在溶液中的11-cis视网膜质子 Schiff 基的无障碍光异构
Giovanni Bassolino1, Tina Sovdat2, Alex Soares Duarte1
1Department of Chemistry, Physical and Theoretical Chemistry Laboratory, University of Oxford , South Parks Road, Oxford OX1 3QZ, U.K.
Journal of the American Chemical Society
|September 17, 2015
概括
主要的视觉事件涉及超快速的视网膜质子 Schiff 基 (RPSB) 光异构. 这项研究表明无障碍光异构化是一种内在的RPSB特性,不仅仅依赖于蛋白质.
科学领域:
- 摄影化学
- 分子生物学
- 视觉科学
背景情况:
- 视觉色素罗多普辛的功能依赖于视网膜质子希夫基 (RPSB) 染色体的11-cis到全跨光异构化.
- 这种超快和高效的反应被认为是主要视觉事件的标志.
- 罗多普辛中的染色体蛋白相互作用被认为会改变潜在能量表面,从而实现这种显著的反应性.
研究的目的:
- 调查无障碍光异构化是否是11-cis RPSB的内在特性.
- 确定蛋白质环境在调节RPSB光化学中的作用.
主要方法:
- 使用合成和超快光谱方法.
- 这项研究重点研究了11-cis RPSB染色体的内在特性.
主要成果:
- 无障碍光异构化被证实为11-cis RPSB的内在特性.
- 蛋白质环境可能主要调节激发状态的不同衰变途径之间的平衡.
结论:
- RPSB的内在反应性表明,罗多的作用可能是微调反应通道,而不是使无障碍异构化.
- 这些发现需要重新评估描述RPSB光化学及其在视觉中的作用的现有模型.
更多相关视频
相关概念视频
Photochemical Electrocyclic Reactions: Stereochemistry
2.4K
The absorption of UV–visible light by conjugated systems causes the promotion of an electron from the ground state to the excited state. Consequently, photochemical electrocyclic reactions proceed via the excited-state HOMO rather than the ground-state HOMO. Since the ground- and excited-state HOMOs have different symmetries, the stereochemical outcome of electrocyclic reactions depends on the mode of activation; i.e., thermal or photochemical.
Selection Rules: Photochemical Activation
Selection Rules: Photochemical Activation
2.4K
Photoreceptors and Visual Pathways
11.1K
At the molecular level, visual signals trigger transformations in photopigment molecules, resulting in changes in the photoreceptor cell's membrane potential. The photon's energy level is denoted by its wavelength, with each specific wavelength of visible light associated with a distinct color. The spectral range of visible light, classified as electromagnetic radiation, spans from 380 to 720 nm. Electromagnetic radiation wavelengths exceeding 720 nm fall under the infrared category,...
11.1K
Photosystem I
71.8K
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...
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...
71.8K
Thermal and Photochemical Electrocyclic Reactions: Overview
3.2K
Electrocyclic reactions are reversible reactions. They involve an intramolecular cyclization or ring-opening of a conjugated polyene. Shown below are two examples of electrocyclic reactions. In the first reaction, the formation of the cyclic product is favored. In contrast, in the second reaction, ring-opening is favored due to the high ring strain associated with cyclobutene formation.
3.2K
Photosystem II
80.6K
The multi-protein complex photosystem II (PS II) harvests photons and transfers their energy through its bound pigments to its reaction center, and ultimately to photosystem I (PSI) through the electron transport chain. The pigments responsible for caputirng the light energy in photosystems include chlorophyll a, chlorophyll b, and carotenoids.
The pigment molecules are arranged across two photosystem domains — the antenna complex and the reaction center. The main aim of the pigment...
The pigment molecules are arranged across two photosystem domains — the antenna complex and the reaction center. The main aim of the pigment...
80.6K
The Photochemical Reaction Center
5.9K
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...
5.9K


