Approaches to Synthesis and Isolation of Enantiomerically Pure Biologically Active Atropisomers

IF 16.4 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY Accounts of Chemical Research Pub Date : 2022-10-04 DOI:10.1021/acs.accounts.2c00513
Anna-Carin C. Carlsson*, Staffan Karlsson*, Rachel H. Munday and Matthew R. Tatton, 
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引用次数: 6

Abstract

Atropisomerism is a stereochemical phenomenon exhibited by molecules containing a rotationally restricted σ bond. Contrary to classical point chirality, the two atropisomeric stereoisomers exist as a dynamic mixture and can be interconverted without the requirement of breaking and reforming a bond. Although this feature increases structural complexity, atropisomers have become frequent targets in medicinal chemistry projects. Their axial chirality, e.g., from axially chiral biaryl motifs, gives access to unique 3D structures. It is often desirable to have access to both enantiomers of the atropisomers via a nonselective reaction during the early discovery phase as it allows the medicinal chemistry team to probe the structure activity relationship in both directions. However, once a single atropisomer is selected, it presents several problems. First, the pure single atropisomer may interconvert to the undesired stereoisomer under certain conditions. Second, separation of atropisomers is nontrivial and often requires expensive chiral stationary phases using chromatography or additives if a salt resolution approach is chosen. Other options can be kinetic resolution using enzymes or chiral catalysts. However, apart from the high cost often associated with the two latter methods, a maximum yield of only 50% of the desired atropisomer can be obtained. The ideal approach is to install the chiral atropisomeric axis enantioselectively or employing a dynamic kinetic resolution approach. In theory, both approaches have the potential to provide a single atropisomer in quantitative yield. This Account will discuss the successes/failures and challenges we have experienced in developing methods for resolution/separation and asymmetric synthesis of atropisomeric drug candidates in one of our early phase drug development projects. Suitability for the different methods at various stages of the drug development phase is discussed. Depending on the scale and time available, a separation of a mixture of atropisomers by chromatography was sometimes preferred, whereas asymmetric- or resolution approaches were desired for long-term supply. With the use of chromatography, the impact on separation efficiency and solvent consumption, depending on the nature of the substrate, is discussed. We hope that with this Account the readers will get a better view on the challenges medicinal and process chemists meet when designing new atropisomeric drug candidates and developing processes for manufacture of a single atropisomer.

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对映体纯生物活性atropisomer的合成与分离方法
旋回异构是由含有受旋转限制的σ键的分子所表现出的一种立体化学现象。与经典的点手性相反,这两种对映体立体异构体作为一种动态混合物存在,并且可以在不需要打破和重整键的情况下相互转化。虽然这一特性增加了结构的复杂性,但缩二聚体已成为药物化学项目中常见的目标。它们的轴向手性,例如,从轴向手性双芳基基基,可以获得独特的三维结构。在早期发现阶段,通常希望通过非选择性反应获得atropisomer的两个对映体,因为它允许药物化学团队在两个方向上探索结构活性关系。然而,一旦选择了单一的阿托普二聚体,它就会出现几个问题。首先,在一定条件下,纯的单一反旋异构体可以相互转化为不需要的立体异构体。其次,如果选择盐分离方法,分离atropisomer是非常困难的,通常需要昂贵的手性固定相,使用色谱法或添加剂。其他选择可以是使用酶或手性催化剂的动力学分解。然而,除了通常与后两种方法相关的高成本之外,可以获得的最大产率仅为所需的atrosomomer的50%。理想的方法是对映选择性地安装手性消旋体轴或采用动态动力学解析方法。理论上,这两种方法都有可能提供单一的atrosomomer定量产率。本报告将讨论我们在一个早期药物开发项目中,在开发解/分离和不对称合成阿托品异构体候选药物的方法方面所经历的成功/失败和挑战。讨论了不同方法在药物开发阶段不同阶段的适用性。根据可用的规模和时间,有时首选用色谱法分离atropisomer混合物,而非对称或分离方法则需要长期供应。随着色谱的使用,根据底物的性质,讨论了对分离效率和溶剂消耗的影响。我们希望通过这篇文章,读者能够更好地了解药物和工艺化学家在设计新的抗缩异构体候选药物和开发制造单一抗缩异构体的工艺时遇到的挑战。
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来源期刊
Accounts of Chemical Research
Accounts of Chemical Research 化学-化学综合
CiteScore
31.40
自引率
1.10%
发文量
312
审稿时长
2 months
期刊介绍: Accounts of Chemical Research presents short, concise and critical articles offering easy-to-read overviews of basic research and applications in all areas of chemistry and biochemistry. These short reviews focus on research from the author’s own laboratory and are designed to teach the reader about a research project. In addition, Accounts of Chemical Research publishes commentaries that give an informed opinion on a current research problem. Special Issues online are devoted to a single topic of unusual activity and significance. Accounts of Chemical Research replaces the traditional article abstract with an article "Conspectus." These entries synopsize the research affording the reader a closer look at the content and significance of an article. Through this provision of a more detailed description of the article contents, the Conspectus enhances the article's discoverability by search engines and the exposure for the research.
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