点击三烯酸类侧链:一种强大的cis-amide诱导剂,使化学多样性成为可能
Cécile Caumes1, Olivier Roy, Sophie Faure
1Clermont Université, Université Blaise Pascal, Institut de Chimie de Clermont-Ferrand, BP 10448, F-63000 Clermont-Ferrand, France.
Journal of the American Chemical Society
|May 23, 2012
概括
研究人员为类动物开发了一种新的三侧链,增强对折叠结构的控制. 这一创新保护了侧链的多样性,同时促进了所需的cis构造,这是二相化学的重大进步.
科学领域:
- 类模拟剂和超分子化学
- 有机化学和化学生物学.
背景情况:
- 实现同质和离散的折叠型类结构依赖于控制脊柱三级胺基中的cis/trans异构.
- 目前的方法往往限制侧链多样性,这是类的关键优势.
- 类是有价值的类模拟剂,具有广泛的应用.
研究的目的:
- 引入一种新型的带正电荷的三类型侧链,用于类合成.
- 为了评估侧链在不牺牲多样性的情况下诱导 cis 形状的能力.
- 为了阐明 cis 指导效应背后的机制.
主要方法:
- 合成和表征N-乙胺二聚胺模型系统与三酸侧链.
- 核磁共振光谱法用于确定各种溶剂中的cis/trans同位素比率 (K(cis/trans)).
- 计算几何优化和自然键轨道分析.
- NOESY实验用于结构洞察力.
主要成果:
- 化侧链表现出优越的cis诱导能力,实现了报告中最佳的K (cis/trans) 值.
- 这种效应在近离子和前离子溶剂中都被观察到.
- 计算和实验数据支持一个涉及n → π*(Ar) 电子移位和合作性键的模型.
结论:
- 这种新型的三酸侧链有效地控制了类动物的cis/trans异构,从而保持了侧链的多样性.
- cis指导机制涉及电子移位和键的组合.
- 这一发现为设计精确折叠的状结构提供了一种新的策略,用于各种应用.
相关概念视频
Aryldiazonium Salts to Azo Dyes: Diazo Coupling
The reaction of weakly electrophilic aryldiazonium (also called arenediazonium) salts with highly activated aromatic compounds leads to the formation of products with an —N=N— link, called an azo linkage. This reaction, presented in Figure 1, is known as diazo coupling and occurs without the loss of the nitrogen atoms of the aryldiazonium salt. Highly activated aromatic compounds such as phenols or arylamines favor the diazo coupling reaction. The coupling generally occurs at the para position.
Diazonium Group Substitution: –OH and –H
Nitrous acid, a weak acid, is prepared in situ via the reaction of sodium nitrite with a strong acid under cold conditions. This nitrous acid prepared in situ reacts with primary arylamines to form arenediazonium salts. Such reactions are known as diazotization reactions. As shown in Figure 1, the formation of arenediazonium salts begins with the decomposition of nitrous acid in an acidic solution to give nitrosonium ions.
Preparation of 1° Amines: Azide Synthesis
Direct alkylation of ammonia produces polyalkylated amines, along with a quaternary ammonium salt. To exclusively prepare primary amines, the azide synthesis method can be used.
Azide ions act as good nucleophiles and react with unhindered alkyl halides to form alkyl azides. Alkyl azides do not participate in further nucleophilic substitution reactions, thereby eliminating the chances of polyalkylated products. Alkyl azides are reduced by hydride-based reducing agents, like lithium aluminum...
Azide ions act as good nucleophiles and react with unhindered alkyl halides to form alkyl azides. Alkyl azides do not participate in further nucleophilic substitution reactions, thereby eliminating the chances of polyalkylated products. Alkyl azides are reduced by hydride-based reducing agents, like lithium aluminum...
Acid Halides to Amides: Aminolysis
Aminolysis is a nucleophilic acyl substitution reaction, where ammonia or amines act as nucleophiles to give the substitution product. Acid halides react with ammonia, primary amines, and secondary amines to yield primary, secondary, and tertiary amides, respectively.
In the first step of the aminolysis mechanism, the amine attacks the carbonyl carbon of the acyl chloride to form a tetrahedral intermediate. In the second step, the carbonyl group is re-formed with the elimination of a chloride...
In the first step of the aminolysis mechanism, the amine attacks the carbonyl carbon of the acyl chloride to form a tetrahedral intermediate. In the second step, the carbonyl group is re-formed with the elimination of a chloride...
Preparation of Amides
Amides are synthesized by treating carboxylic acids with amines in the presence of dehydrating agents like dicyclohexylcarbodiimide (DCC).
The DCC-promoted synthesis of amides begins with the protonation of DCC by carboxylic acid. The protonation makes it a better acceptor. Next, the addition of carboxylate to the protonated carbodiimide gives a reactive acylating agent.
Subsequently, the amine acts as a nucleophile that attacks the acylating agent to form a tetrahedral intermediate. In the...
The DCC-promoted synthesis of amides begins with the protonation of DCC by carboxylic acid. The protonation makes it a better acceptor. Next, the addition of carboxylate to the protonated carbodiimide gives a reactive acylating agent.
Subsequently, the amine acts as a nucleophile that attacks the acylating agent to form a tetrahedral intermediate. In the...


