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Duraisamy, B.

Publications and source records attributed to Duraisamy, B..

2 recordsLinked to original sources

Molecular rewiring and compensatory mechanisms sustain DNA recognition in mutant ZTA transcription factor: insights from molecular dynamics simulations

Protein-DNA complexes are stabilized by various interactions forming an interaction network between the protein and DNA molecules. Any change in the system - whether through mutations in the protein or DNA, external factors, or protein conformational transitions -- can alter this interaction network, thereby affecting structural and functional aspects. Employing all-atom classical molecular dynamics, we investigated how the interaction network in the ZTA TF-DNA is rewired when key arginine residues in ZTA are mutated to oppositely charged glutamic acids. Using the MMPBSA technique, we calculated per-residue binding energies for all systems and correlated binding affinity with structural features. Our detailed mechanistic study shows that when key arginine residues are mutated, new interactions are formed either around the mutation site and/or in other ZTA monomer. Through load-sharing, the system attempts to counter-balance the interaction load, leading to reorganization of the interaction network. As the number of mutations increases from single-to-double site, the system is able to partially maintain its structural stability. However, with multi-site mutations, even after reorganization of the interaction network, system cannot sustain its structural stability and therefore becomes destabilized. Despite the structural symmetry of the ZTA TF, we observed asymmetric monomer contributions upon mutation. Overall, our rigorous mechanistic studies provide deeper insights into the mechanism of interaction network reorganization in ZTA-DNA system. These comprehensive insights may be useful for tuning binding affinity and structural adaptability under adverse conditions. Since ZTA is a key factor in the Epstein-Barr virus (EBV), this study will be central to understanding DNA recognition and developing drug therapeutics targeting viral transcription factors in EBV.

biochemistry↗

Influence of DNA sequences on thermodynamic and structural stability of ZTA transcription factor - DNA complex: An all-atom molecular dynamics study

The Epstein-Barr virus (EBV) is one of the cancer-causing gamma type viruses. Although more than 99% people are infected by this virus at some point, it remains in the body in a latent state, typically causing only minor symptoms. Our current understanding is that a known transcription factor (TF), the ZTA protein, binds with dsDNA (double stranded deoxyribonucleic acid) and plays crucial role in mediating the viral latent-to-lytic cycle through binding of specific ZTA responsive elements (ZREs). However, there is no clear understanding of the effect of DNA sequences on the structural stability and quantitative estimation of the binding affinity between the ZTA TF and DNA, along with their mechanistic details. In this study, we employ integrated classical all-atom molecular dynamics (MD) and enhanced sampling simulations to study the ZTA-dsDNA structural properties, thermodynamics, and mechanistic details for the ZTA protein and for two different dsDNA systems: core motif and core motif with flanking end sequences. For each system, we studied three different ZTA responsive elements (ZREs) sequences: ZRE 1, ZRE 2 and ZRE 3. We performed structural analyses, including RMSD and RMSF calculations, to assess conformational stability, along with detailed interaction profiles and hydrogen bond analysis. We conducted residue-level and nucleic acid-level analyses to assess the important protein residues and DNA bases forming interactions between the ZTA and dsDNA systems. We also explored the effect of adding flanking end sequences to the core motif on DNA groove lengths and interstrand hydrogen bonds. Our results indicate that the flanking sequences surrounding the core motif significantly influence the structural stability and binding affinity of the ZTA-dsDNA complex. Among ZRE 1, ZRE 2, and ZRE 3, particularly when paired with their naturally occurring flanking ends, ZRE 3 exhibits higher stability and binding affinity. These findings provide insights into the molecular mechanisms underlying EBV pathogenesis and may indicate potential targets for therapeutic intervention. A detailed of the binding mechanisms will allow for the design of better-targeted therapies against EBV-associated cancers. This study will serve as a holistic benchmark for future studies on these viral protein interactions.

biophysics↗