Related Experiment Video
Updated: May 28, 2026

Anaerobic Protein Purification and Kinetic Analysis via Oxygen Electrode for Studying DesB Dioxygenase Activity and Inhibition
Published on: October 3, 2018
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.
Abstract:
5-Methylpyrimidine dioxygenases (5mYOXs) are iron (II)/2-oxoglutarate-dependent enzymes that catalyze the postreplicative oxidation of DNA 5-methylpyrimidines. Here, we define two subclasses of phage thymine (T) 5mYOXs: a stand-alone enzyme and a second requiring an activator. Using bioinformatic tools, we show that the activator is homologous to the bacterial chromosomal segregation (CS) protein ParB, retaining the N-terminal nucleotide-binding domain (NBD), responsible for CTP binding and hydrolysis in CS, and the C-terminal dimerization domain (CTD), but lacking an obvious DNA-binding domain. In vivo, we demonstrate that ParB activates its cognate 5mYOX with relative specificity and that both NBD and CTD are required for function. Unlike CS-ParBs, mutation of conserved NTP-binding/hydrolysis residues does not affect the role of 5mYOX-associated ParB, suggesting a lack of CTP requirement or a regulatory mechanism not captured under our conditions. For 5mYOXs, we define subclass-specific domains essential for T oxidation and provide evidence for abolishing ParB dependency upon swapping a variable insert from a ParB-independent 5mYOX into a dependent one. In vitro, reconstitution of subclass representatives, 5mYOX97 and 176, confirms their activity as postreplicative T-dioxygenases. Both enzymes function on a wide range of DNA substrates [single and double-stranded (ds), linear, and circular]. The enzymes differ in their sequence preference and support iterative oxidation of T and 5-methylcytosine. Notably, 5mYOX176 requires activation by ParB176 only when acting on dsDNA. These findings establish an activator-dependent subclass within the iron (II)/2-oxoglutarate-dependent dioxygenase superfamily and expand the functional landscape of both 5mYOX and ParBs, suggesting regulatory mechanisms for T oxidation in bacteriophage.
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.
Related Concept Videos
DNA Bacteriophages
Bacterial Phylum Proteobacteria
Bacterial Phylum Tenericutes
Lytic Cycle of Bacteriophages
DNA Topoisomerases
Types and Mechanism of action
Topoisomerases are divided into two main types. Type I...
Viral Replication: Lytic Cycle

