AI Article Synopsis

  • PDE3A is the main enzyme in platelets regulating cAMP levels, making it a key target for antiplatelet drugs.
  • PDE3A inhibitors were analyzed using homology modeling and docking studies to understand how various compounds interact with the enzyme's active site.
  • The research highlighted specific structural features impacting the effectiveness of these inhibitors, which could inform the future design of more targeted treatments for cardiovascular diseases.

Article Abstract

PDE3s belong to the phosphodiesterases family, where the PDE3A isoform is the major subtype in platelets involved in the cAMP regulation pathway of platelet aggregation. PDE3A inhibitors have been designed as potential antiplatelet agents. In this work, a homology model of PDE3A was developed and used to obtain the binding modes of bicyclic heteroaromatic pyridazinones and pyrazolones. Most of the studied compounds adopted similar orientations within the PDE3A active site, establishing hydrogen bonds with catalytic amino acids. Besides, the structure-activity relationship of the studied inhibitors was described by using a field-based 3D-QSAR method. Different structure alignment strategies were employed, including template-based and docking-based alignments. Adequate correlation models were obtained according to internal and external validations. In general, QSAR models revealed that steric and hydrophobic fields describe the different inhibitory activities of the compounds, where the hydrogen bond donor and acceptor fields have minor contributions. It should be stressed that structural elements of PDE3A inhibitors are reported here, through descriptions of their binding interactions and their differential affinities. In this sense, the present results could be useful in the future design of more specific and potent PDE3A inhibitors that may be used for the treatment of cardiovascular diseases.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC5720733PMC
http://journals.plos.org/plosone/article?id=10.1371/journal.pone.0189213PLOS

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