催化式的 enantioselective 化的循环烯的化
Marina Rubina1, Michael Rubin, Vladimir Gevorgyan
1Department of Chemistry, University of Illinois at Chicago, 845 West Taylor Street, Chicago, Illinois 60607-7061, USA.
Journal of the American Chemical Society
|March 25, 2004
概括
这项研究引入了第一种对环烯的催化酶选择性水分定位. 这种新的方法高效地合成了具有出色立体控制的奇拉性环烯酸.
科学领域:
- 有机化学 有机化学
- 有机金属化学 有机金属化学
背景情况:
- 环烯是具有独特反应性的应变基.
- 酵素选择性合成对于开发性分子至关重要.
- 水蒸化反应对于碳-碳键的形成有价值.
研究的目的:
- 开发了第一种对环烯的催化酶选择性化.
- 为了实现对立体定义的环烯酸的高效合成.
- 为了研究这种反应中的立体化学控制.
主要方法:
- 使用性催化剂的催化 enantioselective 化.
- 环烯与有机素化物的反应.
- 使用奇拉色谱学和NMR光谱学分析二聚体选择性和异能选择性.
主要成果:
- 证明了第一个催化酶选择性循环的水分分离.
- 实现了2,2-异位的环烯基斯坦南的高效合成.
- 获得了高度的二聚体选择性和反选择性.
- 展示了面部选择性是由硬质因素决定的.
- 证实了循环烯在C-3位置对各种功能组的耐受性.
结论:
- 循环烯的催化酶选择性化是一种可行的和高效的合成方法.
- 反应提供了获取有价值的合性环烯斯坦构建块的机会.
- 绝缘效应在控制反应的面部选择性方面发挥着主导作用.
相关概念视频
Regioselective Formation of Enolates
As depicted in the figure below, the unsymmetrical ketones can form two possible enolates: less substituted or more substituted enolates. Usually, the thermodynamic enolates are formed from the more substituted α-carbon atom, while the kinetic enolates are formed faster by deprotonation from the less substituted position. The thermodynamic enolates have lower energy, so they are more stable. But the energy required to form kinetic enolates is less.
Acid-Catalyzed α-Halogenation of Aldehydes and Ketones
By replacing an α-hydrogen with a halogen, acid-catalyzed α-halogenation of aldehydes or ketones yields a monohalogenated product
In the first step of the mechanism, the acid protonates the carbonyl oxygen resulting in a resonance-stabilized cation, which subsequently loses an α-hydrogen to form an enol tautomer. The C=C bond in an enol is highly nucleophilic because of the electron-donating nature of the –OH group. Consequently, the double bond attacks an electrophilic halogen to form a...
In the first step of the mechanism, the acid protonates the carbonyl oxygen resulting in a resonance-stabilized cation, which subsequently loses an α-hydrogen to form an enol tautomer. The C=C bond in an enol is highly nucleophilic because of the electron-donating nature of the –OH group. Consequently, the double bond attacks an electrophilic halogen to form a...
Thermal and Photochemical Electrocyclic Reactions: Overview
Electrocyclic reactions are reversible reactions. They involve an intramolecular cyclization or ring-opening of a conjugated polyene. Shown below are two examples of electrocyclic reactions. In the first reaction, the formation of the cyclic product is favored. In contrast, in the second reaction, ring-opening is favored due to the high ring strain associated with cyclobutene formation.
Thermal Electrocyclic Reactions: Stereochemistry
The stereochemistry of electrocyclic reactions is strongly influenced by the orbital symmetry of the polyene HOMO. Under thermal conditions, the reaction proceeds via the ground-state HOMO.
Selection Rules: Thermal Activation
Conjugated systems containing an even number of π-electron pairs undergo a conrotatory ring closure. For example, thermal electrocyclization of (2E,4E)-2,4-hexadiene, a conjugated diene containing two π-electron pairs, gives trans-3,4-dimethylcyclobutene.
Selection Rules: Thermal Activation
Conjugated systems containing an even number of π-electron pairs undergo a conrotatory ring closure. For example, thermal electrocyclization of (2E,4E)-2,4-hexadiene, a conjugated diene containing two π-electron pairs, gives trans-3,4-dimethylcyclobutene.
Photochemical Electrocyclic Reactions: Stereochemistry
The absorption of UV–visible light by conjugated systems causes the promotion of an electron from the ground state to the excited state. Consequently, photochemical electrocyclic reactions proceed via the excited-state HOMO rather than the ground-state HOMO. Since the ground- and excited-state HOMOs have different symmetries, the stereochemical outcome of electrocyclic reactions depends on the mode of activation; i.e., thermal or photochemical.
Selection Rules: Photochemical Activation
Selection Rules: Photochemical Activation
Stereochemical Effects of Enolization
The chiral α-carbon of the carbonyl compound is the stereocenter of the molecule. As shown in the figure below, when such a carbonyl compound undergoes racemization under an acidic or basic condition, an achiral enol is formed.


