulating Chronological Lifespan in Saccharomyces cerevisiae
Published on: September 17, 2020
From molecular damage to regulatory constraint: epigenetic and metabolic limits of cellular plasticity in aging
Antoni R Godlewski1, Tomasz Dziaman1
1Department of Clinical Biochemistry, Collegium Medicum in Bydgoszcz, Nicolaus Copernicus University in Toruń, Bydgoszcz, Poland.
Abstract:
Aging is most often portrayed as the progressive buildup of molecular damage, yet this conventional view leaves much unexplained. Over time, cells and tissues appear to lose the regulatory flexibility that allows them to adapt, repair, and reconfigure their functional states. Genomic instability, metabolic imbalance, mitochondrial dysfunction, and proteostatic decline converge on aging, but their effects focus on chromatin organization, transcriptional coordination, and signaling networks that maintain cellular identity. In this review, we propose that aging can be usefully viewed as a progressive restriction of epigenetic and regulatory plasticity, rather than as the simple accumulation of lesions. Pathways such as Wnt signaling, TET-dependent DNA demethylation, and metabolic sensors including AMPK, mTOR, and sirtuins create an interconnected landscape that links environmental and metabolic conditions with long-term cellular behavior. As this landscape becomes increasingly rigid and constrained, cells retain viability but lose their capacity for dynamic responses, stabilizing in low-plasticity states that include cellular senescence. Framing aging as a shift from adaptive plasticity toward regulatory rigidity offers a possible integrative lens on classical hallmarks and epigenetic aging signatures, without replacing existing models. Rather than targeting individual hallmarks in isolation, future approaches may need to complement hallmark-focused strategies by restoring dynamic balance within epigenetic and signaling networks that preserve tissue-level homeostasis and regenerative potential, thereby suggesting specific, testable predictions for interventions acting on metabolic-epigenetic axes.
Insights
Aging is characterized by a loss of cellular regulatory flexibility, shifting from adaptive plasticity to restricted epigenetic and signaling networks. This perspective offers a new lens on aging hallmarks and suggests targeting metabolic-epigenetic axes for interventions.
Area of Science:
- Cellular Biology
- Epigenetics
- Aging Research
Background:
- Conventional aging theories focus on molecular damage accumulation.
- Existing models struggle to explain the loss of cellular adaptability over time.
- Key cellular processes like genomic stability and metabolism are affected in aging.
Purpose of the Study:
- To propose a new framework for understanding aging as a decline in epigenetic and regulatory plasticity.
- To integrate various aging hallmarks under a unified concept of regulatory rigidity.
- To suggest novel therapeutic strategies targeting metabolic-epigenetic interactions.
Main Methods:
- Review of existing literature on aging hallmarks and epigenetic regulation.
- Analysis of signaling pathways (e.g., Wnt, TET-dependent DNA demethylation) and metabolic sensors (AMPK, mTOR, sirtuins).
- Conceptual integration of molecular damage, epigenetic changes, and cellular behavior.
Main Results:
- Aging is reframed as a progressive restriction of epigenetic and regulatory plasticity.
- Environmental and metabolic factors influence cellular behavior through interconnected epigenetic and signaling landscapes.
- Cells stabilize in low-plasticity states, including cellular senescence, as regulatory rigidity increases.
Conclusions:
- Viewing aging as a shift toward regulatory rigidity provides an integrative perspective on aging hallmarks.
- Future interventions should focus on restoring dynamic balance in epigenetic and signaling networks.
- Targeting metabolic-epigenetic axes may enhance tissue homeostasis and regenerative potential.
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