Author:
Grover Abhinav,Agrawal Vibhuti,Shandilya Ashutosh,Bisaria Virendra S,Sundar Durai
Abstract
Abstract
Background
Herpes Simplex Virus 1 and 2 causes several infections in humans including cold sores and encephalitis. Previous antiviral studies on herpes viruses have focussed on developing nucleoside analogues that can inhibit viral polymerase and terminate the replicating viral DNA. However, these drugs bear an intrinsic non-specificity as they can also inhibit cellular polymerase apart from the viral one. The present study is an attempt to elucidate the action mechanism of naturally occurring withaferin A in inhibiting viral DNA polymerase, thus providing an evidence for its development as a novel anti-herpetic drug.
Results
Withaferin A was found to bind very similarly to that of the previously reported 4-oxo-DHQ inhibitor. Withaferin A was observed binding to the residues Gln 617, Gln 618, Asn 815 and Tyr 818, all of which are crucial to the proper functioning of the polymerase. A comparison of the conformation obtained from docking and the molecular dynamics simulations shows that substantial changes in the binding conformations have occurred. These results indicate that the initial receptor-ligand interaction observed after docking can be limited due to the receptor rigid docking algorithm and that the conformations and interactions observed after simulation runs are more energetically favoured.
Conclusions
We have performed docking and molecular dynamics simulation studies to elucidate the binding mechanism of prospective herbal drug withaferin A onto the structure of DNA polymerase of Herpes simplex virus. Our docking simulations results give high binding affinity of the ligand to the receptor. Long de novo MD simulations for 10 ns performed allowed us to evaluate the dynamic behaviour of the system studied and corroborate the docking results, as well as identify key residues in the enzyme-inhibitor interactions. The present MD simulations support the hypothesis that withaferin A is a potential ligand to target/inhibit DNA polymerase of the Herpes simplex virus. Results of these studies will also guide the design of selective inhibitors of DNA POL with high specificity and potent activity in order to strengthen the therapeutic arsenal available today against the dangerous biological warfare agent represented by Herpes Simplex Virus.
Publisher
Springer Science and Business Media LLC
Subject
Applied Mathematics,Computer Science Applications,Molecular Biology,Biochemistry,Structural Biology
Reference37 articles.
1. Prevention and control of Herpes virus diseases In Clinical and laboratory diagnosis and chemotherapy. Volume 63. Bulletin of the WHO; 1985:182–185.
2. Whitley RJ, Gnann JWJ: The Human Herpesviruses. In The Human Herpesviruses Edited by: Roizmann B, Whitley RJ, Lopez C. 1993, 69–105.
3. Wild K, Bohner T, Folkers G, Schulz GE: The structures of thymidine kinase from Herpes simplex virus type 1 in complex with substrates and a substrate analogue. Protein Science 1997, 6: 2097–2106.
4. Corey L, Wald A, Patel R, Sacks SL, Tyring SK, Warren T, Douglas JM, Paavonen J, Morrow RA, Beutner KR, et al.: Once-daily valacyclovir to reduce the risk of transmission of genital herpes. New England Journal of Medicine 2004, 350: 11–20. 10.1056/NEJMoa035144
5. Siakallis G, Spandidos DA, Sourvinos G: Herpesviridae and novel inhibitors. Antiviral Therapy 2009, 14: 1051–1064.
Cited by
41 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献