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Simultaneous Measurement of Superoxide/Hydrogen Peroxide and NADH Production by Flavin-containing Mitochondrial Dehydrogenases
Published on: February 24, 2018
Reactive Oxygen Species (ROS)-Activated ATM-Dependent Phosphorylation of Cytoplasmic Substrates Identified by
Sergei V Kozlov1, Ashley J Waardenberg2, Kasper Engholm-Keller3
1From the ‡University of Queensland Centre for Clinical Research, University of Queensland, Royal Brisbane & Women's Hospital Campus, Herston, Brisbane, QLD 4029 Australia;
Abstract:
Ataxia-telangiectasia, mutated (ATM) protein plays a central role in phosphorylating a network of proteins in response to DNA damage. These proteins function in signaling pathways designed to maintain the stability of the genome and minimize the risk of disease by controlling cell cycle checkpoints, initiating DNA repair, and regulating gene expression. ATM kinase can be activated by a variety of stimuli, including oxidative stress. Here, we confirmed activation of cytoplasmic ATM by autophosphorylation at multiple sites. Then we employed a global quantitative phosphoproteomics approach to identify cytoplasmic proteins altered in their phosphorylation state in control and ataxia-telangiectasia (A-T) cells in response to oxidative damage. We demonstrated that ATM was activated by oxidative damage in the cytoplasm as well as in the nucleus and identified a total of 9,833 phosphorylation sites, including 6,686 high-confidence sites mapping to 2,536 unique proteins. A total of 62 differentially phosphorylated peptides were identified; of these, 43 were phosphorylated in control but not in A-T cells, and 19 varied in their level of phosphorylation. Motif enrichment analysis of phosphopeptides revealed that consensus ATM serine glutamine sites were overrepresented. When considering phosphorylation events, only observed in control cells (not observed in A-T cells), with predicted ATM sites phosphoSerine/phosphoThreonine glutamine, we narrowed this list to 11 candidate ATM-dependent cytoplasmic proteins. Two of these 11 were previously described as ATM substrates (HMGA1 and UIMCI/RAP80), another five were identified in a whole cell extract phosphoproteomic screens, and the remaining four proteins had not been identified previously in DNA damage response screens. We validated the phosphorylation of three of these proteins (oxidative stress responsive 1 (OSR1), HDGF, and ccdc82) as ATM dependent after H2O2 exposure, and another protein (S100A11) demonstrated ATM-dependence for translocation from the cytoplasm to the nucleus. These data provide new insights into the activation of ATM by oxidative stress through identification of novel substrates for ATM in the cytoplasm.
Insights
Oxidative stress activates the ATM protein in the cytoplasm, leading to DNA repair. This study identifies new ATM targets in the cytoplasm, enhancing our understanding of cellular responses to DNA damage.
Area of Science:
- Cellular Biology
- Molecular Biology
- Biochemistry
Background:
- The Ataxia-telangiectasia, mutated (ATM) protein is crucial for DNA damage response, regulating genome stability.
- ATM kinase activation by stimuli like oxidative stress is known, but its cytoplasmic role is less understood.
Purpose of the Study:
- To investigate the role of cytoplasmic ATM activation in response to oxidative stress.
- To identify novel cytoplasmic ATM substrates involved in DNA damage signaling.
Main Methods:
- Global quantitative phosphoproteomics was used to analyze protein phosphorylation changes in control and ATM-deficient (A-T) cells.
- Mass spectrometry identified differentially phosphorylated peptides and enriched for ATM consensus motifs.
- Candidate ATM substrates were validated using biochemical assays and cellular localization studies.
Main Results:
- Oxidative damage activated cytoplasmic ATM, evidenced by autophosphorylation and altered phosphorylation of numerous proteins.
- A total of 6,686 high-confidence phosphorylation sites on 2,536 proteins were identified.
- Eleven candidate ATM-dependent cytoplasmic proteins were identified, including four novel substrates (OSR1, HDGF, ccdc82, S100A11).
Conclusions:
- Cytoplasmic ATM plays a significant role in responding to oxidative stress and DNA damage.
- This study expands the known substrates of ATM, revealing new players in DNA damage response and genome stability pathways.
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