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Reevaluating the mechanism of excitation energy regulation in iron-starved cyanobacteria.重新评估缺铁蓝藻中激发能调控的机制。
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Studying Soft-matter and Biological Systems over a Wide Length-scale from Nanometer and Micrometer Sizes at the Small-angle Neutron Diffractometer KWS-2.在小角中子衍射仪KWS-2上,研究从纳米和微米尺寸的宽长度尺度上的软物质和生物系统。
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Cyanobacterial photoprotection by the orange carotenoid protein.蓝藻的光保护机制:橙色类胡萝卜素蛋白。
Nat Plants. 2016 Dec 2;2(12):16180. doi: 10.1038/nplants.2016.180.
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Cysteine-mediated mechanism disrupts energy transfer to prevent photooxidation.半胱氨酸介导的机制会破坏能量传递以防止光氧化。
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LHCSR1 induces a fast and reversible pH-dependent fluorescence quenching in LHCII in Chlamydomonas reinhardtii cells.LHCSR1在莱茵衣藻细胞的LHCII中诱导快速且可逆的pH依赖性荧光猝灭。
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The nature of self-regulation in photosynthetic light-harvesting antenna.光合作用光捕获天线自我调节的本质。
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Orange carotenoid protein burrows into the phycobilisome to provide photoprotection.橙色类胡萝卜素蛋白嵌入藻胆体以提供光保护。
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10
Cyanobacterial Light-Harvesting Phycobilisomes Uncouple From Photosystem I During Dark-To-Light Transitions.蓝藻光捕获藻胆体在暗-光转换期间与光系统I解偶联。
Sci Rep. 2015 Sep 21;5:14193. doi: 10.1038/srep14193.

光收集复合物聚集状态的变化作为调节沙漠结皮蓝藻中能量转移的机制。

Changes in aggregation states of light-harvesting complexes as a mechanism for modulating energy transfer in desert crust cyanobacteria.

机构信息

Department of Plant & Environmental Sciences, The Alexander Silberman Institute of Life Sciences, The Hebrew University of Jerusalem, Jerusalem 91904, Israel.

Laboratory of Biophysics, Wageningen University, 6700 ET Wageningen, The Netherlands.

出版信息

Proc Natl Acad Sci U S A. 2017 Aug 29;114(35):9481-9486. doi: 10.1073/pnas.1708206114. Epub 2017 Aug 14.

DOI:10.1073/pnas.1708206114
PMID:28808031
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5584450/
Abstract

In this paper we propose an energy dissipation mechanism that is completely reliant on changes in the aggregation state of the phycobilisome light-harvesting antenna components. All photosynthetic organisms regulate the efficiency of excitation energy transfer (EET) to fit light energy supply to biochemical demands. Not many do this to the extent required of desert crust cyanobacteria. Following predawn dew deposition, they harvest light energy with maximum efficiency until desiccating in the early morning hours. In the desiccated state, absorbed energy is completely quenched. Time and spectrally resolved fluorescence emission measurements of the desiccated desert crust strain identified () reduced EET between phycobilisome components, () shorter fluorescence lifetimes, and () red shift in the emission spectra, compared with the hydrated state. These changes coincide with a loss of the ordered phycobilisome structure, evident from small-angle neutron and X-ray scattering and cryo-transmission electron microscopy data. Based on these observations we propose a model where in the hydrated state the organized rod structure of the phycobilisome supports directional EET to reaction centers with minimal losses due to thermal dissipation. In the desiccated state this structure is lost, giving way to more random aggregates. The resulting EET path will exhibit increased coupling to the environment and enhanced quenching.

摘要

在本文中,我们提出了一种完全依赖于藻胆体光捕获天线组件聚集状态变化的能量耗散机制。所有光合生物都通过调节激发能量转移(EET)的效率来适应光能供应与生物化学需求之间的关系。但很少有生物像沙漠结皮蓝藻那样做到这一点。在黎明前露水沉积之后,它们以最大效率收集光能,直到清晨干燥。在干燥状态下,吸收的能量完全被猝灭。对干燥的沙漠结皮 菌株进行时间和光谱分辨荧光发射测量,与水合状态相比,发现()藻胆体组件之间的 EET 减少,()荧光寿命缩短,以及()发射光谱红移。这些变化与藻胆体结构的有序性丧失一致,这一点可以从小角度中子和 X 射线散射以及低温透射电子显微镜数据中得到证实。基于这些观察结果,我们提出了一个模型,即在水合状态下,藻胆体的有组织的棒状结构支持向反应中心进行定向 EET,热耗散导致的损失最小。在干燥状态下,这种结构丢失,取而代之的是更多的随机聚集体。由此产生的 EET 路径将表现出与环境的增强耦合和增强猝灭。