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一种新颖的从奎宁出发进行结构多样且复杂大环化合物的多样性导向合成的复杂性到多样性策略。

A novel complexity-to-diversity strategy for the diversity-oriented synthesis of structurally diverse and complex macrocycles from quinine.

作者信息

Ciardiello J J, Stewart H L, Sore H F, Galloway W R J D, Spring D R

机构信息

Department of Chemistry, The University of Cambridge, Lensfield Road, Cambridge CB2 1EW, United Kingdom.

Department of Chemistry, The University of Cambridge, Lensfield Road, Cambridge CB2 1EW, United Kingdom.

出版信息

Bioorg Med Chem. 2017 Jun 1;25(11):2825-2843. doi: 10.1016/j.bmc.2017.02.060. Epub 2017 Feb 28.

Abstract

Recent years have witnessed a global decline in the productivity and advancement of the pharmaceutical industry. A major contributing factor to this is the downturn in drug discovery successes. This can be attributed to the lack of structural (particularly scaffold) diversity and structural complexity exhibited by current small molecule screening collections. Macrocycles have been shown to exhibit a diverse range of biological properties, with over 100 natural product-derived examples currently marketed as FDA-approved drugs. Despite this, synthetic macrocycles are widely considered to be a poorly explored structural class within drug discovery, which can be attributed to their synthetic intractability. Herein we describe a novel complexity-to-diversity strategy for the diversity-oriented synthesis of novel, structurally complex and diverse macrocyclic scaffolds from natural product starting materials. This approach exploits the inherent structural (including functional) and stereochemical complexity of natural products in order to rapidly generate diversity and complexity. Readily-accessible natural product-derived intermediates serve as structural templates which can be divergently functionalized with different building blocks to generate a diverse range of acyclic precursors. Subsequent macrocyclisation then furnishes compounds that are each based around a distinct molecular scaffold. Thus, high levels of library scaffold diversity can be rapidly achieved. In this proof-of-concept study, the natural product quinine was used as the foundation for library synthesis, and six novel structurally diverse, highly complex and functionalized macrocycles were generated.

摘要

近年来,全球制药行业的生产力和发展呈现出下降趋势。造成这一现象的一个主要因素是药物研发成功率的下降。这可归因于当前小分子筛选库所展现出的结构(尤其是骨架)多样性和结构复杂性的缺乏。大环化合物已被证明具有多种生物学特性,目前有100多种源自天然产物的例子作为FDA批准的药物上市。尽管如此,合成大环化合物在药物研发中仍被广泛认为是一类研究较少的结构类型,这可归因于它们的合成难度。在此,我们描述了一种新颖的从天然产物起始原料出发,以复杂性导向合成新型、结构复杂且多样的大环骨架的多样性策略。这种方法利用天然产物固有的结构(包括官能团)和立体化学复杂性,以便快速产生多样性和复杂性。易于获取的源自天然产物的中间体作为结构模板,可以用不同的构件进行发散性官能化,以生成各种无环前体。随后的大环化反应则提供了基于不同分子骨架的化合物。因此,可以快速实现高水平的库骨架多样性。在这项概念验证研究中,天然产物奎宁被用作库合成的基础,并生成了六种新型的、结构多样、高度复杂且功能化的大环化合物。

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