Enzymatic Cleavage of Glycosidic Bonds: Strategies on How to Set Up and Control a QM/MM Metadynamics Simulation

Methods Enzymol. 2016:577:159-83. doi: 10.1016/bs.mie.2016.05.015. Epub 2016 Jul 1.

Abstract

Carbohydrates play crucial roles in many biological processes, from cell-cell adhesion to chemical signaling. Their complexity and diversity, related to α/β anomeric configuration, ring substituents, and conformational variations, require a diverse set of enzymes for their processing. Among them, glycoside hydrolases (GHs) are responsible for the hydrolysis of one of the strongest bonds in nature: the glycosidic bond. These highly specialized biological catalysts select particular conformations their carbohydrate substrates to enhance catalysis. The evolution of this conformation during the reaction of glycosidic bond cleavage, known as the conformational catalytic itinerary, is of fundamental interest in glycobiology, with impact on inhibitor and drug design. Here we review some of the aspects and the main strategies one needs to take into account when simulating a reaction in a GH enzyme using QM/MM metadynamics. Several specific aspects are highlighted, from the importance of the distortion of the substrate at the Michaelis complex to the variable control during the metadynamics simulation or the analysis of the reaction mechanism and conformational itinerary. The increasing speed of computer power and methodological advances have added a vital tool to the study of GH mechanisms, as shown here and recent reviews. It is hoped that this chapter will serve as a first guide for those attempting to perform a metadynamics simulation of these relevant and fascinating enzymes.

Keywords: Glycoside hydrolases; Metadynamics; Molecular dynamics; Puckering coordinates; Quantum mechanics/molecular mechanics; α-Mannosidase.

Publication types

  • Review
  • Research Support, Non-U.S. Gov't

MeSH terms

  • Animals
  • Glycoside Hydrolases / chemistry
  • Glycoside Hydrolases / metabolism*
  • Glycosides / chemistry
  • Glycosides / metabolism
  • Humans
  • Hydrolysis
  • Molecular Conformation
  • Molecular Dynamics Simulation*
  • Quantum Theory

Substances

  • Glycosides
  • Glycoside Hydrolases