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Published on: September 16, 2022
The C. elegans DSB-2 protein reveals a regulatory network that controls competence for meiotic DSB formation and
Simona Rosu1, Karl A Zawadzki, Ericca L Stamper
1Department of Developmental Biology, Stanford University School of Medicine, Stanford, California, USA.
Abstract:
For most organisms, chromosome segregation during meiosis relies on deliberate induction of DNA double-strand breaks (DSBs) and repair of a subset of these DSBs as inter-homolog crossovers (COs). However, timing and levels of DSB formation must be tightly controlled to avoid jeopardizing genome integrity. Here we identify the DSB-2 protein, which is required for efficient DSB formation during C. elegans meiosis but is dispensable for later steps of meiotic recombination. DSB-2 localizes to chromatin during the time of DSB formation, and its disappearance coincides with a decline in RAD-51 foci marking early recombination intermediates and precedes appearance of COSA-1 foci marking CO-designated sites. These and other data suggest that DSB-2 and its paralog DSB-1 promote competence for DSB formation. Further, immunofluorescence analyses of wild-type gonads and various meiotic mutants reveal that association of DSB-2 with chromatin is coordinated with multiple distinct aspects of the meiotic program, including the phosphorylation state of nuclear envelope protein SUN-1 and dependence on RAD-50 to load the RAD-51 recombinase at DSB sites. Moreover, association of DSB-2 with chromatin is prolonged in mutants impaired for either DSB formation or formation of downstream CO intermediates. These and other data suggest that association of DSB-2 with chromatin is an indicator of competence for DSB formation, and that cells respond to a deficit of CO-competent recombination intermediates by prolonging the DSB-competent state. In the context of this model, we propose that formation of sufficient CO-competent intermediates engages a negative feedback response that leads to cessation of DSB formation as part of a major coordinated transition in meiotic prophase progression. The proposed negative feedback regulation of DSB formation simultaneously (1) ensures that sufficient DSBs are made to guarantee CO formation and (2) prevents excessive DSB levels that could have deleterious effects.
Insights
Researchers identified the DSB-2 protein, crucial for DNA double-strand break (DSB) formation during C. elegans meiosis. DSB-2 ensures sufficient DSBs for crossovers while preventing excess breaks, maintaining genome integrity.
Area of Science:
- Genetics
- Cell Biology
- Molecular Biology
Background:
- Meiosis requires programmed DNA double-strand breaks (DSBs) for homologous recombination and crossover (CO) formation.
- Precise control of DSB levels is critical to prevent genome instability during meiosis.
Purpose of the Study:
- To identify proteins regulating DSB formation during C. elegans meiosis.
- To elucidate the role of DSB-2 in meiotic recombination and its regulation.
Main Methods:
- Immunofluorescence microscopy to track protein localization (DSB-2, RAD-51, COSA-1) during meiosis.
- Analysis of meiotic mutants affecting DSB formation and CO progression.
- Assessment of DSB-2 chromatin association dynamics.
Main Results:
- DSB-2 is essential for efficient DSB formation in C. elegans meiosis but not for later recombination steps.
- DSB-2 chromatin localization correlates with DSB formation timing and precedes CO designation.
- DSB-2 association with chromatin is prolonged in mutants with defects in DSB or CO formation, suggesting a feedback mechanism.
Conclusions:
- DSB-2 and DSB-1 promote DSB formation competence during meiosis.
- DSB-2 chromatin association serves as an indicator of DSB competence.
- A negative feedback loop regulates DSB formation, ensuring adequate DSBs for COs while preventing excessive levels, thereby coordinating meiotic prophase progression.
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