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Updated: May 20, 2026

Application of Stopped-flow Kinetics Methods to Investigate the Mechanism of Action of a DNA Repair Protein
Published on: March 31, 2010
Disruption of the bacteriophage T4 Mre11 dimer interface reveals a two-state mechanism for exonuclease activity
Dustin W Albrecht1, Timothy J Herdendorf, Scott W Nelson
1Department of Biochemistry, Biophysics, and Molecular Biology, Iowa State University, Ames, Iowa 50011, USA.
Abstract:
The Mre11-Rad50 (MR) complex is a central player in DNA repair and is implicated in the processing of DNA ends caused by double strand breaks. Recent crystal structures of the MR complex suggest that several conformational rearrangements occur during its ATP hydrolysis cycle. A comparison of the Mre11 dimer interface from these structures suggests that the interface is dynamic in nature and may adopt several different arrangements. To probe the functional significance of the Mre11 dimer interface, we have generated and characterized a dimer disruption Mre11 mutant (L101D-Mre11). Although L101D-Mre11 binds to Rad50 and dsDNA with affinity comparable with the wild-type enzyme, it does not activate the ATP hydrolysis activity of Rad50, suggesting that the allosteric communication between Mre11 and Rad50 has been interrupted. Additionally, the dsDNA exonuclease activity of the L101D-MR complex has been reduced by 10-fold under conditions where processive exonuclease activity is required. However, we unexpectedly found that under steady state conditions, the nuclease activity of the L101D-MR complex is significantly greater than that of the wild-type complex. Based on steady state and single-turnover nuclease assays, we have assigned the rate-determining step of the steady state nuclease reaction to be the productive assembly of the complex at the dsDNA end. Together, our data suggest that the Mre11 dimer interface adopts at least two different states during the exonuclease reaction.
Insights
The Mre11-Rad50 (MR) complex
Area of Science:
- Molecular Biology
- Biochemistry
- DNA Repair Mechanisms
Background:
- The Mre11-Rad50 (MR) complex is crucial for DNA double-strand break repair.
- Structural studies indicate conformational flexibility in the MR complex during ATP hydrolysis.
- The Mre11 dimer interface is proposed to be dynamic.
Purpose of the Study:
- To investigate the functional role of the Mre11 dimer interface in MR complex activity.
- To characterize a Mre11 mutant (L101D-Mre11) designed to disrupt the dimer interface.
Main Methods:
- Site-directed mutagenesis to create L101D-Mre11 mutant.
- Biochemical assays measuring DNA binding, ATP hydrolysis, and nuclease activity.
- Steady-state and single-turnover kinetic analyses.
Main Results:
- L101D-Mre11 binds DNA and Rad50 similarly to wild-type but fails to activate Rad50 ATP hydrolysis.
- Processive dsDNA exonuclease activity of L101D-MR is reduced 10-fold.
- Unexpectedly, steady-state nuclease activity of L101D-MR is significantly enhanced compared to wild-type.
Conclusions:
- The Mre11 dimer interface is critical for allosteric communication between Mre11 and Rad50.
- The Mre11 dimer interface likely exists in at least two distinct states during the exonuclease reaction.
- The rate-determining step for steady-state nuclease activity is productive complex assembly at DNA ends.
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