Structural and biochemical characterization of the mitomycin C repair exonuclease MrfB

Kelly A Manthei1, Lia M Munson1, Jayakrishnan Nandakumar1

  • 1Department of Molecular, Cellular, and Developmental Biology, University of Michigan, Ann Arbor, Michigan, USA.

Insights

The bacterial DNA repair protein MrfB, a DEDDh exonuclease, was structurally characterized in an inactive state. This study reveals its Mg2+-dependent 3’-5’ exonuclease activity crucial for repairing Mitomycin C DNA damage.

Area of Science:

  • Molecular Biology
  • Biochemistry
  • Structural Biology

Background:

  • Mitomycin C (MMC) repair factors A (mrfA) and B (mrfB) are essential for DNA repair in *Bacillus subtilis*.
  • MrfB is a DEDDh-family exonuclease involved in repairing DNA damage.

Approach:

  • The crystal structure of the MrfB exonuclease core was determined to 2.1 Å resolution.
  • Exonuclease assays were performed to characterize MrfB's enzymatic activity.
  • Structural comparisons with related proteins and AlphaFold predictions guided functional site identification.

Key Points:

  • The solved structure reveals MrfB in an inactive conformation with a disordered catalytic motif.
  • MrfB functions as a magnesium-dependent 3'-5' DNA exonuclease.
  • Specific residues, including Leu113 and a basic loop, are critical for DNA substrate binding and coordination.

Conclusions:

  • MrfB likely transitions to an active state upon DNA interaction.
  • This research elucidates the structural basis for MrfB's exonuclease activity in DNA repair.
  • The findings contribute to understanding the mechanism of bacterial DNA damage repair pathways.

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