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Updated: Jun 16, 2026

Proofreading and DNA Repair Assay Using Single Nucleotide Extension and MALDI-TOF Mass Spectrometry Analysis
Published on: June 19, 2018
DNA repair by the cryptic endonuclease activity of Mu transposase
Wonyoung Choi1, Rasika M Harshey
1Section of Molecular Genetics and Microbiology and Institute of Cellular and Molecular Biology, University of Texas at Austin, Austin, TX 78712, USA.
Abstract:
Phage Mu transposes by two distinct pathways depending on the specific stage of its life cycle. A common strand transfer intermediate is resolved differentially in the two pathways. During lytic growth, the intermediate is resolved by replication of Mu initiated within the flanking target DNA; during integration of infecting Mu, it is resolved without replication, by removal and repair of DNA from a previous host that is still attached to the ends of the incoming Mu genome. We have discovered that the cryptic endonuclease activity reported for the isolated C-terminal domain of the transposase MuA [Wu Z, Chaconas G (1995) A novel DNA binding and nuclease activity in domain III of Mu transposase: Evidence for a catalytic region involved in donor cleavage. EMBO J 14:3835-3843], which is not observed in the full-length protein or in the assembled transpososome in vitro, is required in vivo for removal of the attached host DNA or "5'flap" after the infecting Mu genome has integrated into the E. coli chromosome. Efficient flap removal also requires the host protein ClpX, which is known to interact with the C-terminus of MuA to remodel the transpososome for replication. We hypothesize that ClpX constitutes part of a highly regulated mechanism that unmasks the cryptic nuclease activity of MuA specifically in the repair pathway.
Insights
Bacteriophage Mu transposition involves two pathways. A cryptic nuclease activity of the MuA transposase is essential in vivo for DNA flap removal during integration, requiring the host protein ClpX.
Area of Science:
- Molecular Biology
- Microbiology
- Genetics
Background:
- Bacteriophage Mu utilizes distinct transposition pathways for lytic growth and integration.
- A strand transfer intermediate is resolved differently in these pathways.
- The C-terminal domain of MuA transposase exhibits cryptic endonuclease activity in vitro.
Purpose of the Study:
- To investigate the in vivo role of MuA transposase's cryptic nuclease activity.
- To elucidate the mechanism of 5' flap removal during bacteriophage Mu integration.
- To identify host factors involved in regulating Mu transposition pathways.
Main Methods:
- In vivo studies of bacteriophage Mu transposition in E. coli.
- Analysis of MuA transposase activity and its interaction with host factors.
- Investigating the role of ClpX in Mu transposition.
Main Results:
- The cryptic endonuclease activity of MuA is required in vivo for 5' flap removal after Mu genome integration.
- Efficient flap removal necessitates the host protein ClpX.
- ClpX interacts with MuA's C-terminus to remodel the transpososome.
Conclusions:
- ClpX likely unmasks MuA's cryptic nuclease activity in the repair pathway.
- This regulation ensures specific activation of nuclease activity for integration.
- The findings reveal a novel regulatory mechanism in bacteriophage transposition.
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