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SCFRMF mediates degradation of the meiosis-specific recombinase DMC1

Author

Listed:
  • Wanyue Xu

    (Fudan University)

  • Yue Yu

    (Fudan University)

  • Juli Jing

    (China Agricultural University)

  • Zhen Wu

    (Fudan University)

  • Xumin Zhang

    (Fudan University)

  • Chenjiang You

    (Fudan University)

  • Hong Ma

    (the Pennsylvania State University)

  • Gregory P. Copenhaver

    (University of North Carolina at Chapel Hill
    University of North Carolina School of Medicine)

  • Yan He

    (China Agricultural University)

  • Yingxiang Wang

    (Fudan University
    South China Agricultural University
    Guangdong Laboratory for Lingnan Modern Agriculture)

Abstract

Meiotic recombination requires the specific RecA homolog DMC1 recombinase to stabilize strand exchange intermediates in most eukaryotes. Normal DMC1 levels are crucial for its function, yet the regulatory mechanisms of DMC1 stability are unknown in any organism. Here, we show that the degradation of Arabidopsis DMC1 by the 26S proteasome depends on F-box proteins RMF1/2-mediated ubiquitination. Furthermore, RMF1/2 interact with the Skp1 ortholog ASK1 to form the ubiquitin ligase complex SCFRMF1/2. Genetic analyses demonstrate that RMF1/2, ASK1 and DMC1 act in the same pathway downstream of SPO11-1 dependent meiotic DNA double strand break formation and that the proper removal of DMC1 is crucial for meiotic crossover formation. Moreover, six DMC1 lysine residues were identified as important for its ubiquitination but not its interaction with RMF1/2. Our results reveal mechanistic insights into how the stability of a key meiotic recombinase that is broadly conserved in eukaryotes is regulated.

Suggested Citation

  • Wanyue Xu & Yue Yu & Juli Jing & Zhen Wu & Xumin Zhang & Chenjiang You & Hong Ma & Gregory P. Copenhaver & Yan He & Yingxiang Wang, 2023. "SCFRMF mediates degradation of the meiosis-specific recombinase DMC1," Nature Communications, Nature, vol. 14(1), pages 1-17, December.
  • Handle: RePEc:nat:natcom:v:14:y:2023:i:1:d:10.1038_s41467-023-40799-5
    DOI: 10.1038/s41467-023-40799-5
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    1. John Jumper & Richard Evans & Alexander Pritzel & Tim Green & Michael Figurnov & Olaf Ronneberger & Kathryn Tunyasuvunakool & Russ Bates & Augustin Žídek & Anna Potapenko & Alex Bridgland & Clemens Me, 2021. "Highly accurate protein structure prediction with AlphaFold," Nature, Nature, vol. 596(7873), pages 583-589, August.
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