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Role of Molecular Dynamics and Related Methods in Drug Discovery

Journal of Medicinal Chemistry · 2016 · Vol. 59(9) · pp. 4035–4061
Marco De VivoMatteo MasettiGiovanni BottegoniAndrea Cavalli

Abstract

Molecular dynamics (MD) and related methods are close to becoming routine computational tools for drug discovery. Their main advantage is in explicitly treating structural flexibility and entropic effects. This allows a more accurate estimate of the thermodynamics and kinetics associated with drug-target recognition and binding, as better algorithms and hardware architectures increase their use. Here, we review the theoretical background of MD and enhanced sampling methods, focusing on free-energy perturbation, metadynamics, steered MD, and other methods most consistently used to study drug-target binding. We discuss unbiased MD simulations that nowadays allow the observation of unsupervised ligand-target binding, assessing how these approaches help optimizing target affinity and drug residence time toward improved drug efficacy. Further issues discussed include allosteric modulation and the role of water molecules in ligand binding and optimization. We conclude by calling for more prospective studies to attest to these methods' utility in discovering novel drug candidates.

Computational Drug Discovery MethodsProtein Structure and DynamicsReceptor Mechanisms and SignalingMetadynamicsDrug discoveryChemistryMolecular dynamicsAllosteric regulationComputational biologyFree energy perturbationFlexibility (engineering)Drug targetDrug

MeSH terms

Chemistry, PharmaceuticalMolecular Dynamics Simulation

Funding

  • Ministero dell’Istruzione, dell’Università e della Ricerca
  • Associazione Italiana per la Ricerca sul Cancro
  • Università di Bologna
  • Istituto Italiano di Tecnologia
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References
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The Journal of Physical Chemistry Letters · 2014 · 623 citations
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