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.

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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