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.
Abstract:
Reactive oxygen species (ROS) appear to play a role in limiting both cellular and organismic lifespan. However, because of their pleiotropic effects, it has been difficult to ascribe a specific role to ROS in initiating the process of cellular senescence. We have studied the effects of oxidative DNA damage on cell proliferation, believing that such damage is of central importance to triggering senescence. To do so, we devised a strategy to decouple levels of 8-oxoguanine, a major oxidative DNA lesion, from ROS levels. Suppression of MTH1 expression, which hydrolyzes 8-oxo-dGTP, was accompanied by increased total cellular 8-oxoguanine levels and caused early-passage primary and telomerase-immortalized human skin fibroblasts to rapidly undergo senescence, doing so without altering cellular ROS levels. This senescent phenotype recapitulated several salient features of replicative senescence, notably the presence of senescence-associated beta-galactosidase (SA beta-gal) activity, apparently irreparable genomic DNA breaks, and elevation of p21(Cip1), p53, and p16(INK4A) tumor suppressor protein levels. Culturing cells under low oxygen tension (3%) largely prevented the shMTH1-dependent senescent phenotype. These results indicate that the nucleotide pool is a critical target of intracellular ROS and that oxidized nucleotides, unless continuously eliminated, can rapidly induce cell senescence through signaling pathways very similar to those activated during replicative senescence.
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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