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羧基吡啶抑素对G-四链体结构的分子识别:它为何偏爱RNA?

Molecular recognition of a carboxy pyridostatin toward G-quadruplex structures: Why does it prefer RNA?

作者信息

Rocca Roberta, Talarico Carmine, Moraca Federica, Costa Giosuè, Romeo Isabella, Ortuso Francesco, Alcaro Stefano, Artese Anna

机构信息

Laboratory of Medicinal Chemistry, Department of Health Sciences, University of Catanzaro, Catanzaro, Italy.

出版信息

Chem Biol Drug Des. 2017 Nov;90(5):919-925. doi: 10.1111/cbdd.13015. Epub 2017 Jun 6.

Abstract

The pyridostatin (PDS) represents the lead compound of a family of G-quadruplex (G4) stabilizing synthetic small molecules based on a N,N'-bis(quinolinyl)pyridine-2,6-dicarboxamide scaffold. Its mechanism of action involves the induction of telomere dysfunction by competing for binding with telomere-associated proteins, such as human POT1. Recently, through a template-directed "in situ" click chemistry approach, a PDS derivative, the carboxypyridostatin (cPDS), was discovered. It has the peculiarity to exhibit high molecular specificity for RNA over DNA G4, while PDS is a good generic RNA and DNA G4-interacting small molecule. Structural data on the binding modes of these compounds are not available, and the selectivity mode of cPDS toward TERRA G4 is unknown too. Therefore, this work is aimed at rationalizing the selectivity of cPDS versus TERRA G4 by means of molecular dynamics and docking simulations, coupled to better understand the binding mode of these compounds to telomeric G4 structures. The comprehensive analysis of cPDS binding mode and its conformational behavior demonstrates the importance of the ligand conformation properties coupled with a remarkable solvation contribution. This work is expected to provide valuable clues for further rational design of novel and selective TERRA G4 binders.

摘要

吡啶抑素(PDS)是基于N,N'-双(喹啉基)吡啶-2,6-二甲酰胺支架的G-四链体(G4)稳定合成小分子家族的先导化合物。其作用机制包括通过与端粒相关蛋白(如人类POT1)竞争结合来诱导端粒功能障碍。最近,通过一种模板导向的“原位”点击化学方法,发现了一种PDS衍生物——羧基吡啶抑素(cPDS)。它的独特之处在于对RNA G4的分子特异性高于DNA G4,而PDS是一种良好的通用RNA和DNA G4相互作用小分子。关于这些化合物结合模式的结构数据尚不可得,cPDS对端粒重复序列RNA(TERRA)G4的选择性模式也未知。因此,这项工作旨在通过分子动力学和对接模拟来阐明cPDS对TERRA G4的选择性,以便更好地理解这些化合物与端粒G4结构的结合模式。对cPDS结合模式及其构象行为的综合分析表明,配体构象性质以及显著的溶剂化作用很重要。这项工作有望为进一步合理设计新型选择性TERRA G4结合剂提供有价值的线索。

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