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Preparation of the Mgm101 Recombination Protein by MBP-based Tagging Strategy
Published on: June 25, 2013
Biochemical characterization of bacteriophage T4 Mre11-Rad50 complex
Timothy J Herdendorf1, Dustin W Albrecht, Stephen J Benkovic
1Department of Biochemistry, Biophysics, and Molecular Biology, Iowa State University, Ames, Iowa 50011, USA.
Abstract:
The Mre11-Rad50 complex (MR) from bacteriophage T4 (gp46/47) is involved in the processing of DNA double-strand breaks. Here, we describe the activities of the T4 MR complex and its modulation by proteins involved in homologous recombination. T4 Mre11 is a Rad50- and Mn(2+)-dependent dsDNA exonuclease and ssDNA endonuclease. ATP hydrolysis is required for the removal of multiple nucleotides via dsDNA exonuclease activity but not for the removal of the first nucleotide or for ssDNA endonuclease activity, indicating ATP hydrolysis is only required for repetitive nucleotide removal. By itself, Rad50 is a relatively inefficient ATPase, but the presence of Mre11 and dsDNA increases ATP hydrolysis by 20-fold. The ATP hydrolysis reaction exhibits positive cooperativity with Hill coefficients ranging from 1.4 for Rad50 alone to 2.4 for the Rad50-Mre11-DNA complex. Kinetic assays suggest that approximately four nucleotides are removed per ATP hydrolyzed. Directionality assays indicate that the prevailing activity is a 3' to 5' dsDNA exonuclease, which is incompatible with the proposed role of MR in the production of 3' ssDNA ends. Interestingly, we found that in the presence of a recombination mediator protein (UvsY) and ssDNA-binding protein (gp32), Mre11 is capable of using Mg(2+) as a cofactor for its nuclease activity. Additionally, the Mg(2+)-dependent nuclease activity, activated by UvsY and gp32, results in the formation of endonuclease reaction products. These results suggest that gp32 and UvsY may alter divalent cation preference and facilitate the formation of a 3' ssDNA overhang, which is a necessary intermediate for recombination-mediated double-strand break repair.
Insights
The T4 bacteriophage Mre11-Rad50 complex (MR) processes DNA breaks. Recombination proteins UvsY and gp32 enable Mg(2+)-dependent activity, forming 3' ssDNA overhangs crucial for repair.
Area of Science:
- Molecular Biology
- Biochemistry
- DNA Repair
Background:
- The Mre11-Rad50 complex (MR) is vital for processing DNA double-strand breaks.
- Understanding T4 bacteriophage MR complex activity and its regulation is key to DNA repair mechanisms.
Purpose of the Study:
- To characterize the activities of the T4 MR complex.
- To investigate the modulation of T4 MR activity by homologous recombination proteins.
Main Methods:
- Enzyme kinetics assays to determine nuclease and ATPase activities.
- Directionality assays to map exonuclease activity.
- Investigating cofactor dependency (Mn(2+) vs. Mg(2+)) and protein interactions.
Main Results:
- T4 Mre11 exhibits Mn(2+)-dependent dsDNA exonuclease and ssDNA endonuclease activity.
- ATP hydrolysis is required for repetitive nucleotide removal by dsDNA exonuclease.
- Rad50 ATPase activity is significantly enhanced by Mre11 and dsDNA, showing positive cooperativity.
- Prevailing activity is 3' to 5' dsDNA exonuclease, but UvsY and gp32 facilitate Mg(2+)-dependent endonuclease activity, producing 3' ssDNA overhangs.
Conclusions:
- T4 MR complex possesses distinct nuclease and ATPase activities.
- Recombination proteins UvsY and gp32 alter MR's divalent cation preference and nuclease mechanism.
- These alterations facilitate the formation of 3' ssDNA overhangs, essential intermediates for homologous recombination repair.
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