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Published on: October 11, 2022
Coordination of Double Strand Break Repair and Meiotic Progression in Yeast by a Mek1-Ndt80 Negative Feedback Loop
Evelyn Prugar1, Cameron Burnett1, Xiangyu Chen1
1Department of Biochemistry and Cell Biology, Stony Brook University, New York 11794-5215.
Abstract:
During meiosis, homologous chromosomes are physically connected by crossovers and sister chromatid cohesion. Interhomolog crossovers are generated by the highly regulated repair of programmed double strand breaks (DSBs). The meiosis-specific kinase Mek1 is critical for this regulation. Mek1 downregulates the mitotic recombinase Rad51, indirectly promoting interhomolog strand invasion by the meiosis-specific recombinase Dmc1. Mek1 also promotes the formation of crossovers that are distributed throughout the genome by interference and is the effector kinase for a meiosis-specific checkpoint that delays entry into Meiosis I until DSBs have been repaired. The target of this checkpoint is a meiosis-specific transcription factor, Ndt80, which is necessary to express the polo-like kinase CDC5 and the cyclin CLB1 thereby allowing completion of recombination and meiotic progression. This work shows that Mek1 and Ndt80 negatively feedback on each other such that when DSB levels are high, Ndt80 is inactive due to high levels of Mek1 activity. As DSBs are repaired, chromosomes synapse and Mek1 activity is reduced below a threshold that allows activation of Ndt80. Ndt80 transcription of CDC5 results in degradation of Red1, a meiosis-specific protein required for Mek1 activation, thereby abolishing Mek1 activity completely. Elimination of Mek1 kinase activity allows Rad51-mediated repair of any remaining DSBs. In this way, cells do not enter Meiosis I until recombination is complete and all DSBs are repaired.
Insights
Meiosis involves programmed double-strand breaks (DSBs) repaired by recombination. The Mek1 kinase and Ndt80 transcription factor form a feedback loop, ensuring DSB repair and proper meiotic progression.
Area of Science:
- Cell Biology
- Genetics
- Molecular Biology
Background:
- Meiosis requires programmed double-strand breaks (DSBs) for homologous recombination and crossover formation.
- Sister chromatid cohesion and crossovers physically link homologous chromosomes during meiosis.
- Meiosis-specific proteins, including the kinase Mek1 and transcription factor Ndt80, regulate these processes.
Purpose of the Study:
- To elucidate the regulatory relationship between Mek1 kinase activity and Ndt80 transcription factor during meiotic recombination.
- To understand how this regulatory loop ensures the timely completion of DSB repair before Meiosis I entry.
Main Methods:
- Investigated the interplay between Mek1 activity and Ndt80 function in yeast meiosis.
- Analyzed the impact of DSB levels on Mek1 and Ndt80 activity.
- Examined the role of Ndt80 in regulating CDC5 expression and Red1 degradation.
Main Results:
- Mek1 negatively regulates Ndt80 activity when DSB levels are high.
- Ndt80 is activated as DSBs are repaired and Mek1 activity decreases.
- Ndt80-mediated CDC5 expression leads to Red1 degradation, inactivating Mek1 and allowing Rad51-mediated repair.
Conclusions:
- A negative feedback loop between Mek1 and Ndt80 ensures that meiotic recombination is completed before Meiosis I.
- This regulatory mechanism prevents premature entry into Meiosis I, guaranteeing genomic stability.
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