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Cyanidioschyzon merolae 中光系统 I 的结构与功能。

Structure and function of photosystem I in Cyanidioschyzon merolae.

机构信息

Department of Biochemistry and Molecular Biology, The George S. Wise Faculty of Life Sciences, Tel Aviv University, 69978, Tel Aviv, Israel.

Institute of Plant Biology and Biotechnology, University of Münster, 48143, Münster, Germany.

出版信息

Photosynth Res. 2019 Mar;139(1-3):499-508. doi: 10.1007/s11120-018-0501-4. Epub 2018 Mar 26.

Abstract

The evolution of photosynthesis from primitive photosynthetic bacteria to higher plants has been driven by the need to adapt to a wide range of environmental conditions. The red alga Cyanidioschyzon merolae is a primitive organism, which is capable of performing photosynthesis in extreme acidic and hot environments. The study of its photosynthetic machinery may provide new insight on the evolutionary path of photosynthesis and on light harvesting and its regulation in eukaryotes. With that aim, the structural and functional properties of the PSI complex were investigated by biochemical characterization, mass spectrometry, and X-ray crystallography. PSI was purified from cells grown at 25 and 42 °C, crystallized and its crystal structure was solved at 4 Å resolution. The structure of C. merolae reveals a core complex with a crescent-shaped structure, formed by antenna proteins. In addition, the structural model shows the position of PsaO and PsaM. PsaG and PsaH are present in plant complex and are missing from the C. merolae model as expected. This paper sheds new light onto the evolution of photosynthesis, which gives a strong indication for the chimerical properties of red algae PSI. The subunit composition of the PSI core from C. merolae and its associated light-harvesting antennae suggests that it is an evolutionary and functional intermediate between cyanobacteria and plants.

摘要

光合作用从原始光合细菌到高等植物的进化是由适应广泛环境条件的需要驱动的。红藻 Cyanidioschyzon merolae 是一种原始生物,能够在极端酸性和高温环境中进行光合作用。研究其光合作用机制可能为光合作用的进化途径以及真核生物中的光捕获及其调节提供新的见解。为此,通过生化特性分析、质谱分析和 X 射线晶体学研究了 PSI 复合物的结构和功能特性。PSI 从在 25 和 42°C 下生长的细胞中纯化、结晶,并以 4Å 的分辨率解决了其晶体结构。C. merolae 的结构揭示了一个由天线蛋白形成的新月形结构的核心复合物。此外,结构模型还显示了 PsaO 和 PsaM 的位置。PsaG 和 PsaH 存在于植物复合物中,正如预期的那样,在 C. merolae 模型中缺失。本文揭示了光合作用的进化,强烈表明红藻 PSI 具有嵌合体特性。C. merolae 的 PSI 核心的亚基组成及其相关的光捕获天线表明,它是蓝细菌和植物之间的进化和功能中间体。

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