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Merging Ligand-Based and Structure-Based Methods in Drug Discovery: An Overview of Combined Virtual Screening Approaches

机译:在药物发现中合并基于配体和基于结构的方法:组合虚拟筛选方法的概述

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摘要

Virtual screening (VS) is an outstanding cornerstone in the drug discovery pipeline. A variety of computational approaches, which are generally classified as ligand-based (LB) and structure-based (SB) techniques, exploit key structural and physicochemical properties of ligands and targets to enable the screening of virtual libraries in the search of active compounds. Though LB and SB methods have found widespread application in the discovery of novel drug-like candidates, their complementary natures have stimulated continued efforts toward the development of hybrid strategies that combine LB and SB techniques, integrating them in a holistic computational framework that exploits the available information of both ligand and target to enhance the success of drug discovery projects. In this review, we analyze the main strategies and concepts that have emerged in the last years for defining hybrid LB + SB computational schemes in VS studies. Particularly, attention is focused on the combination of molecular similarity and docking, illustrating them with selected applications taken from the literature.
机译:虚拟筛选(VS)是药物发现管道的优秀基石。各种计算方法,通常被分类为基于配体的(LB)和基于结构的(SB)技术,利用配体和靶的关键结构和物理化学特性,以使得能够在寻找活性化合物中筛选虚拟文库。虽然LB和SB方法发现广泛应用于新型药物的候选者的发现,但它们的互补性存在促使持续努力发展LB和SB技术的混合策略,将它们集成在利用可用的整体计算框架中配体和目标的信息,以提高药物发现项目的成功。在本次审查中,我们分析了在过去几年中出现的主要策略和概念,用于在VS研究中定义混合LB + SB计算方案。特别地,注意力集中在分子相似性和对接的组合,示出了从文献中取出的选定应用。

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