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Phosphopeptide Analysis of Rodent Epididymal Spermatozoa
Published on: December 30, 2014
Phosphoproteomics of ATR signaling in mouse testes
Jennie R Sims1, Vitor M Faça1,2, Catalina Pereira3
1Department of Molecular Biology and Genetics, Weill Institute for Cell and Molecular Biology, Cornell University, Ithaca, United States.
Abstract:
The phosphatidylinositol 3' kinase (PI3K)-related kinase ATR is crucial for mammalian meiosis. ATR promotes meiotic progression by coordinating key events in DNA repair, meiotic sex chromosome inactivation (MSCI), and checkpoint-dependent quality control during meiotic prophase I. Despite its central roles in meiosis, the ATR-dependent meiotic signaling network remains largely unknown. Here, we used phosphoproteomics to define ATR signaling events in testes from mice following chemical and genetic ablation of ATR signaling. Quantitative analysis of phosphoproteomes obtained after germ cell-specific genetic ablation of the ATR activating 9-1-1 complex or treatment with ATR inhibitor identified over 14,000 phosphorylation sites from testes samples, of which 401 phosphorylation sites were found to be dependent on both the 9-1-1 complex and ATR. Our analyses identified ATR-dependent phosphorylation events in crucial DNA damage signaling and DNA repair proteins including TOPBP1, SMC3, MDC1, RAD50, and SLX4. Importantly, we identified ATR and RAD1-dependent phosphorylation events in proteins involved in mRNA regulatory processes, including SETX and RANBP3, whose localization to the sex body was lost upon ATR inhibition. In addition to identifying the expected ATR-targeted S/T-Q motif, we identified enrichment of an S/T-P-X-K motif in the set of ATR-dependent events, suggesting that ATR promotes signaling via proline-directed kinase(s) during meiosis. Indeed, we found that ATR signaling is important for the proper localization of CDK2 in spermatocytes. Overall, our analysis establishes a map of ATR signaling in mouse testes and highlights potential meiotic-specific actions of ATR during prophase I progression.
Insights
The study reveals key ATR signaling pathways essential for male meiosis, identifying novel targets involved in DNA repair and mRNA regulation. This research maps ATR
Area of Science:
- Cell Biology
- Molecular Biology
- Genetics
Background:
- The PI3K-related kinase ATR is vital for mammalian meiosis, regulating DNA repair, sex chromosome inactivation, and quality control.
- The specific ATR-dependent signaling network during meiosis remains poorly understood.
Purpose of the Study:
- To elucidate the ATR-dependent signaling network in mouse testes using phosphoproteomics.
- To identify novel ATR targets and regulatory mechanisms during meiotic prophase I.
Main Methods:
- Utilized phosphoproteomics on mouse testes following genetic or chemical ablation of ATR signaling.
- Analyzed over 14,000 phosphorylation sites to identify ATR-dependent events.
Main Results:
- Identified 401 ATR-dependent phosphorylation sites, including those in DNA repair proteins (e.g., TOPBP1, SMC3) and mRNA regulators (e.g., SETX, RANBP3).
- Discovered ATR-dependent phosphorylation of an S/T-P-X-K motif, suggesting proline-directed kinase involvement.
- Found ATR signaling is crucial for CDK2 localization in spermatocytes.
Conclusions:
- Established a comprehensive map of ATR signaling in mouse testes.
- Highlighted potential meiotic-specific roles of ATR in regulating DNA repair, mRNA processing, and chromosome dynamics during prophase I.

