4.6 Article

Molecular Dynamic Simulations of Bromodomain and Extra-Terminal Protein 4 Bonded to Potent Inhibitors

Journal

MOLECULES
Volume 27, Issue 1, Pages -

Publisher

MDPI
DOI: 10.3390/molecules27010118

Keywords

bromodomain and extra-terminal protein 4 (BRD4); inhibitors; molecular dynamic simulations; conformational changes; MM-GBSA calculations

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The BET subfamily, the most studied subfamily of bromodomain-containing proteins, plays a role in regulating acetylation signal transduction and has diverse physiological functions. Through molecular dynamics simulations and computational analysis, this study found that Cpd19 had the best binding effect with BRD4 and identified a crucial role of Phe83 in the binding of Cpd9 and Cpd19 to BRD4. These findings provide valuable insights for further research on the BCPs family.
Bromodomain and extra-terminal domain (BET) subfamily is the most studied subfamily of bromodomain-containing proteins (BCPs) family which can modulate acetylation signal transduction and produce diverse physiological functions. Thus, the BET family can be treated as an alternative strategy for targeting androgen-receptor (AR)-driven cancers. In order to explore the effect of inhibitors binding to BRD4 (the most studied member of BET family), four 150 ns molecular dynamic simulations were performed (free BRD4, Cpd4-BRD4, Cpd9-BRD4 and Cpd19-BRD4). Docking studies showed that Cpd9 and Cpd19 were located at the active pocket, as well as Cpd4. Molecular dynamics (MD) simulations indicated that only Cpd19 binding to BRD4 can induce residue Trp81-Ala89 partly become alpha-helix during MD simulations. MM-GBSA calculations suggested that Cpd19 had the best binding effect with BRD4 followed by Cpd4 and Cpd9. Computational alanine scanning results indicated that mutations in Phe83 made the greatest effects in Cpd9-BRD4 and Cpd19-BRD4 complexes, showing that Phe83 may play crucial roles in Cpd9 and Cpd19 binding to BRD4. Our results can provide some useful clues for further BCPs family search.

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