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本文引用的文献

1
Light Intensity Adaptation and Phycobilisome Composition of Microcystis aeruginosa.铜绿微囊藻的光强度适应与藻胆体组成
Plant Physiol. 1985 Dec;79(4):983-7. doi: 10.1104/pp.79.4.983.
2
Acclimation Processes in the Light-Harvesting System of the Cyanobacterium Anacystis nidulans following a Light Shift from White to Red Light.集胞藻6803光捕获系统在从白光转换为红光后的适应过程
Plant Physiol. 1985 May;78(1):110-4. doi: 10.1104/pp.78.1.110.
3
Photosystem electron-transport capacity and light-harvesting antenna size in maize chloroplasts.玉米叶绿体中的光系统电子传递能力和捕光天线大小。
Plant Physiol. 1984 Apr;74(4):993-8. doi: 10.1104/pp.74.4.993.
4
Photochemical Apparatus Organization in Anacystis nidulans (Cyanophyceae) : Effect of CO(2) Concentration during Cell Growth.蓝藻门鱼腥藻(Cyanophyceae)的光化学仪器组织:细胞生长过程中 CO(2)浓度的影响。
Plant Physiol. 1984 Jan;74(1):67-71. doi: 10.1104/pp.74.1.67.
5
Light Harvesting in Anacystis nidulans Studied in Pigment Mutants.在色素突变体中研究集胞藻6803的光能捕获
Plant Physiol. 1980 Dec;66(6):1144-9. doi: 10.1104/pp.66.6.1144.
6
Phycobilisome composition and possible relationship to reaction centers.藻胆体的组成及其与反应中心的可能关系。
Arch Biochem Biophys. 1983 Jul 15;224(2):534-42. doi: 10.1016/0003-9861(83)90241-2.
7
On the state 1-state 2 phenomenon in photosynthesis.关于光合作用中的1态-2态现象。
Biochim Biophys Acta. 1974 Apr 23;347(1):134-40. doi: 10.1016/0005-2728(74)90206-0.
8
Photochemical activity and components of membrane preparations from blue-green algae. I. Coexistence of two photosystems in relation to chlorophyll a and removal of phycocyanin.蓝藻膜制剂的光化学活性和成分。I. 与叶绿素a相关的两个光系统的共存以及藻蓝蛋白的去除
Biochim Biophys Acta. 1974 Aug 23;357(2):231-45. doi: 10.1016/0005-2728(74)90063-2.
9
Cyanobacterial phycobilisomes. Characterization of the phycobilisomes of Synechococcus sp. 6301.蓝藻藻胆体。聚球藻属6301藻胆体的特性
J Biol Chem. 1978 Nov 25;253(22):8303-10.

蓝细菌对光系统I或光系统II光照的适应性

Cyanobacterial Acclimation to Photosystem I or Photosystem II Light.

作者信息

Manodori A, Melis A

机构信息

Division of Molecular Plant Biology, 313 Hilgard Hall, University of California, Berkeley, California 94720.

出版信息

Plant Physiol. 1986 Sep;82(1):185-9. doi: 10.1104/pp.82.1.185.

DOI:10.1104/pp.82.1.185
PMID:16664989
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1056087/
Abstract

The organization and function of the photochemical apparatus of Synechococcus 6301 was investigated in cells grown under yellow and red light regimes. Broadband yellow illumination is absorbed preferentially by the phycobilisome (PBS) whereas red light is absorbed primarily by the chlorophyll (Chl) pigment beds. Since PBSs are associated exclusively with photosystem II (PSII) and most of the Chl with photosystem I (PSI), it follows that yellow and red light regimes will create an imbalance of light absorption by the two photosystems. The cause and effect relationship between light quality and photosystem stoichiometry in Synechococcus was investigated. Cells grown under red light compensated for the excitation imbalance by synthesis/assembly of more PBS-PSII complexes resulting in high PSII/PSI = 0.71 and high bilin/Chl = 1.30. The adjustment of the photosystem stoichiometry in red light-grown cells was necessary and sufficient to establish an overall balanced absorption of red light by PSII and PSI. Cells grown under yellow light compensated for this excitation imbalance by assembly of more PSI complexes, resulting in low PSII/PSI = 0.27 and low bilin/Chl = 0.42. This adjustment of the photosystem stoichiometry in yellow light-grown cells was necessary but not quite sufficient to balance the absorption of yellow light by the PBS and the Chl pigment beds. A novel excitation quenching process was identified in yellow light-grown cells which dissipated approximately 40% of the PBS excitation, thus preventing over-excitation of PSII under yellow light conditions. It is hypothesized that State transitions in O(2) evolving photosynthetic organisms may serve as the signal for change in the stoichiometry of photochemical complexes in response to light quality conditions.

摘要

对聚球藻6301在黄光和红光条件下生长的细胞中的光化学装置的组织和功能进行了研究。宽带黄光优先被藻胆体(PBS)吸收,而红光主要被叶绿素(Chl)色素层吸收。由于PBS仅与光系统II(PSII)相关,而大部分Chl与光系统I(PSI)相关,因此黄光和红光条件会导致两个光系统的光吸收失衡。研究了聚球藻中光质与光系统化学计量之间的因果关系。在红光下生长的细胞通过合成/组装更多的PBS-PSII复合物来补偿激发失衡,从而导致高PSII/PSI = 0.71和高藻胆素/Chl = 1.30。红光下生长的细胞中光系统化学计量的调整对于PSII和PSI对红光的整体平衡吸收是必要且充分的。在黄光下生长的细胞通过组装更多的PSI复合物来补偿这种激发失衡,导致低PSII/PSI = 0.27和低藻胆素/Chl = 0.42。黄光下生长的细胞中光系统化学计量的这种调整对于平衡PBS和Chl色素层对黄光的吸收是必要的,但并不完全充分。在黄光下生长的细胞中发现了一种新的激发猝灭过程,该过程耗散了约40%的PBS激发,从而防止了在黄光条件下PSII的过度激发。据推测,进行放氧光合作用的生物体中的状态转换可能作为响应光质条件的光化学复合物化学计量变化的信号。