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相关概念视频

Electron Transport Chain Components01:29

Electron Transport Chain Components

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The electron transport chain (ETC) is a crucial metabolic pathway that facilitates energy conversion in prokaryotic and eukaryotic cells. In eukaryotes, the ETC comprises four membrane-associated protein complexes in the inner mitochondrial membrane. In prokaryotes, the ETC in the plasma membrane can vary in composition, with fewer or different complexes depending on the organism and environmental conditions. These complexes transfer electrons from electron donors, such as NADH and FADH2, to...
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Electron Transport Chains01:28

Electron Transport Chains

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The final stage of cellular respiration is oxidative phosphorylation that consists of two steps: the electron transport chain and chemiosmosis. The electron transport chain is a set of proteins found in the inner mitochondrial membrane in eukaryotic cells. Its primary function is to establish a proton gradient that can be used during chemiosmosis to produce ATP and generate electron carriers, such as NAD+ and FAD, that are used in glycolysis and the citric acid cycle.
The ETC is comprised of...
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Electron Transport Chain: Complex III and IV01:43

Electron Transport Chain: Complex III and IV

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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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Electron Transport Chain: Complex I and II01:46

Electron Transport Chain: Complex I and II

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The mitochondrial electron transport chain (ETC) is the main energy generation system in the eukaryotic cells. However, mitochondria also produce cytotoxic reactive oxygen species (ROS) due to the large electron flow during oxidative phosphorylation. While Complex I is one of the primary sources of superoxide radicals, ROS production by Complex II is uncommon and may only be observed in cancer cells with mutated complexes.
ROS generation is regulated and maintained at moderate levels necessary...
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The Supercomplexes in the Crista Membrane01:41

The Supercomplexes in the Crista Membrane

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The mitochondrial cristae membrane is the primary site for the oxidative phosphorylation (OXPHOS) process of energy conversion mediated through respiratory complexes I to V. These complexes have been widely studied for decades, and it has been proven that they form supramolecular structures called respiratory supercomplexes (SC). These higher-order complexes may be crucial in maintaining the biochemical structure and improving the physiological activity of the individual complexes while...
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Anoxygenic Photosynthesis01:30

Anoxygenic Photosynthesis

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Anoxygenic photosynthesis is a phototrophic process that captures light energy to drive carbon fixation without producing molecular oxygen. Unlike oxygenic photosynthesis, which utilizes water as an electron donor and releases oxygen, anoxygenic phototrophs use alternative electron donors such as hydrogen sulfide (H₂S), elemental sulfur (S⁰), or thiosulfate (S₂O₃²⁻). This process is carried out by diverse groups of bacteria, including purple bacteria, green...
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Electrochemical Detection of Deuterium Kinetic Isotope Effect on Extracellular Electron Transport in Shewanella oneidensis MR-1
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通过细菌细胞表面的多电子导体进行自旋依赖的电子传输

Suryakant Mishra1, Sahand Pirbadian2, Amit Kumar Mondal1

  • 1Department of Chemical and Biological Physics , Weizmann Institute of Science , Rehovot 76100 , Israel.

Journal of the American Chemical Society
|November 9, 2019
PubMed
概括

通过细菌外膜细胞染色体的电子传输是自旋选择性的,这一发现对微生物能量代谢和生物电子设备有影响. 这种自旋选择性会影响电子在生物-无生物界面上的流动.

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科学领域:

  • 微生物电化学和生物能源学
  • 电子转移的生物物理学
  • 纳米材料和生物传感

背景情况:

  • 细菌外膜多基因细胞染色体促进长距离 (> 10 nm) 的细胞外电子转移.
  • 这些细胞染色体将细胞内代谢与矿物质或电极等外部电子受体联系起来.
  • 基拉尔诱导的旋转选择性 (CIS) 是一种用于生物分子中高效的旋转依赖电子传输的机制.

研究的目的:

  • 调查旋转选择性是否影响细菌细胞外电子导体中的电子传输.
  • 探索性诱导的旋转选择性在MtrF和OmcA的功能中的作用.

主要方法:

  • 使用磁导探针原子力显微镜.
  • 进行了霍尔电压测量.
  • 在*Shewanella oneidensis* MR-1中对纯化的MtrF和OmcA进行了自旋依赖电化学.

主要成果:

  • 证明通过十甲基细胞染色体MtrF和OmcA的电子运输是自旋选择性的.
  • 在这些微生物细胞外导管中提供了自旋依赖电子转移的实验证据.

结论:

  • 由细菌细胞染色体介导的细胞外电子转移表现出奇拉诱导的旋转选择性.
  • 研究结果表明,自旋依赖的相互作用和磁场可以控制生物-无生物界面上的电子运输.
  • 对了解微生物呼吸和开发新生物电子技术的影响.