Suppr超能文献

氢键协同作用:利用分子内氢键设计具有协同氢键供体中心的碳水化合物衍生物。

Hydrogen-bonding cooperativity: using an intramolecular hydrogen bond to design a carbohydrate derivative with a cooperative hydrogen-bond donor centre.

作者信息

Vicente Virginie, Martin Jason, Jiménez-Barbero Jesús, Chiara José Luis, Vicent Cristina

机构信息

Instituto de Química Orgánica General, CSIC, Juan de la Cierva 3, 28006 Madrid, Spain.

出版信息

Chemistry. 2004 Sep 6;10(17):4240-51. doi: 10.1002/chem.200400042.

Abstract

Neighbouring groups can be strategically located to polarise HO.OH intramolecular hydrogen bonds in an intended direction. A group with a unique hydrogen-bond donor or acceptor character, located at hydrogen-bonding distance to a particular OH group, has been used to initiate the hydrogen-bond network and to polarise a HO.OH hydrogen bond in a predicted direction. This enhanced the donor character of a particular OH group and made it a cooperative hydrogen-bond centre. We have proved that a five-membered-ring intramolecular hydrogen bond established between an amide NH group and a hydroxy group (1,2-e,a), which is additionally located in a 1,3-cis-diaxial relationship to a second hydroxy group, can be used to select a unique direction on the six-membered-ring intramolecular hydrogen bond between the two axial OH groups, so that one of them behaves as an efficient cooperative donor. Talose derivative 3 was designed and synthesised to prove this hydrogen-bonding network by NMR spectroscopy, and the mannopyranoside derivatives 1 and 2 were used as models to demonstrate the presence in solution of the 1,2-(e,a)/five-membered-ring intramolecular hydrogen bond. Once a well-defined hydrogen-bond is formed between the OH and the amido groups of a pyranose ring, these hydrogen-bonding groups no longer act as independent hydrogen-bonding centres, but as hydrogen-bonding arrays. This introduces a new perspective on the properties of carbohydrate OH groups and it is important for the de novo design of molecular recognition processes, at least in nonpolar media. Carbohydrates 1-3 have shown to be efficient phosphate binders in nonpolar solvents owing to the presence of cooperative hydroxy centres in the molecule.

摘要

相邻基团可通过策略性定位,使分子内的HO…OH氢键沿预期方向极化。具有独特氢键供体或受体特性的基团,与特定的OH基团处于氢键作用距离时,可用于启动氢键网络,并使HO…OH氢键沿预测方向极化。这增强了特定OH基团的供体特性,使其成为一个协同氢键中心。我们已经证明,酰胺NH基团与羟基之间形成的五元环分子内氢键(1,2-e,a),该羟基还与第二个羟基处于1,3-顺式双轴关系,可用于在两个轴向OH基团之间的六元环分子内氢键上选择一个独特的方向,从而使其中一个表现为高效的协同供体。设计并合成了塔罗糖衍生物3,通过核磁共振光谱证明了这种氢键网络,甘露吡喃糖苷衍生物1和2用作模型,以证明溶液中存在1,2-(e,a)/五元环分子内氢键。一旦在吡喃糖环的OH和酰胺基团之间形成明确的氢键,这些氢键基团就不再作为独立的氢键中心,而是作为氢键阵列起作用。这为碳水化合物OH基团的性质引入了新的视角,对于分子识别过程的从头设计很重要,至少在非极性介质中是如此。由于分子中存在协同羟基中心,碳水化合物1-3已被证明在非极性溶剂中是有效的磷酸盐结合剂。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验