Fission yeast rad51 and dmc1, two efficient DNA recombinases forming helical nucleoprotein filaments.

Détails

ID Serval
serval:BIB_8BEB06037F95
Type
Article: article d'un périodique ou d'un magazine.
Collection
Publications
Institution
Titre
Fission yeast rad51 and dmc1, two efficient DNA recombinases forming helical nucleoprotein filaments.
Périodique
Molecular and Cellular Biology
Auteur⸱e⸱s
Sauvageau S., Stasiak A.Z., Banville I., Ploquin M., Stasiak A., Masson J.Y.
ISSN
0270-7306[print], 0270-7306[linking]
Statut éditorial
Publié
Date de publication
2005
Peer-reviewed
Oui
Volume
25
Numéro
11
Pages
4377-4387
Langue
anglais
Notes
Publication types: Journal Article ; Research Support, Non-U.S. Gov't
Publication Status: ppublish
Résumé
Homologous recombination is important for the repair of double-strand breaks during meiosis. Eukaryotic cells require two homologs of Escherichia coli RecA protein, Rad51 and Dmc1, for meiotic recombination. To date, it is not clear, at the biochemical level, why two homologs of RecA are necessary during meiosis. To gain insight into this, we purified Schizosaccharomyces pombe Rad51 and Dmc1 to homogeneity. Purified Rad51 and Dmc1 form homo-oligomers, bind single-stranded DNA preferentially, and exhibit DNA-stimulated ATPase activity. Both Rad51 and Dmc1 promote the renaturation of complementary single-stranded DNA. Importantly, Rad51 and Dmc1 proteins catalyze ATP-dependent strand exchange reactions with homologous duplex DNA. Electron microscopy reveals that both S. pombe Rad51 and Dmc1 form nucleoprotein filaments. Rad51 formed helical nucleoprotein filaments on single-stranded DNA, whereas Dmc1 was found in two forms, as helical filaments and also as stacked rings. These results demonstrate that Rad51 and Dmc1 are both efficient recombinases in lower eukaryotes and reveal closer functional and structural similarities between the meiotic recombinase Dmc1 and Rad51. The DNA strand exchange activity of both Rad51 and Dmc1 is most likely critical for proper meiotic DNA double-strand break repair in lower eukaryotes.
Mots-clé
Cell Cycle Proteins/genetics, Cell Cycle Proteins/metabolism, DNA Repair, DNA, Single-Stranded/metabolism, DNA-Binding Proteins/genetics, DNA-Binding Proteins/metabolism, Humans, Nucleoproteins/genetics, Nucleoproteins/metabolism, Protein Interaction Mapping, Rad51 Recombinase, Rec A Recombinases/genetics, Rec A Recombinases/metabolism, Recombination, Genetic, Schizosaccharomyces/enzymology, Schizosaccharomyces/genetics, Schizosaccharomyces pombe Proteins/genetics, Schizosaccharomyces pombe Proteins/metabolism, Two-Hybrid System Techniques
Pubmed
Web of science
Open Access
Oui
Création de la notice
24/01/2008 11:36
Dernière modification de la notice
20/08/2019 15:50
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