Recent advances in single-molecule spectroscopy studies on light-harvesting processes in oxygenic photosynthesis

T. Kondo, Yutaka Shibata
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引用次数: 1

Abstract

Photosynthetic light-harvesting complexes (LHCs) play a crucial role in concentrating the photon energy from the sun that otherwise excites a typical pigment molecule, such as chlorophyll-a, only several times a second. Densely packed pigments in the complexes ensure efficient energy transfer to the reaction center. At the same time, LHCs have the ability to switch to an energy-quenching state and thus play a photoprotective role under excessive light conditions. Photoprotection is especially important for oxygenic photosynthetic organisms because toxic reactive oxygen species can be generated through photochemistry under aerobic conditions. Because of the extreme complexity of the systems in which various types of pigment molecules strongly interact with each other and with the surrounding protein matrixes, there has been long-standing difficulty in understanding the molecular mechanisms underlying the flexible switching between the light-harvesting and quenching states. Single-molecule spectroscopy studies are suitable to reveal the conformational dynamics of LHCs reflected in the fluorescence properties that are obscured in ordinary ensemble measurements. Recent advanced single-molecule spectroscopy studies have revealed the dynamical fluctuations of LHCs in their fluorescence peak position, intensity, and lifetime. The observed dynamics seem relevant to the conformational plasticity required for the flexible activations of photoprotective energy quenching. In this review, we survey recent advances in the single-molecule spectroscopy study of the light-harvesting systems of oxygenic photosynthesis.
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含氧光合作用捕光过程的单分子光谱研究进展
光合作用的光收集复合体(lhc)在集中来自太阳的光子能量方面起着至关重要的作用,否则,一种典型的色素分子,如叶绿素-a,每秒只能激发几次。配合物中密集堆积的色素确保了有效的能量转移到反应中心。同时,lhc具有切换到能量猝灭状态的能力,从而在过度光照条件下发挥光保护作用。光保护对氧光合生物尤其重要,因为在有氧条件下,有毒的活性氧可以通过光化学产生。由于各种类型的色素分子彼此之间以及与周围蛋白质基质之间强烈相互作用的系统的极端复杂性,长期以来,在理解光捕获和猝灭状态之间灵活切换的分子机制方面一直存在困难。单分子光谱研究适合揭示lhc的构象动力学,这些构象动力学反映在普通系综测量所掩盖的荧光特性中。最近先进的单分子光谱研究揭示了lhc荧光峰位置、强度和寿命的动态波动。观察到的动力学似乎与光保护能猝灭的柔性激活所需的构象可塑性有关。本文综述了含氧光合作用光收集系统的单分子光谱研究的最新进展。
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