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BimD/SPO76 is at the interface of cell cycle progression, chromosome morphogenesis, and recombination
D van Heemst1, E Kafer, T John
1Institut de Génétique et Microbiologie, UMR 8621, Université Paris Sud, 91405 Orsay Cedex, France.
Abstract:
BIMD of Aspergillus nidulans belongs to a highly conserved protein family implicated, in filamentous fungi, in sister-chromatid cohesion and DNA repair. We show here that BIMD is chromosome associated at all stages, except from late prophase through anaphase, during mitosis and meiosis, and is involved in several aspects of both programs. First, bimD(+) function must be executed during S through M. Second, in bimD6 germlings, mitotic nuclear divisions and overall cellular program occur more rapidly than in wild type. Thus, BIMD, an abundant chromosomal protein, is a negative regulator of normal cell cycle progression. Third, bimD6 reduces the level of mitotic interhomolog recombination but does not alter the ratio between crossover and noncrossover outcomes. Moreover, bimD6 is normal for intrachromosomal recombination. Therefore, BIMD is probably not involved in the enzymology of recombinational repair per se. Finally, during meiosis, staining of the Sordaria ortholog Spo76p delineates robust chromosomal axes, whereas BIMD stains all chromatin. SPO76 and bimD are functional homologs with respect to their roles in mitotic chromosome metabolism but not in meiosis. We propose that BIMD exerts its diverse influences on cell cycle progression as well as chromosome morphogenesis and recombination by modulating chromosome structure.
Insights
BIMD, a chromosomal protein in Aspergillus nidulans, acts as a negative regulator of cell cycle progression. It influences mitosis and meiosis by modulating chromosome structure, impacting cell division and recombination.
Area of Science:
- Molecular Biology
- Cell Biology
- Genetics
Background:
- BIMD is a conserved protein in filamentous fungi, crucial for sister-chromatid cohesion and DNA repair.
- Its role in mitotic and meiotic processes is not fully understood.
Purpose of the Study:
- To investigate the function of BIMD in Aspergillus nidulans during mitosis and meiosis.
- To determine BIMD's role in cell cycle regulation, recombination, and chromosome structure.
Main Methods:
- Analysis of bimD6 mutant germlings.
- Chromosome association studies during mitosis and meiosis.
- Recombination assays (mitotic interhomolog, intrachromosomal).
- Comparison with Sordaria ortholog Spo76p.
Main Results:
- BIMD is chromosome-associated throughout cell cycle, except during late prophase to anaphase.
- bimD6 mutants exhibit accelerated mitotic nuclear divisions and cell cycle progression.
- bimD6 reduces mitotic interhomolog recombination but does not affect intrachromosomal recombination.
- BIMD and Spo76p show functional homology in mitosis but not meiosis.
Conclusions:
- BIMD acts as a negative regulator of cell cycle progression in Aspergillus nidulans.
- BIMD's functions in chromosome metabolism, cell cycle, and recombination are likely mediated by modulating chromosome structure.
- While homologous to Spo76p in mitotic roles, BIMD has distinct meiotic functions.
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