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CD Spectroscopy to Study DNA-Protein Interactions
Published on: February 10, 2022
Functional characterization of a DNA-dependent AAA ATPase in a F-cluster mycobacteriophage
1Department of Life Science, Acharya Narendra Dev College, University of Delhi, Govindpuri, New Delhi 110019, India.
Abstract:
Mycobacteriophages are viruses of Mycobacterium spp. with promising diagnostic and therapeutic potential. Phage genome exploration and characterization of their proteomes are essential to gaining a better understanding of their role in phage biology. So far, genomes of about 2113 mycobacteriophages have been defined and from among those, 1563 phage protein families (phamilies) are identified. However, the function of only a fraction (about 15%) is known since a majority of ORFs in phage genomes are hypothetical proteins. In this study, we have analyzed Gp65 (AQT25877.1), a putative AAA ATPase (Pham 9410) from a F1 cluster mycobacteriophage SimranZ1 (KY385384.1). Though homology analysis of Gp65-AAA ATPase showed the presence of this gene in 38 mycobacteriophages of the F1 cluster, however its further analysis has not been reported yet in any study. The sequence-based functional annotation predicted Gp65 to belong to the P-loop NTPase superfamily and to have AAA_24 and RecA/RadA domains, which are known to be involved in ATP-dependent DNA recombination/repair/maintenance mechanisms. Molecular docking of Gp65 with ATP identified Gly21 and Ser23 residues to be involved in the specific binding. The experimental validation of the DNA-dependent ATPase activity of Gp65 was done using a microtiter plate assay, where the ATPase activity was observed to increase in the presence of dsDNA. The structural characteristics of the protein are demonstrated by non-denaturing gel electrophoresis, showing Gp65 to exist in oligomeric states, which was confirmed by transmission electron microscopy (TEM). It was revealed to exist as a hexamer with a prominent central pore. In this study, based on the stated structural and functional characterization, we report the AAA ATPase to have a putative role in DNA recombination/repair/maintenance mechanism in mycobacteriophages.
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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