在正相洗脱条件下,以多糖为基础的手性固定相分离新的轴向手性羧酸

Barbara Sechi , Victor Mamane , Roberto Dallocchio , Alessandro Dessì , Sergio Cossu , Giorgi Jibuti , Paola Peluso
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引用次数: 3

摘要

在过去的十年中,基于4,4 ' -联吡啶核心的化学和区域选择性功能化制备取代的4,4 ' -联吡啶衍生物的新合成策略的出现,鼓励了对这些化合物在药物发现和药物化学领域的生物活性的研究。在取代的4,4 ' -联吡啶中,由位于4,4 ' -联芳基键(手性轴)周围的位阻原子或官能团诱导的受限旋转可能产生手性。2008年首次制备了取代4,4′-联吡啶的阿托品异构体,目前尚无不对称合成方法制备手性4,4′-联吡啶衍生物的纯阿托品异构体。因此,在过去的几年中,我们的团队开发了使用基于多糖的手性固定相(CSPs)的高效液相色谱(HPLC)分离一系列广泛的4,4 '衍生物的atropisomer的方法。在我们对这一领域感兴趣的框架下,我们在这里报道了两个新的手性羧酸的合成,其中包含一个轴向手性4,4 ' -联吡啶基单元作为手性来源,并在基于多糖的csp上对映体分离。特别是,分析物和CSP结构对对映体分离结果的影响,以及对映体分离的机制和非共价相互作用,通过静电势分析和分子动力学(MD)模拟进行了探讨。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enantioseparation of new axially chiral carboxylic acids on polysaccharide-based chiral stationary phases under normal phase elution conditions

In the last decade, the availability of new and versatile synthetic strategies for the preparation of substituted 4,4’-bipyridyl derivatives based on chemo- and regioselective functionalization of the 4,4’-bipyridine core has encouraged studies for exploring the bioactivity of these compounds in the fields of drug discovery and medicinal chemistry. In substituted 4,4’-bipyridines, chirality may emerge from restricted rotation induced by sterically hindered atoms or functional groups located around the 4,4’-biaryl bond (chiral axis). The first atropisomeric substituted 4,4’-bipyridine was prepared in 2008, and no asymmetric synthesis to produce pure atropisomers of chiral 4,4’-bipyridine derivatives has been available so far. Thus, in the last few years, our groups developed methods to separate atropisomers of a wide series of 4,4’-derivatives by high-performance liquid chromatography (HPLC) using polysaccharide-based chiral stationary phases (CSPs). In the frame of our interest in this field, we reported herein the synthesis of two new chiral carboxylic acids containing an axially chiral 4,4’-bipyridyl unit as source of chirality, and their HPLC enantioseparation on polysaccharide-based CSPs. In particular, the impact of analyte and CSP structures on the enantioseparation outcomes as well as mechanisms and noncovalent interactions underlying the enantioseparation were explored by using electrostatic potential analysis and molecular dynamics (MD) simulations.

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