Exploration of the binding modes of buffalo PGRP1 receptor complexed with meso-diaminopimelic acid and lysine-type peptidoglycans by molecular dynamics simulation and free energy calculation

Chem Biol Interact. 2014 Sep 5:220:255-68. doi: 10.1016/j.cbi.2014.06.028. Epub 2014 Jul 8.

Abstract

The peptidoglycan recognition proteins (PGRPs) are the key components of innate-immunity, and are highly specific for the recognition of bacterial peptidoglycans (PGN). Among different mammalian PGRPs, the PGRP1 binds to murein PGN of Gram-positive bacteria (lysine-type) and also have bactericidal activity towards Gram-negative bacteria (diaminopimelic acid or Dap-type). Buffaloes are the major sources of milk and meat in Asian sub-continents and are highly exposed to bacterial infections. The PGRP activates the innate-immune signaling, but their studies has been confined to limited species due to lack of structural and functional information. So, to understand the structural constituents, 3D model of buffalo PGRP1 (bfPGRP1) was constructed and conformational and dynamics properties of bfPGRP1 was studied. The bfPGRP1 model highly resembled human and camel PGRP structure, and shared a highly flexible N-terminus and centrally placed L-shaped cleft. Docking simulation of muramyl-tripeptide, tetrapeptide, pentapeptide-Dap-(MTP-Dap, MTrP-Dap and MPP-Dap) and lysine-type (MTP-Lys, MTrP-Lys and MPP-Lys) in AutoDock 4.2 and ArgusLab 4.0.1 anticipated β1, α2, α4, β4, and loops connecting β1-α2, α2-β2, β3-β4 and α4-α5 as the key interacting domains. The bfPGRP1-ligand complex molecular dynamics simulation followed by free binding energy (BE) computation conceded BE values of -18.30, -35.53, -41.80, -25.03, -24.62 and -22.30 kJ mol(-1) for MTP-Dap, MTrP-Dap, MPP-Dap, MTP-Lys, MTrP-Lys and MPP-Lys, respectively. The groove-surface and key binding residues involved in PGN-Dap and Lys-type interaction intended by the molecular docking, and were also accompanied by significant BE values directed their importance in pharmacogenomics, and warrants further in vivo studies for drug targeting and immune signaling pathways exploration.

Keywords: Buffalo; Innate immunity; MM/PBSA; Molecular dynamics; PGRP.

MeSH terms

  • Amino Acid Sequence
  • Animals
  • Binding Sites
  • Buffaloes
  • Camelus
  • Carrier Proteins / chemistry
  • Carrier Proteins / metabolism*
  • Diaminopimelic Acid / chemistry
  • Diaminopimelic Acid / metabolism*
  • Humans
  • Lysine / chemistry
  • Mice
  • Models, Biological
  • Molecular Dynamics Simulation*
  • Peptidoglycan / chemistry
  • Peptidoglycan / metabolism*
  • Principal Component Analysis
  • Protein Binding
  • Sequence Alignment

Substances

  • Carrier Proteins
  • Peptidoglycan
  • peptidoglycan recognition protein
  • Diaminopimelic Acid
  • Lysine