Abstract
Bacteriophage T7 DNA helicase is a ring-shaped hexamer that catalyzes duplex DNA unwinding using dTTP hydrolysis as an energy source. Of the six potential nucleotide binding sites on the hexamer, we have found that three are noncatalytic sites and three are catalytic sites. The noncatalytic sites bind nucleotides with a high affinity, but dTTPs bound to these sites do not dissociate or hydrolyze through many dTTPase turnovers at the catalytic sites. The catalytic sites show strong cooperativity which leads to sequential binding and hydrolysis of dTTP. The elucidated dTTPase mechanism of the catalytic sites of T7 helicase is remarkably similar to the binding change mechanism of the ATP synthase. Based on the similarity, a general mechanism for hexameric helicases is proposed. In this mechanism, an F1-ATPase-like rotational movement around the single-stranded DNA, which is bound through the central hole of the hexamer, is proposed to lead to unidirectional translocation along single-stranded DNA and duplex DNA unwinding.
MeSH Terms
Bacteriophage T7/enzymology
Binding Sites
DNA Helicases/chemistry,isolation & purification,metabolism
Kinetics
Macromolecular Substances
Models, Structural
Proton-Translocating ATPases/chemistry,metabolism
Pyrophosphatases/chemistry,isolation & purification,metabolism
Thymine Nucleotides/metabolism
Chemicals
Macromolecular Substances
Thymine Nucleotides
Pyrophosphatases
thymidine-triphosphatase
Proton-Translocating ATPases
DNA Helicases
thymidine 5'-triphosphate
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Hingorani M M
Department of Biochemistry, Ohio State University, 484 West 12th Avenue, Columbus, OH 43210, USA.
Washington M T
Moore K C
Patel S S
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