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Published on: June 26, 2020
Mdb1, a fission yeast homolog of human MDC1, modulates DNA damage response and mitotic spindle function
Yi Wei1, Hai-Tao Wang2, Yonggong Zhai3
1College of Life Sciences, Beijing Normal University, Beijing, China; National Institute of Biological Sciences, Beijing, China.
Abstract:
During eukaryotic DNA damage response (DDR), one of the earliest events is the phosphorylation of the C-terminal SQ motif of histone H2AX (H2A in yeasts). In human cells, phosphorylated H2AX (γH2AX) is recognized by MDC1, which serves as a binding platform for the accumulation of a myriad of DDR factors on chromatin regions surrounding DNA lesions. Despite its important role in DDR, no homolog of MDC1 outside of metazoans has been described. Here, we report the characterization of Mdb1, a protein from the fission yeast Schizosaccharomyces pombe, which shares significant sequence homology with human MDC1 in their C-terminal tandem BRCT (tBRCT) domains. We show that in vitro, recombinant Mdb1 protein binds a phosphorylated H2A (γH2A) peptide, and the phospho-specific binding requires two conserved phospho-binding residues in the tBRCT domain of Mdb1. In vivo, Mdb1 forms nuclear foci at DNA double strand breaks (DSBs) induced by the HO endonuclease and ionizing radiation (IR). IR-induced Mdb1 focus formation depends on γH2A and the phospho-binding residues of Mdb1. Deleting the mdb1 gene does not overtly affect DNA damage sensitivity in a wild type background, but alters the DNA damage sensitivity of cells lacking another γH2A binder Crb2. Overexpression of Mdb1 causes severe DNA damage sensitivity in a manner that requires the interaction between Mdb1 and γH2A. During mitosis, Mdb1 localizes to spindles and concentrates at spindle midzones at late mitosis. The spindle midzone localization of Mdb1 requires its phospho-binding residues, but is independent of γH2A. Loss of Mdb1 or mutating its phospho-binding residues makes cells more resistant to the microtubule depolymerizing drug thiabendazole. We propose that Mdb1 performs dual roles in DDR and mitotic spindle regulation.
Insights
Researchers identified Mdb1, a protein in fission yeast, that binds phosphorylated histone H2A (γH2A) and plays a role in DNA damage response and mitotic spindle regulation. This discovery reveals a conserved mechanism for DNA repair and cell division.
Area of Science:
- Molecular Biology
- Cell Biology
- Genetics
Background:
- Histone H2AX phosphorylation (γH2AX) is crucial for eukaryotic DNA damage response (DDR).
- MDC1 protein in metazoans binds γH2AX and recruits DDR factors.
- No MDC1 homolog was previously identified outside metazoans.
Purpose of the Study:
- To characterize Mdb1, a novel protein from fission yeast with homology to human MDC1.
- To investigate Mdb1's role in DNA double-strand break repair and mitotic spindle regulation.
Main Methods:
- In vitro binding assays using recombinant Mdb1 and phosphorylated H2A peptides.
- In vivo studies in Schizosaccharomyces pombe involving DNA double-strand break induction (HO endonuclease, ionizing radiation).
- Genetic analysis including gene deletion, overexpression, and mutational studies of Mdb1.
- Microscopy to observe Mdb1 localization during the cell cycle and response to DNA damage.
Main Results:
- Recombinant Mdb1 binds phosphorylated H2A (γH2A) via conserved tandem BRCT (tBRCT) domains.
- Mdb1 forms nuclear foci at DNA double-strand breaks, dependent on γH2A and its phospho-binding residues.
- Mdb1 exhibits dual localization: nuclear foci at DNA damage sites and association with mitotic spindles, particularly the midzone.
- Mdb1's spindle localization requires its phospho-binding residues but is independent of γH2A.
- Mdb1 influences DNA damage sensitivity, especially in combination with other DDR factors, and affects sensitivity to microtubule-disrupting drugs.
Conclusions:
- Mdb1 is a functional homolog of MDC1 in fission yeast, demonstrating conserved phospho-dependent binding to γH2A.
- Mdb1 plays a dual role in both DNA damage response and mitotic spindle regulation.
- The findings suggest a conserved mechanism for sensing DNA damage and highlight Mdb1's importance in cell division fidelity.
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