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通过在 5 K 下进行超快荧光研究揭示了干燥地衣中多余光能的多个耗散分量。

Multiple dissipation components of excess light energy in dry lichen revealed by ultrafast fluorescence study at 5 K.

机构信息

Division of Material Science (Physics), Graduate School of Science, Nagoya University, Nagoya 464-8602, Japan.

出版信息

Photosynth Res. 2011 Oct;110(1):39-48. doi: 10.1007/s11120-011-9691-8. Epub 2011 Oct 11.

Abstract

A time-resolved fluorescence study of living lichen thalli at 5 K was conducted to clarify the dynamics and mechanism of the effective dissipation of excess light energy taking place in lichen under extreme drought conditions. The decay-associated spectra obtained from the experiment at 5 K were characterized by a drastically sharpened spectral band which could not be resolved by experiments at higher temperatures. The present results indicated the existence of two distinct dissipation components of excess light energy in desiccated lichen; one is characterized as rapid fluorescence decay with a time constant of 27 ps in the far-red region that was absent in wet lichen thalli, and the other is recognized as accelerated fluorescence decay in the 685-700 nm spectral region. The former energy-dissipation component with extremely high quenching efficiency is most probably ascribed to the emergence of a rapid quenching state in the peripheral-antenna system of photosystem II (PS II) on desiccation. This is an extremely effective protection mechanism of PS II under desiccation, which lichens have developed to survive in the severely desiccated environments. The latter, which is less efficient at 5 K, might have a supplementary role and take place either in the core antenna of PS II or aggregated peripheral antenna of PS II.

摘要

在 5K 条件下对活体地衣组织进行了时间分辨荧光研究,以阐明在极端干旱条件下地衣中过剩光能有效耗散的动力学和机制。在 5K 下进行的实验获得的衰减相关光谱的特点是光谱带急剧变锐,这在较高温度下的实验中无法分辨。目前的结果表明,在干燥的地衣中存在两种不同的过剩光能耗散成分;一种是在远红区以 27ps 的时间常数为特征的快速荧光衰减,在湿润的地衣组织中不存在,另一种是在 685-700nm 光谱区域中识别出的加速荧光衰减。具有极高猝灭效率的前一个能量耗散成分很可能归因于在 PS II (光合系统 II)的外围天线系统中出现快速猝灭状态。这是 PS II 在干燥条件下的一种极其有效的保护机制,地衣就是利用这种机制在严重干燥的环境中生存。在 5K 条件下效率较低的后者可能在 PS II 的核心天线或聚集的 PS II 外围天线中发挥补充作用。

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