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相关概念视频

Peroxisomes01:24

Peroxisomes

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Peroxisomes are specialized organelles present in fungi, plant, and animal cells. It can vary in number, size, morphology, and activity depending on the type of tissue and the nutritional state of the cell. For example, cells with active lipid metabolism, such as adipocytes, neurons, and hepatocytes, have more peroxisomes than other cells in the body. Besides their primary role in breaking down complex organic molecules, peroxisomes can also synthesize specific macromolecules and participate in...
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Peroxisomes and Mitochondria01:30

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Peroxisomes and mitochondria are two important oxygen-utilizing organelles in eukaryotic cells. Mitochondria carry out cellular respiration—the process that converts energy from food into ATP. Peroxisomes carry out a variety of functions, primarily breaking down different substances, such as fatty acids.
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Oxidation of Phenols to Quinones01:17

Oxidation of Phenols to Quinones

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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...
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Protein Import into the Peroxisomes01:27

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Cells contain membrane-bound organelles called peroxisomes that oxidize organic molecules by transferring hydrogen atoms to oxygen, producing hydrogen peroxide. Peroxisomes enzymatically convert the released hydrogen peroxide into water and oxygen.
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Catalytically Perfect Enzymes01:07

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The theory of catalytically perfect enzymes was first proposed by W.J. Albery and J. R. Knowles in 1976. These enzymes catalyze biochemical reactions at high-speed. Their catalytic efficiency values range from 108-109 M-1s-1. These enzymes are also called 'diffusion-controlled' as the only rate-limiting step in the catalysis is that of the substrate diffusion into the active site. Examples include triose phosphate isomerase, fumarase, and superoxide dismutase.
 
Most enzymes...
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Electron Transport Chain: Complex III and IV01:43

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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...
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第三类植物过氧化酶:从分类到生理功能

Cleverson D T Freitas1, José H Costa1, Thais A Germano1

  • 1Department of Biochemistry and Molecular Biology, Federal University of Ceará, Campus do Pici, Fortaleza, Ceará CEP 60451-970, Brazil.

International journal of biological macromolecules
|February 22, 2024
PubMed
概括

第三类植物过氧化酶是参与许多植物过程的关键海姆酶. 这一综述更新了关于它们的数据库,分类,系系,机制,结构和功能的知识.

关键词:
一个辅助的Auxin.细胞壁上的细胞壁.过氧化是一种过氧化.这就是ROSOS ROS.在RedOxiBase的基础上.

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科学领域:

  • 生物化学 生物化学
  • 植物科学 植物科学
  • 酶学 是一种酶学.

背景情况:

  • 过氧化酶是生物系统中发现的重要酶,被分类为海姆或非海姆.
  • 黑姆过氧化酶约占已知的过氧化酶的84%,而III类植物过氧化酶是一个重要的子组.
  • 第三类植物过氧化酶是海姆酶,其特点是保持结构和降解过氧化的机制.

研究的目的:

  • 提供对III类植物过氧化酶的最新审查.
  • 整合他们数据库,分类和族系学方面的信息.
  • 详细说明它们的作用机制,结构和植物中的各种生理功能.

主要方法:

  • 文献审查和数据库编译.
  • 对III类植物过氧化酶的遗传学分析.
  • 分析结构和机械学数据.
  • 综合有关生理作用的信息.

主要成果:

  • 第三类植物过氧酶是参与活性氧物种代谢,激素调节和细胞壁动态的多基因家族.
  • 这些酶在水果发育,植物防御机制以及细胞壁的合成和维护中发挥着关键作用.
  • 该审查巩固了目前对它们的进化关系,催化机制和结构特征的理解.

结论:

  • 由于其广泛的生理重要性,III类植物过氧化酶被广泛研究.
  • 本综述是植物生物化学和分子生物学研究人员的综合资源.
  • 对这些酶的进一步研究可以解锁农业和生物技术中的新应用.