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相关概念视频

The Photochemical Reaction Center01:29

The Photochemical Reaction Center

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Reaction centers are pigment-protein complexes that initiate energy conversion from photons to chemical entities. Therefore, photochemical reaction center is a more appropriate term that describes these complexes. The Nobel laureates Robert Emerson and William Arnold provided the first experimental evidence of photochemical reaction centers by demonstrating the participation of nearly 2,500 chlorophyll molecules for the release of just one molecule of oxygen. Despite thousands of photosynthetic...
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The Z-Scheme of Electron Transport in Photosynthesis01:34

The Z-Scheme of Electron Transport in Photosynthesis

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The light reactions of photosynthesis assume a linear flow of electrons from water to NADP+. During this process, light energy drives the splitting of water molecules to produce oxygen. However, oxidation of water molecules is a thermodynamically unfavorable reaction and requires a strong oxidizing agent. This is accomplished by the first product of light reactions: oxidized P680 (or P680+), the most powerful oxidizing agent known in biology. The oxidized P680 that acquires an electron from the...
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Channel Rhodopsins01:11

Channel Rhodopsins

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Most organisms use photoreceptors to sense and respond to light. Examples of photoreceptors include bacteriorhodopsins and bacteriophytochromes in some bacteria, phytochromes in plants, and rhodopsins in the photoreceptor cells of the vertebral retina. The light-sensitive property of these receptors is because of the bound chromophores, such as bilin in the phytochromes and retinal in the rhodopsins.
Rhodopsins belong to the family of cell surface proteins called G-protein coupled receptors,...
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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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The Antenna Complex01:42

The Antenna Complex

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Plants and other photosynthetic organisms comprise pigments capable of absorption of direct sunlight. These pigments are present in the reaction center - the main site of photochemical reactions as well as in the antenna complex. Under average light conditions, the rate at which reaction center pigments absorb light is far below the electron transport chain's capacity. As a result, the reaction center alone cannot provide enough energy to drive photosynthesis. The photosynthetic efficiency...
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Photosystem I01:27

Photosystem I

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Although structurally similar to photosystem II (PSII), photosystem I (PSI) is has a different electron supplier and electron acceptor.
Both these photosystems work in concert. An excited electron from PSII is relayed to PSI via an electron transport chain in the thylakoid membrane of the chloroplast, which is comprised of the carrier molecule plastoquinone, the dual-protein cytochrome complex, and plastocyanin. As electrons move between PSII and PSI, they lose energy and must be re-energized...
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相关实验视频

Updated: Jun 11, 2025

Spatiotemporal Control of Protein Activity through Optogenetic Allosteric Regulation
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Spatiotemporal Control of Protein Activity through Optogenetic Allosteric Regulation

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光激活人工CO2降解酶:结构和活性

Raphaël J Labidi1, Bruno Faivre1, Philippe Carpentier2,3

  • 1Laboratoire de Chimie des Processus Biologiques, UMR 8229, Collège de France, CNRS, Sorbonne Université, 11, Place Marcellin-Berthelot, Paris 75005, France.

Journal of the American Chemical Society
|October 1, 2024
PubMed
概括

研究人员开发了一种新型的人工酶,用于高效的二氧化碳 (CO2) 光还原到一氧化碳 (CO). 这种无贵金属系统实现了创纪录的性能,为CO2转化机制提供了洞察力.

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科学领域:

  • 生物催化和人工酶
  • 光化学和可再生能源
  • 碳捕获和利用

背景情况:

  • 人工酶为催化二氧化碳减少提供了有希望的途径.
  • 开发高效和选择性的CO2转换催化剂仍然是一个关键的挑战.

研究的目的:

  • 创建和描述一种用于光驱 CO2 减少的新型人工酶.
  • 通过使用无贵金属光系统,实现高活性和选择性,将CO2转化为CO.

主要方法:

  • 血氧酶与原氨酸IX的结合,形成一个人造酶.
  • 使用一种基于铜的光敏剂,使其无需贵金属.
  • 采用光物理研究和高分辨率晶体学研究反应机制和活性部位.

主要成果:

  • 在3小时后实现了~616小时-1的高周转频率和~589的周转数.
  • 获得了72%的CO与H2选择性,创下了人工CO2减少酶的新纪录.
  • 通过详细的光物理研究确定了反应中间体和阐明了机制性见解.

结论:

  • 这种结构特征的人造酶对CO2光降低具有出色的活性和选择性.
  • 这种无贵金属系统代表了人工光合作用中的重大进步.
  • 基于结构数据的位点定向突变可以进一步优化人工酶的性能.