Uncovering ParB-dependent and -independent subclasses of T-dioxygenases from bacteriophage

Katherine H O'Toole1, Lydia J Perkins1, Auriane Bouchet1

  • 1Research Department, Biochemistry and Microbiology Division, New England Biolabs, Ipswich, MA 01938.

Insights

Two subclasses of thymine 5-methylpyrimidine dioxygenases (5mYOXs) were identified, one requiring a ParB activator. This discovery expands the known functions of 5mYOXs and ParB proteins in bacteriophage DNA oxidation.

Area of Science:

  • Biochemistry and Molecular Biology
  • Enzymology
  • DNA Repair and Replication

Background:

  • 5-Methylpyrimidine dioxygenases (5mYOXs) are iron (II)/2-oxoglutarate-dependent enzymes.
  • These enzymes catalyze the postreplicative oxidation of DNA 5-methylpyrimidines.
  • Two subclasses of phage thymine (T) 5mYOXs were previously undefined.

Purpose of the Study:

  • To define two subclasses of phage thymine (T) 5-methylpyrimidine dioxygenases (5mYOXs).
  • To characterize the role and mechanism of a ParB activator in 5mYOX function.
  • To investigate the structural domains essential for T oxidation and ParB dependency.

Main Methods:

  • Bioinformatic analysis to identify homologous proteins and domains.
  • In vivo studies to assess ParB activation and functional requirements (NBD, CTD).
  • In vitro reconstitution assays to confirm enzyme activity on various DNA substrates.

Main Results:

  • Two subclasses of phage 5mYOXs were identified: a stand-alone enzyme and one requiring a ParB activator.
  • The ParB activator shares homology with bacterial chromosomal segregation proteins but lacks a DNA-binding domain.
  • Both NBD and CTD domains of ParB are essential for activation; CTP hydrolysis is not required.
  • Subclass-specific domains in 5mYOXs are crucial for T oxidation; ParB dependency can be abolished by domain swapping.
  • Reconstituted 5mYOX97 and 5mYOX176 function as postreplicative T-dioxygenases on diverse DNA substrates.
  • 5mYOX176 requires ParB176 activation specifically for double-stranded DNA oxidation.

Conclusions:

  • An activator-dependent subclass of iron (II)/2-oxoglutarate-dependent dioxygenases has been established.
  • The functional landscape of 5mYOXs and ParB proteins is expanded, revealing new regulatory mechanisms for T oxidation in bacteriophages.
  • ParB proteins may have roles beyond chromosomal segregation, including regulating DNA oxidation pathways.

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