1. Academic Validation
  2. Insights of structure-based pharmacophore studies and inhibitor design against Gal3 receptor through molecular dynamics simulations

Insights of structure-based pharmacophore studies and inhibitor design against Gal3 receptor through molecular dynamics simulations

  • J Biomol Struct Dyn. 2021 Nov;39(18):6987-6999. doi: 10.1080/07391102.2020.1804452.
Gunalan Seshan 1 Somarathinam Kanagasabai 1 Sailapathi Ananthasri 1 Balaji Kannappan 2 A Suvitha 3 S M Jaimohan 4 Sekar Kanagaraj 5 Gugan Kothandan 1
Affiliations

Affiliations

  • 1 Biopolymer Modelling Laboratory, Centre of Advanced Study in Crystallography and Biophysics, University of Madras, Guindy Campus, Chennai, Tamil Nadu, India.
  • 2 National Research Center for Dementia, Department of Life Science, Chosun University, Gwangju, South Korea.
  • 3 Department of Physics, CMR Institute of Technology, Bangalore, Karnataka, India.
  • 4 Advanced Materials Laboratory, CSIR-Central Leather Research Institute, Chennai, Tamil Nadu, India.
  • 5 Laboratory for Structural Biology and Biocomputing, Department of Computational and Data Sciences, Indian Institute of Science, Bangalore, Karnataka, India.
Abstract

Our present work studies the structure-based pharmacophore modeling and designing inhibitor against Gal3 receptor through molecular dynamics (MD) simulations extensively. Pharmacophore models play a key role in computer-aided drug discovery like in the case of virtual screening of chemical databases, de novo drug design and lead optimization. Structure-based methods for developing pharmacophore models are important, and there have been a number of studies combining such methods with the use of MD simulations to model protein's flexibility. The two potential antagonists SNAP 37889 and SNAP 398299 were docked and simulated for 250 ns and the results are analyzed and carried for the structure-based pharmacophore studies. This helped in identification of the subtype selectivity of the binding sites of the Gal3 receptor. Our work mainly focuses on identifying these binding site residues and to design more potent inhibitors compared to the previously available inhibitors through pharmacophore models. The study provides crucial insight into the binding site residues Ala2, Asp3, Ala4, Gln5, Phe24, Gln79, Ala80, Ile82, Tyr83, Trp88, His99, Ile102, Tyr103, Met106, Tyr157, Tyr161, Pro174, Trp176, Arg181, Ala183, Leu184, Asp185, Thr188, Trp248, His251, His252, Ile255, Leu256, Phe258, Trp259, Tyr270, Arg273, Leu274 and His277, which plays a significant role in the conformational changes of the receptor and helps to understand the inhibition mechanism. Communicated by Ramaswamy H. Sarma.

Keywords

GPCRs; Gal3 – galanin receptor 3; Pharmacophore modeling; SNAP 37889 and SNAP 398299; homology modeling.

Figures
Products