在单酶生物合成中,由黄素依赖的单氧化酶形成三氧化物
Qian Wang1, Ning Liu2, Yaming Deng2
1Department of Chemistry and Biochemistry, The University of Texas at El Paso, 500 West University Avenue, El Paso, TX, 79968, USA.
Nature communications
|October 7, 2023
概括
单素A生物合成涉及通过 MonCI,一种依赖于黄素的单氧酶的立体特异性环氧化. 它的活性部位结构能够精确控制前宁素A中的多个烯转化.
科学领域:
- 生物化学 生物化学
- 酶学 是一种酶学.
- 自然产品生物合成 自然产品生物合成
背景情况:
- 单素A是一种聚乙烯多基胺抗生素.
- 它的生物合成涉及聚烯骨干结构,环氧化和循环以太形成.
- 黄素依赖的单氧化酶是这些过程中的关键酶.
研究的目的:
- 阐明MonCI对前列素A的立体特异性环氧化过程的结构基础.
- 了解MonCI如何适应和激活多个基底.
- 为了突出flavin依赖的单氧酶的多功能性.
主要方法:
- 蒙科的X射线晶体学.
- 分析活跃站点架构和基质结合腔的分析.
- 对MonCI的催化机制的生物化学表征.
主要成果:
- 蒙基的活性部位残留物为立体特异性烯方法预先组织.
- 一个大的基质结合腔允许灵活地适应前宁素A.
- 三种基中的任何一种都可以通过flavin辅因子被定位为环氧化.
结论:
- 通过精确的活跃站点组织,MonCI实现了精致的立体控制.
- 酶的适应性结合腔可在单个基板上促进多个环氧化.
- 蒙科伊 (MonCI) 是天然产品生物合成中的黄素依赖单氧基酶的功能多样性的典范.
更多相关视频
相关概念视频
Oxidation of Phenols to Quinones
3.1K
In the presence of oxidizing agents, phenols are oxidized to quinones. Quinones can be easily reduced back to phenols using mild reducing agents. The electron-donating hydroxyl group enhances the reactivity of the aromatic ring, enabling oxidation of the ring even in the absence of an α hydrogen.
o-hydroxy phenols are oxidized to o-quinones and p-hydroxy phenols to p-quinones. Such redox reactions involve the transfer of two electrons and two protons. The reversible redox...
o-hydroxy phenols are oxidized to o-quinones and p-hydroxy phenols to p-quinones. Such redox reactions involve the transfer of two electrons and two protons. The reversible redox...
3.1K
Pyruvate Oxidation
159.3K
After glycolysis, the charged pyruvate molecules enter the mitochondria via active transport and undergo three enzymatic reactions. These reactions ensure that pyruvate can enter the next metabolic pathway so that energy stored in the pyruvate molecules can be harnessed by the cells.
First, the enzyme pyruvate dehydrogenase removes the carboxyl group from pyruvate and releases it as carbon dioxide. The stripped molecule is then oxidized and releases electrons, which are then picked up by NAD+...
First, the enzyme pyruvate dehydrogenase removes the carboxyl group from pyruvate and releases it as carbon dioxide. The stripped molecule is then oxidized and releases electrons, which are then picked up by NAD+...
159.3K
Phase I Oxidative Reactions: Overview
287
Phase I biotransformation, or functionalization, is a crucial chemical process that converts drugs and other xenobiotics into more water-soluble forms, facilitating expulsion from the body. It involves oxidative, reductive, and hydrolytic reactions that add or unveil polar functional groups on lipophilic substrates. Key players in phase I reactions are the mixed-function oxidases. Situated in liver cell microsomes, these enzymes predominantly carry out drug metabolism. They require molecular...
287
The Electron Transport Chain
16.8K
The electron transport chain or oxidative phosphorylation is an exothermic process in which free energy released during electron transfer reactions is coupled to ATP synthesis. This process is a significant source of energy in aerobic cells, and therefore inhibitors of the electron transport chain can be detrimental to the cell's metabolic processes.
Inhibitors of the electron transport chain
Rotenone, a widely used pesticide, prevents electron transfer from Fe-S cluster to ubiquinone or Q...
Inhibitors of the electron transport chain
Rotenone, a widely used pesticide, prevents electron transfer from Fe-S cluster to ubiquinone or Q...
16.8K
Drug Metabolism: Phase I Reactions
3.3K
A phase I reaction is a biochemical process that introduces a functionally reactive polar group to a substance. This transformation predominantly occurs in the liver, facilitated by the cytochrome P450 system of hemoproteins situated in the lipophilic endoplasmic reticulum of cells. The metabolite generated through this process can have varying polarities. If it is sufficiently polar, it can be easily excreted in the urine due to its water compatibility. However, if the metabolite is nonpolar,...
3.3K
Electron Transport Chain: Complex III and IV
7.5K
During the electron transport chain, electrons from NADH and FADH2 are first transferred to complexes I and II, respectively. These two complexes then transfer the electrons to ubiquinol, which carries them further to complex III. Complex III passes the electrons across the intermembrane space to Cyt c, which carries them further to complex IV. Complex IV donates electrons to oxygen and reduces it to water. As electrons pass through complexes I, III, and IV, the energy released aids the pumping...
7.5K


