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.

Frontiers in Aging
|July 11, 2026
PubMed

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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