在细菌酸转移酶中,碳基终结的酸转移体的特异性结构基础
Fei Xiao1, Sheng Dong, Yang Liu1
1Key Laboratory of Marine Drugs, Ministry of Education, School of Medicine and Pharmacy, Ocean University of China, 266003 Qingdao, China.
Journal of the American Chemical Society
|August 18, 2020
概括
研究人员确定了BmmI酶,它是一种β- 乳糖酶同类物,负责化/ 化巨乳素 (MLNs). 这一发现促进了对抗药性机制的理解,并有助于开发新的抗菌剂.
科学领域:
- 生物化学
- 酵素学
- 药物发现
背景情况:
- 麦克罗拉克 (MLN) 是对抗黄斑退化和瘤的重要药物.
- 马洛尼化/ 糖化MLN对多药耐药细菌具有有效性.
- 催化MLN的酶变异仍未确定.
研究的目的:
- 为了确定负责化/化巨乳素的酶.
- 阐明该酶的机制和基质特异性.
- 为药物开发提供合理的酶工程指导.
主要方法:
- 酶识别和表征
- 确定BmmI的晶体结构.
- 定位突变和酶工程.
主要成果:
- 一个β- 乳糖酶同类物,BmmI,被确定为乙基转移酶.
- BmmI将C3-C5酸结到MLN A,工程变种可以接受更长的链条.
- 结构和突变生成数据显示了关键的残留物 (Arg292,Lys76) 和类似氧离子孔的几何结构用于基质识别和催化.
结论:
- BmmI是修改宏素的关键酶,增强它们的抗菌性质.
- 了解BmmI的机制可以了解乙转移酶的选择性.
- 这项工作有助于开发新型治疗剂的酶工程.
相关概念视频
Substituent Effects on Acidity of Carboxylic Acids
7.6K
The acidity of carboxylic acids is influenced by the nature of the substituents bounded to the functional group. The acid strength is determined by the stability of the carboxylate anion—the conjugate base formed by dissociating the corresponding carboxylic acid.
7.6K
Nucleophilic Acyl Substitution of Carboxylic Acid Derivatives
4.6K
Nucleophilic acyl substitution is an important class of substitution reactions involving a nucleophile and an acyl compound, such as carboxylic acids and their derivatives. In these reactions, the leaving group attached to the acyl group is substituted by a nucleophile. The general mechanism proceeds via two steps.
4.6K
Structures of Carboxylic Acid Derivatives
3.6K
Structure of Carboxylic Acid Derivatives
Carboxylic acid derivatives contain an acyl group attached to a heteroatom such as chlorine, oxygen, or nitrogen. The carbonyl carbon and oxygen are both sp2-hybridized with an unhybridized p orbital.
The three sp2 orbitals of the carbonyl carbon form three σ bonds, one each with the carbonyl oxygen, the α carbon, and the heteroatom, whereas the other two sp2 orbitals of the carbonyl oxygen are occupied by the lone pairs. Further, the unhybridized p...
Carboxylic acid derivatives contain an acyl group attached to a heteroatom such as chlorine, oxygen, or nitrogen. The carbonyl carbon and oxygen are both sp2-hybridized with an unhybridized p orbital.
The three sp2 orbitals of the carbonyl carbon form three σ bonds, one each with the carbonyl oxygen, the α carbon, and the heteroatom, whereas the other two sp2 orbitals of the carbonyl oxygen are occupied by the lone pairs. Further, the unhybridized p...
3.6K
Reactions of Carboxylic Acids: Introduction
3.7K
Carboxylic acids possess an acidic –COOH functional group. The acidity can be attributed to the resonance stabilization of their conjugate base, wherein the negative charge is delocalized over both oxygen atoms.
3.7K
Acidity and Basicity of Carboxylic Acid Derivatives
4.0K
Carboxylic acids are the strongest among organic acids, as they readily lose the hydroxyl proton to form a resonance-stabilized carboxylate ion. In comparison, the acid derivatives lack acidic hydrogens directly attached to a functional group. In these compounds, the acidic nature arises from their ability to lose α hydrogens, making them weakly acidic.
The relative acidic strength of the derivatives can be explained based on the extent of resonance stabilization of the conjugate base. The...
The relative acidic strength of the derivatives can be explained based on the extent of resonance stabilization of the conjugate base. The...
4.0K
Relative Reactivity of Carboxylic Acid Derivatives
3.5K
Carboxylic acid derivatives such as acid halides, anhydrides, esters, and amides undergo nucleophilic acyl substitution reactions with varying degrees of reactivity.
A key factor in assessing the reactivity of the acid derivatives is the basicity of the substituent or the leaving group. The lower the basicity of the leaving group, the higher the reactivity of the derivative. The basicity of the leaving group follows this order:
Halide ions < Acyloxy ions < Alkoxy ions < Amine ions
A key factor in assessing the reactivity of the acid derivatives is the basicity of the substituent or the leaving group. The lower the basicity of the leaving group, the higher the reactivity of the derivative. The basicity of the leaving group follows this order:
Halide ions < Acyloxy ions < Alkoxy ions < Amine ions
3.5K


