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Radical Reactivity: Overview01:11

Radical Reactivity: Overview

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Radicals, the highly reactive species, gain stability by undergoing three different reactions. The first reaction involves a radical-radical coupling, in which a radical combines with another radical, forming a spin‐paired molecule. The second reaction is between a radical and a spin‐paired molecule, generating a new radical and a new spin‐paired molecule. The third reaction is radical decomposition in a unimolecular reaction, forming a new radical and a spin‐paired...
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Radical Reactivity: Nucleophilic Radicals01:16

Radical Reactivity: Nucleophilic Radicals

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Radicals adjacent to electron-donating groups are called nucleophilic radicals. These radicals readily react with electrophilic alkenes. The SOMO–LUMO interactions are the driving force for the reaction, where the high-energy SOMO of the electron-rich, nucleophilic radicals interacts with the low-energy LUMO of the electron-deficient, electrophilic alkenes. Such SOMO–LUMO interactions are the basis of reactive radical traps, affecting the selectivity in radical reactions. For...
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Radical Reactivity: Electrophilic Radicals01:02

Radical Reactivity: Electrophilic Radicals

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Radicals adjacent to electron‐withdrawing groups are called electrophilic radicals. These radicals readily react with nucleophilic alkenes. For example, the malonate radical, in which the radical center is flanked by two electron‐withdrawing groups, reacts readily with butyl vinyl ether, which consists of an electron‐donating oxygen substituent. The reaction between electrophilic malonate radical and nucleophilic vinyl ether is favored because the radical has a...
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Radical Reactivity: Steric Effects01:10

Radical Reactivity: Steric Effects

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The presence of electron-donating, electron-withdrawing, or conjugating groups adjacent to a radical center, imparts electronic stabilization to the radicals. Examples of such electronically-stabilized radicals are triphenylmethyl, tetramethylpiperidine‐N‐oxide, and 2,2‐diphenyl‐1‐picrylhydrazyl. These radicals are remarkably stable and are known as persistent radicals. Some of the persistent radicals can even be isolated and purified.
Along with electronic...
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Radical Autoxidation01:20

Radical Autoxidation

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The oxidation of an organic compound in the presence of air or oxygen is called autoxidation. For example, cumene reacts with oxygen to form hydroperoxide. Autoxidation involves initiation, propagation, and termination steps. Many organic compounds are susceptible to autoxidation—especially ethers in the presence of oxygen, which form hydroperoxides. Even though this reaction is slow, old ether bottles contain small amounts of peroxide, which leads to laboratory explosions during ether...
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Oxidation of Alkenes: Anti Dihydroxylation with Peroxy Acids02:04

Oxidation of Alkenes: Anti Dihydroxylation with Peroxy Acids

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Diols are compounds with two hydroxyl groups. In addition to syn dihydroxylation, diols can also be synthesized through the process of anti dihydroxylation. The process involves treating an alkene with a peroxycarboxylic acid to form an epoxide. Epoxides are highly strained three-membered rings with oxygen and two carbons occupying the corners of an equilateral triangle. This step is followed by ring-opening of the epoxide in the presence of an aqueous acid to give a trans diol.
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这页已由机器翻译。其他页面可能仍然显示为英文。View in English
  1. 首页
  2. 研究领域
  3. 化学科学
  4. 有机化学
  5. 自由基化学
  6. 由ospd形成的α-碳基中间体的直接检测:对激素s-adenosyl-l-methionine的机制洞察

由OspD形成的α-碳基中间体的直接检测:对激素S-Adenosyl-l-methionine的机制洞察

William G Walls1, Anna L Vagstad2, Tyler Delridge1

  • 1Department of Chemistry & Biochemistry, Montana State University, Bozeman, Montana 59717, United States.

Journal of the American Chemical Society
|February 16, 2024

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Free Radicals in Chemical Biology: from Chemical Behavior to Biomarker Development
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Free Radicals in Chemical Biology: from Chemical Behavior to Biomarker Development

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Detection of Nitric Oxide and Superoxide Radical Anion by Electron Paramagnetic Resonance Spectroscopy from Cells using Spin Traps
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Laser-free Hydroxyl Radical Protein Footprinting to Perform Higher Order Structural Analysis of Proteins
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Laser-free Hydroxyl Radical Protein Footprinting to Perform Higher Order Structural Analysis of Proteins

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在PubMed 上查看摘要

概括
此摘要是机器生成的。

使用激素机制将氨基酸转化为D-氨基酸. 这项研究直接观察了基质中间体,揭示了

科学领域:

  • 生物化学
  • 酵素学
  • 自然产品生物合成

背景情况:

  • OspD是一种激进的S-adenosyl-l-methionine (SAM) 酶.
  • 它在OspA中表化异黄素和氨酸残留物,用于兰多纳米德A生物合成.
  • 拟议的机制涉及CαH原子抽象和由氨酸灭的激素.

研究的目的:

  • 阐明OspD的催化机制.
  • 直接观察Cα基的中间体.
  • 为了确定OspD介导的表皮化方向性.

主要方法:

  • 位点定向的突变发生 (OspD C334S变种).
  • 结灭的陷.
  • 同位素标记 (减肥的OspA).
  • 电子磁共振 (EPR) 光谱学

主要成果:

  • 使用EPR直接观察Cα基的中间体.
  • 最初的基因仅在异黄素上形成.
  • 通过序列激素形成的N-to-C方向性的证据.

结论:

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  • 通过Cα基中间体直接证明了OspD催化的表皮化.
  • 提供了对RiPP成熟的机制性见解.
  • 表明这种机制可能适用于其他蛋白质表酶.