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螺喹唑啉酮在不同PDE7抑制活性中的立体电子性质。

Stereoelectronic properties of spiroquinazolinones in differential PDE7 inhibitory activity.

作者信息

Daga Pankaj R, Doerksen Robert J

机构信息

Department of Medicinal Chemistry, School of Pharmacy, University of Mississippi, University, Mississippi 38677-1848, USA.

出版信息

J Comput Chem. 2008 Sep;29(12):1945-54. doi: 10.1002/jcc.20960.

Abstract

A detailed computational study on a series of spiroquinazolinones showing phosphodiesterase 7 (PDE7) inhibitory activity was performed to understand the binding mode and the role of stereoelectronic properties in binding. Our docking studies reproduced the essential hydrogen bonding and hydrophobic interactions for inhibitors of this class of enzymes. The N1 proton of the quinazolinone scaffold was involved in H-bonding to an amide side chain of the conserved glutamine residue in the active site. The central bicyclic ring of the molecules showed hydrophobic and pi-stacking interactions with hydrophobic and aromatic amino acid residues, respectively, present in the PDE7 active site. The docked conformations were optimized with density functional theory (DFT) and DFT electronic properties were calculated. Comparison of molecular electrostatic potential (MEP) plots of inhibitors with the active site of PDE7 suggested that the electronic distribution in the molecules is as important as steric factors for binding of the molecules to the receptor. The hydrogen bonding ability and nucleophilic nature of N1 appeared to be important for governing the interaction with PDE7. For less active inhibitors (pIC(50) < 6.5), the MEP maximum at N1 of the spiroquinazolinone ring was high or low based on the electronic properties of the substituents. All the more active molecules (pIC(50) > 6.5) had MEP highest at N3, not N1. Efficient binding of these inhibitors may need some rearrangement of side chains of active-site residues, especially Asn365. This computational modeling study should aid in design of new molecules in this class with improved PDE7 inhibition.

摘要

对一系列显示磷酸二酯酶7(PDE7)抑制活性的螺喹唑啉酮进行了详细的计算研究,以了解其结合模式以及立体电子性质在结合中的作用。我们的对接研究重现了这类酶抑制剂的关键氢键和疏水相互作用。喹唑啉酮支架的N1质子参与与活性位点中保守谷氨酰胺残基的酰胺侧链形成氢键。分子的中心双环分别与PDE7活性位点中存在的疏水和芳香族氨基酸残基表现出疏水和π-堆积相互作用。对接构象用密度泛函理论(DFT)进行了优化,并计算了DFT电子性质。将抑制剂的分子静电势(MEP)图与PDE7的活性位点进行比较表明,分子中的电子分布对于分子与受体的结合与空间因素同样重要。N1的氢键能力和亲核性质似乎对于控制与PDE7的相互作用很重要。对于活性较低的抑制剂(pIC(50) < 6.5),基于取代基的电子性质,螺喹唑啉酮环N1处的MEP最大值较高或较低。所有活性较高的分子(pIC(50) > 6.5)在N3而非N1处的MEP最高。这些抑制剂的有效结合可能需要活性位点残基侧链的一些重排,尤其是Asn365。这项计算建模研究应有助于设计此类具有改进的PDE7抑制作用的新分子。

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