Detailed Information on Publication Record
2004
Role of ATP hydrolysis in the antirecombinase function of Saccharomyces cerevisiae Srs2 protein.
KREJČÍ, Lumír, Margaret MACRIS, Stephen VAN KOMEN, Jane VILLEMAIN, Tom ELLENBERGER et. al.Basic information
Original name
Role of ATP hydrolysis in the antirecombinase function of Saccharomyces cerevisiae Srs2 protein.
Name in Czech
Úloha ATP hydrolýz pro anti-rekombinační aktivitu proteinu Srs2
Authors
KREJČÍ, Lumír (203 Czech Republic, guarantor), Margaret MACRIS (840 United States of America), Stephen VAN KOMEN (840 United States of America), Jane VILLEMAIN (840 United States of America), Tom ELLENBERGER (840 United States of America), Hannah KLEIN (840 United States of America) and Patrick SUNG (840 United States of America)
Edition
Journal of Biological Chemistry, Bethesda, USA, Amer. Soc. Biochem. Mol. Biol. 2004, 0021-9258
Other information
Language
English
Type of outcome
Článek v odborném periodiku
Field of Study
10600 1.6 Biological sciences
Country of publisher
United States of America
Confidentiality degree
není předmětem státního či obchodního tajemství
References:
Impact factor
Impact factor: 6.355
Organization unit
Faculty of Medicine
UT WoS
000221570900050
Keywords in English
helicase; ATPase; Srs2; recombination; repair
Tags
Tags
International impact, Reviewed
Změněno: 15/5/2009 22:56, doc. Mgr. Lumír Krejčí, Ph.D.
V originále
Mutants of the Saccharomyces cerevisiae SRS2 gene are hyperrecombinogenic and sensitive to genotoxic agents, and they exhibit a synthetic lethality with mutations that compromise DNA repair or other chromosomal processes. In addition, srs2 mutants fail to adapt or recover from DNA damage checkpoint-imposed G2/M arrest. These phenotypic consequences of ablating SRS2 function are effectively overcome by deleting genes of the RAD52 epistasis group that promote homologous recombination, implicating an untimely recombination as the underlying cause of the srs2 mutant phenotypes. TheSRS2-encodedproteinhasasingle-stranded (ss) DNA-dependent ATPase activity, a DNA helicase activity, and an ability to disassemble the Rad51-ssDNA nucleoprotein filament, which is the key catalytic intermediate in Rad51-mediated recombination reactions. To address the role of ATP hydrolysis in Srs2 protein function, we have constructed two mutant variants that are altered in the Walker type A sequence involved in the binding and hydrolysis of ATP. The srs2 K41A and srs2 K41R mutant proteins are both devoid of ATPase and helicase activities and the ability to displace Rad51 from ssDNA. Accordingly, yeast strains harboring these srs2 mutations are hyperrecombinogenic and sensitive to methylmethane sulfonate, and they become inviable upon introducing either the sgs1Delta or rad54Delta mutation. These results highlight the importance of the ATP hydrolysisfueled DNA motor activity in SRS2 functions.
In Czech
Vliv ATP na aktivitu Srs2