Continuous elimination of oxidized nucleotides is necessary to prevent rapid onset of cellular senescence

Priyamvada Rai1, Tamer T Onder, Jennifer J Young

  • 1Whitehead Institute for Biomedical Research and Ludwig Center for Molecular Oncology, 9 Cambridge Center, Cambridge, MA 02142, USA.

Insights

Oxidative DNA damage, specifically 8-oxoguanine accumulation from MTH1 suppression, triggers cellular senescence independently of reactive oxygen species (ROS) levels. This finding highlights oxidized nucleotides as key drivers of aging.

Area of Science:

  • Cellular Biology
  • Molecular Biology
  • Aging Research

Background:

  • Reactive oxygen species (ROS) are implicated in aging, but their direct role in initiating cellular senescence is unclear due to pleiotropic effects.
  • Oxidative DNA damage is a suspected trigger for senescence, yet isolating its specific contribution has been challenging.

Purpose of the Study:

  • To investigate the role of oxidative DNA damage, specifically 8-oxoguanine, in triggering cellular senescence.
  • To decouple the effects of 8-oxoguanine accumulation from ROS levels.

Main Methods:

  • Suppressed MTH1 expression to increase intracellular 8-oxoguanine levels, decoupling it from ROS.
  • Utilized primary and telomerase-immortalized human skin fibroblasts.
  • Cultured cells under normal and low oxygen conditions (3%).

Main Results:

  • Suppression of MTH1 led to increased 8-oxoguanine and rapid cellular senescence without altering ROS levels.
  • The induced senescent phenotype mimicked replicative senescence, showing SA beta-gal activity, DNA breaks, and elevated p21, p53, and p16 protein levels.
  • Low oxygen tension largely prevented the MTH1 suppression-induced senescence.

Conclusions:

  • The nucleotide pool is a critical target of intracellular ROS.
  • Oxidized nucleotides, like 8-oxoguanine, can rapidly induce cell senescence through pathways similar to replicative senescence.
  • Elimination of oxidized nucleotides is crucial for preventing premature cellular aging.

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