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Functional analysis of photosynthetic pigment binding complexes in the green alga Haematococcus pluvialis reveals distribution of astaxanthin in Photosystems

机译:绿藻血球菌中光合色素结合复合物的功能分析揭示了虾青素在光系统中的分布

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摘要

Astaxanthin is a ketocarotenoid produced by photosynthetic microalgae. It is a pigment of high industrial interest in acquaculture, cosmetics, and nutraceutics due to its strong antioxidant power. Haematococcus pluvialis, a fresh-water microalga, accumulates high levels of astaxanthin upon oxidative stress, reaching values up to 5% per dry weight. H. pluvialis accumulates astaxanthin in oil droplets in the cytoplasm, while the chloroplast volume is reduced. In this work, we investigate the biochemical and spectroscopic properties of the H. pluvialis pigment binding complexes responsible for light harvesting and energy conversion. Our findings demonstrate that the main features of chlorophyll and carotenoid binding complexes previously reported for higher plants or Chlamydomonas reinhardtii are preserved under control conditions. Transition to astaxanthin rich cysts however leads to destabilization of the Photosystems. Surprisingly, astaxanthin was found to be bound to both Photosystem I and II, partially substituting β-carotene, and thus demonstrating possible astaxanthin biosynthesis in the plastids or transport from the cytoplasm to the chloroplast. Astaxanthin binding to Photosystems does not however improve their photoprotection, but rather reduces the efficiency of excitation energy transfer to the reaction centers. We thus propose that astaxanthin binding partially destabilizes Photosystem I and II.
机译:虾青素是由光合作用微藻产生的酮类胡萝卜素。由于其强大的抗氧化能力,它在水产养殖,化妆品和营养食品中具有很高的工业价值。淡水微球藻球菌在氧化应激时会积聚高水平的虾青素,达到每干重5%的值。幽门螺杆菌在细胞质中的油滴中积聚虾青素,而叶绿体的体积减少。在这项工作中,我们调查负责光收集和能量转换的H. pluvialis色素结合复合物的生化和光谱性质。我们的发现表明,先前报道的高等植物或莱茵衣藻的叶绿素和类胡萝卜素结合复合物的主要特征在控制条件下得以保留。然而,向富含虾青素的囊肿过渡会导致光系统不稳定。出乎意料的是,发现虾青素与光系统I和II结合,部分取代了β-胡萝卜素,从而证明了质体中虾青素的生物合成或从细胞质到叶绿体的转运。然而,虾青素与光系统的结合并不能改善其光保护作用,而是会降低激发能转移至反应中心的效率。因此,我们提出虾青素的结合会部分破坏光系统I和II的稳定性。

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