Affiliation:
1. CSIRO Livestock Industries, Queensland Bioscience Precinct, St. Lucia Queensland Dominion 4067, Australia
Abstract
ABSTRACT
In
Escherichia coli
, interactions between the replication initiation protein DnaA, the β subunit of DNA polymerase III (the sliding clamp protein), and Hda, the recently identified DnaA-related protein, are required to convert the active ATP-bound form of DnaA to an inactive ADP-bound form through the accelerated hydrolysis of ATP. This rapid hydrolysis of ATP is proposed to be the main mechanism that blocks multiple initiations during cell cycle and acts as a molecular switch from initiation to replication. However, the biochemical mechanism for this crucial step in DNA synthesis has not been resolved. Using purified Hda and β proteins in a plate binding assay and Ni-nitrilotriacetic acid pulldown analysis, we show for the first time that Hda directly interacts with β in vitro. A new β-binding motif, a hexapeptide with the consensus sequence QL[SP]LPL, related to the previously identified β-binding pentapeptide motif (QL[SD]LF) was found in the amino terminus of the Hda protein. Mutants of Hda with amino acid changes in the hexapeptide motif are severely defective in their ability to bind β. A 10-amino-acid peptide containing the
E. coli
Hda β-binding motif was shown to compete with Hda for binding to β in an Hda-β interaction assay. These results establish that the interaction of Hda with β is mediated through the hexapeptide sequence. We propose that this interaction may be crucial to the events that lead to the inactivation of DnaA and the prevention of excess initiation of rounds of replication.
Publisher
American Society for Microbiology
Subject
Molecular Biology,Microbiology
Reference45 articles.
1. Bailey, T. L., and C. Elkan. 1994. Fitting a mixture model by expectation maximization to discover motifs in biopolymers. Proc. Xth Int. Conf. Intell. Syst. Mol. Biol. 2 : 28-36.
2. Becherel, O. J., R. P. P. Fuchs, and J. Wagner. 2002. Pivotal role of the β-clamp in translesion DNA synthesis and mutagenesis in E. coli cells. DNA Repair 1:703-708.
3. Bonner, C. A., P. T. Stukenberg, M. Rajagopalan, R. Eritja, M. O'Donnell, K. McEntee, H. Echols, and M. F. Goodman. 1992. Processive DNA synthesis by DNA polymerase II mediated by DNA polymerase III accessory proteins. J Biol. Chem. 267 : 11431-11438.
4. Bramhill, D., and A. Kornberg. 1988. Duplex opening by DnaA protein at novel sequences in initiation of replication at the origin of the E. coli chromosome. Cell 52 : 743-755.
5. Bullard, J. M., A. E. Pritchard, M. S. Song, B. P. Glover, A. Wieczorek, J. Chen, N. Janjic, and C. S. McHenry. 2002. A three-domain structure for the delta subunit of the DNA polymerase III holoenzyme delta domain III binds delta′ and assembles into the DnaX complex. J. Biol. Chem. 277 : 13246-13256.
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