Functional characterization of a DNA-dependent AAA ATPase in a F-cluster mycobacteriophage

Ritam Das1, Urmi Bajpai2

  • 1Department of Life Science, Acharya Narendra Dev College, University of Delhi, Govindpuri, New Delhi 110019, India.

Virus Research
|October 9, 2022
PubMed

Insights

We characterized Gp65, an AAA ATPase from mycobacteriophage SimranZ1. This protein functions in DNA repair and exists as a hexamer, offering insights into phage biology.

Area of Science:

  • Virology
  • Molecular Biology
  • Biochemistry

Background:

  • Mycobacteriophages are viruses infecting Mycobacterium species with significant therapeutic and diagnostic potential.
  • Understanding mycobacteriophage proteomes is crucial, yet many open reading frames (ORFs) encode hypothetical proteins with unknown functions.
  • Gp65 is a putative AAA ATPase from the F1 cluster mycobacteriophage SimranZ1, with homology found in 38 other F1 cluster phages.

Purpose of the Study:

  • To functionally and structurally characterize the Gp65 AAA ATPase from mycobacteriophage SimranZ1.
  • To investigate the potential role of Gp65 in DNA recombination, repair, or maintenance mechanisms within mycobacteriophages.

Main Methods:

  • Sequence-based functional annotation and homology analysis.
  • Molecular docking to identify ATP-binding residues.
  • Experimental validation of DNA-dependent ATPase activity using microtiter plate assays.
  • Structural characterization via non-denaturing gel electrophoresis and transmission electron microscopy (TEM).

Main Results:

  • Sequence analysis predicted Gp65 belongs to the P-loop NTPase superfamily with AAA_24 and RecA/RadA domains.
  • Molecular docking identified Gly21 and Ser23 as key residues for ATP binding.
  • Gp65 exhibited DNA-dependent ATPase activity, increasing in the presence of double-stranded DNA (dsDNA).
  • TEM revealed Gp65 exists as a hexamer with a central pore, confirmed by non-denaturing gel electrophoresis.

Conclusions:

  • Gp65 is a DNA-dependent hexameric AAA ATPase.
  • The protein possesses domains associated with DNA recombination/repair/maintenance.
  • This study elucidates a putative role for Gp65 in DNA metabolism within mycobacteriophages.

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