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Steady-state, Pre-steady-state, and Single-turnover Kinetic Measurement for DNA Glycosylase Activity
Published on: August 19, 2013
Single-turnover analysis of mutant human apurinic/apyrimidinic endonuclease
J A Lucas1, Y Masuda, R A Bennett
1Department of Biology, Northeastern University, Boston, Massachusetts 02115, USA.
Abstract:
Apurinic/apyrimidinic endonuclease (AP endo) is a key enzyme in the repair of oxidatively damaged DNA. Using single-turnover conditions, we recently described substrate binding parameters for wild type human AP endo. In this study, we utilized four enzyme mutants, D283A, D308A, D283A/D308A, and H309N, and assayed them under steady state and single-turnover conditions. The turnover number of the single aspartate mutants was decreased 10-30-fold in comparison to that of the wild type. The decrease in the turnover number was accompanied by a 17- and 50-fold decrease in the forward rate constant (kon) for substrate binding by D308A and D283A, respectively. The dissociation rate constant for substrate (koff) was unchanged for the D308A mutant but was 10 times faster for the D283A mutant than for the wild type. The apparent Km values for both of the single aspartate mutants were about equal to their respective KD values. To account for the kinetic behavior of the D308A mutant, it was necessary to insert a conformational change into the kinetic scheme. In contrast to the single aspartate mutants, the turnover number for the double mutant was 500-fold lower than that of the wild type, its apparent Km was 2.5-fold higher, and binding to substrate was weak. Mutation of His309 caused the greatest decrease in activity, resulting in a turnover number that was more than 30000-fold lower than that of the wild type and an apparent Km that was 13-fold higher, supporting the notion that His309 is intimately involved in catalysis. Molecular dynamics simulation techniques suggested that conversion of either aspartate to alanine resulted in major shifts in the spatial localization of key amino acids. Despite the fact that the two aspartates flank His309, the movement they engendered was distinct, consistent with the differences in catalytic behavior. We suggest that the conformation of the active site is largely maintained by the two aspartates, which enable efficient binding and cleavage of abasic site-containing DNA.
Insights
Apurinic/apyrimidinic endonuclease (AP endo) enzyme mutants show reduced DNA repair activity. His309 mutation severely impairs catalysis, while aspartate mutations affect substrate binding and enzyme conformation, crucial for DNA repair.
Area of Science:
- Biochemistry
- Molecular Biology
- DNA Repair Mechanisms
Background:
- Apurinic/apyrimidinic endonuclease (AP endo) is vital for repairing oxidatively damaged DNA.
- Previous studies characterized wild-type human AP endo's substrate binding under single-turnover conditions.
Purpose of the Study:
- To investigate the roles of specific amino acid residues (D283, D308, H309) in AP endo's function using enzyme mutants.
- To determine the kinetic parameters and catalytic efficiency of AP endo mutants under steady-state and single-turnover conditions.
Main Methods:
- Enzyme kinetics assays were performed on four AP endo mutants (D283A, D308A, D283A/D308A, H309N) under steady-state and single-turnover conditions.
- Kinetic parameters including turnover number (kcat), forward rate constant (kon), dissociation rate constant (koff), and apparent Km were determined.
- Molecular dynamics simulations were employed to analyze structural changes in the enzyme's active site.
Main Results:
- Single aspartate mutants (D283A, D308A) exhibited 10-30 fold lower turnover numbers compared to wild type.
- D283A showed a 50-fold decrease in kon and a 10-fold faster koff, while D308A required a conformational change model to explain its kinetics.
- The double mutant (D283A/D308A) had a 500-fold lower turnover number and weak substrate binding. The H309N mutant showed the most significant activity loss (>30,000-fold lower turnover), indicating His309's critical role in catalysis.
Conclusions:
- The aspartate residues (D283, D308) are crucial for maintaining the active site conformation, enabling efficient DNA substrate binding and cleavage.
- His309 is intimately involved in the catalytic process of AP endo.
- Mutations in these key residues significantly impair DNA repair capabilities, highlighting their importance in enzyme function.
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