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Hydrolytically deficient MutS E694A is defective in the MutL-dependent activation of MutH and in the
Celia Baitinger1, Vickers Burdett, Paul Modrich
1Howard Hughes Medical Institute and Department of Biochemistry, Duke University Medical Center, Durham, North Carolina 27710, USA.
Abstract:
The roles of ATP binding and hydrolysis by MutS in mismatch repair are poorly understood. MutS E694A, in which Glu-694 of the Walker B motif is substituted with alanine, is defective in hydrolysis of bound ATP and has been reported to support MutL-dependent activation of the MutH d(GATC) endonuclease in a trans DNA activation assay (Junop, M. S., Obmolova, G., Rausch, K., Hsieh, P., and Yang, W. (2001) Mol. Cell 7, 1-12). Because the MutH trans activation assay used in these previous studies was characterized by high background and low efficiency, we have re-evaluated the activities of MutS E694A. In contrast to native MutS, which can be isolated in a nucleotide-free form, purified MutS E694A contains 1.0 mol of bound ATP per dimer equivalent, and substoichiometric levels of bound ADP (0.08-0.58 mol/dimer), consistent with the suggestion that the ADP.MutS.ATP complex comprises a significant fraction of the protein in solution (Bjornson, K. P. and Modrich, P. (2003) J. Biol. Chem. 278, 18557-18562). In the presence of Mg2+, endogenous ATP is hydrolyzed with a rate constant of 0.12 min-1 at 30 degrees C, and hydrolysis yields a protein that displays increased specificity for heteroduplex DNA. As observed with wild type MutS, ATP can promote release of MutS E694A from a mismatch. However, the mutant protein is defective in the methyl-directed, mismatch- and MutL-dependent cis activation of MutH endonuclease on a 6.4-kilobase pair heteroduplex, displaying only 1 to 2% of the activity of wild type MutS. The mutant protein also fails to support normal assembly of the MutS.MutL.DNA ternary complex. Although a putative ternary complex can be observed in the presence of MutS E694A, assembly of this structure displays little if any dependence on a mismatched base pair.
Insights
The MutS E694A mutant protein, defective in ATP hydrolysis, impairs DNA mismatch repair by failing to properly activate MutH endonuclease and assemble the MutS.MutL.DNA complex. This study clarifies the essential role of ATP hydrolysis in MutS function during DNA repair.
Area of Science:
- Molecular Biology
- DNA Repair Mechanisms
- Enzymology
Background:
- The precise roles of ATP binding and hydrolysis by MutS in DNA mismatch repair remain incompletely understood.
- Previous studies using a MutH trans activation assay suggested MutS E694A supports MutL-dependent MutH endonuclease activation, but this assay had limitations.
Purpose of the Study:
- To re-evaluate the activities of the MutS E694A mutant protein using a refined assay.
- To investigate the impact of impaired ATP hydrolysis on MutS function in DNA mismatch repair.
Main Methods:
- Purification and characterization of the MutS E694A mutant protein, assessing bound nucleotide content.
- Measurement of ATP hydrolysis rates in the presence of Mg2+.
- Evaluation of MutS E694A's ability to support MutH endonuclease activation (cis and trans assays) and MutS.MutL.DNA ternary complex assembly.
Main Results:
- Purified MutS E694A contains bound ATP and substoichiometric ADP, indicating a stable ADP.MutS.ATP complex.
- MutS E694A exhibits impaired methyl-directed, mismatch-, and MutL-dependent cis activation of MutH endonuclease, showing only 1-2% of wild-type activity.
- The mutant protein fails to support normal assembly of the MutS.MutL.DNA ternary complex, with assembly showing little dependence on DNA mismatch.
Conclusions:
- ATP hydrolysis by MutS is crucial for efficient DNA mismatch repair, specifically for MutH endonuclease activation and proper assembly of the MutS.MutL.DNA repair complex.
- The MutS E694A mutant's defect in ATP hydrolysis leads to a failure in recruiting MutH and forming a functional repair complex, highlighting the importance of nucleotide cycling.
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