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探索光合藻类小环藻光捕获复合体中能量耗散的机制。

Exploring the mechanism(s) of energy dissipation in the light harvesting complex of the photosynthetic algae Cyclotella meneghiniana.

作者信息

Ramanan Charusheela, Berera Rudi, Gundermann Kathi, van Stokkum Ivo, Büchel Claudia, van Grondelle Rienk

机构信息

Division of Biophysics, Department of Physics and Astronomy, Faculty of Sciences, VU University Amsterdam, The Netherlands.

Institute of Molecular Biosciences, Goethe University Frankfurt, Frankfurt, Germany.

出版信息

Biochim Biophys Acta. 2014 Sep;1837(9):1507-13. doi: 10.1016/j.bbabio.2014.02.016. Epub 2014 Feb 24.

Abstract

Photosynthetic organisms have developed vital strategies which allow them to switch from a light-harvesting to an energy dissipative state at the level of the antenna system in order to survive the detrimental effects of excess light illumination. These mechanisms are particularly relevant in diatoms, which grow in highly fluctuating light environments and thus require fast and strong response to changing light conditions. We performed transient absorption spectroscopy on FCPa, the main light-harvesting antenna from the diatom Cyclotella meneghiniana, in the unquenched and quenched state. Our results show that in quenched FCPa two quenching channels are active and are characterized by differing rate constants and distinct spectroscopic signatures. One channel is associated with a faster quenching rate (16ns⁻¹) and virtually no difference in spectral shape compared to the bulk unquenched chlorophylls, while a second channel is associated with a slower quenching rate (2.7ns⁻¹) and exhibits an increased population of red-emitting states. We discuss the origin of the two processes in the context of the models proposed for the regulation of photosynthetic light-harvesting. This article is part of a special issue entitled: photosynthesis research for sustainability: keys to produce clean energy.

摘要

光合生物已经发展出至关重要的策略,使它们能够在天线系统层面从光捕获状态切换到能量耗散状态,以抵御过量光照的有害影响。这些机制在硅藻中尤为重要,因为硅藻生长在光照高度波动的环境中,因此需要对不断变化的光照条件做出快速而强烈的反应。我们对来自硅藻小环藻的主要光捕获天线FCPa在未猝灭和猝灭状态下进行了瞬态吸收光谱分析。我们的结果表明,在猝灭的FCPa中,两个猝灭通道是活跃的,其特征在于不同的速率常数和独特的光谱特征。一个通道与较快的猝灭速率(16ns⁻¹)相关,与未猝灭的叶绿素整体相比,光谱形状几乎没有差异,而第二个通道与较慢的猝灭速率(2.7ns⁻¹)相关,并且呈现出发射红光状态的增加。我们在为光合光捕获调节提出的模型背景下讨论这两个过程的起源。本文是名为:可持续性光合作用研究:生产清洁能源的关键的特刊的一部分。

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