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The reverse gyrase helicase-like domain is a nucleotide-dependent switch that is attenuated by the topoisomerase domain
JournalArticle (Originalarbeit in einer wissenschaftlichen Zeitschrift)
 
ID 156750
Author(s) del Toro Duany, Y.; Jungblut, S. P.; Schmidt, A. S.; Klostermeier, D.
Author(s) at UniBasel Klostermeier, Dagmar
Year 2008
Title The reverse gyrase helicase-like domain is a nucleotide-dependent switch that is attenuated by the topoisomerase domain
Journal Nucleic Acids Research
Volume 36
Number 18
Pages / Article-Number 5882-5895
Abstract Reverse gyrase is a topoisomerase that introduces positive supercoils into DNA in an ATP-dependent manner. It is unique to hyperthermophilic archaea and eubacteria, and has been proposed to protect their DNA from damage at high temperatures. Cooperation between its N-terminal helicase-like and the C-terminal topoisomerase domain is required for positive supercoiling, but the precise role of the helicase-like domain is currently unknown. Here, the characterization of the isolated helicase-like domain from Thermotoga maritima reverse gyrase is presented. We show that the helicase-like domain contains all determinants for nucleotide binding and ATP hydrolysis. Its intrinsic ATP hydrolysis is significantly stimulated by ssDNA, dsDNA and plasmid DNA. During the nucleotide cycle, the helicase-like domain switches between high- and low-affinity states for dsDNA, while its affinity for ssDNA in the ATP and ADP states is similar. In the context of reverse gyrase, the differences in DNA affinities of the nucleotide states are smaller, and the DNA-stimulated ATPase activity is strongly reduced. This inhibitory effect of the topoisomerase domain decelerates the progression of reverse gyrase through the nucleotide cycle, possibly providing optimal coordination of ATP hydrolysis with the complex reaction of DNA supercoiling.
Publisher Oxford University Press
ISSN/ISBN 0305-1048 ; 1362-4962
edoc-URL http://edoc.unibas.ch/dok/A5259705
Full Text on edoc Available
Digital Object Identifier DOI 10.1093/nar/gkn587
Document type (ISI) Journal Article
 
   

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