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October 27, 2011SHILAP Revista de lepidopterología1,423 citationsOpen Access

Molecular dynamics simulations and drug discovery

JDJacob D. DurrantUniversity of PittsburghJMJ. Andrew McCammonUniversity of California, San Diego

Key Points

  • The review aims to explore the application of molecular dynamics simulations in drug discovery, focusing on their benefits and limitations.
  • Discussed the role of computer simulations in identifying binding sites and predicting binding energies.
  • Reviewed traditional methodologies enhanced by atomistic simulations.
  • Evaluated computational challenges and advancements in simulation techniques.
  • Molecular dynamics simulations identify new binding sites and improve screening techniques.
  • High computational costs limit the broad application of these simulations.
  • Future advancements in computational power and algorithms promise better drug design outcomes.

Abstract

This review discusses the many roles atomistic computer simulations of macromolecular (for example, protein) receptors and their associated small-molecule ligands can play in drug discovery, including the identification of cryptic or allosteric binding sites, the enhancement of traditional virtual-screening methodologies, and the direct prediction of small-molecule binding energies. The limitations of current simulation methodologies, including the high computational costs and approximations of molecular forces required, are also discussed. With constant improvements in both computer power and algorithm design, the future of computer-aided drug design is promising; molecular dynamics simulations are likely to play an increasingly important role.

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Cite This Study

Durrant et al. (2011) studied this question.

synapsesocial.com/papers/69dd68470644c7b49d40d68ehttps://doi.org/10.1186/1741-7007-9-71
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