VKR Research Centre Pro-Active Plants and Center for Synthetic Biology, Department of Plant and Environmental Sciences, University of Copenhagen, Thorvaldsensvej 40, 1871 Frederiksberg C, Denmark.
J Exp Bot. 2013 Jul;64(10):2689-99. doi: 10.1093/jxb/ert126. Epub 2013 May 16.
Recently, bryophytes, which diverged from the ancestor of seed plants more than 400 million years ago, came into focus in photosynthesis research as they can provide valuable insights into the evolution of photosynthetic complexes during the adaptation to terrestrial life. This study isolated intact photosystem I (PSI) with its associated light-harvesting complex (LHCI) from the moss Physcomitrella patens and characterized its structure, polypeptide composition, and light-harvesting function using electron microscopy, mass spectrometry, biochemical, and physiological methods. It became evident that Physcomitrella possesses a strikingly high number of isoforms for the different PSI core subunits as well as LHCI proteins. It was demonstrated that all these different subunit isoforms are expressed at the protein level and are incorporated into functional PSI-LHCI complexes. Furthermore, in contrast to previous reports, it was demonstrated that Physcomitrella assembles a light-harvesting complex consisting of four light-harvesting proteins forming a higher-plant-like PSI superstructure.
最近,苔藓植物作为研究光合作用的焦点引起了人们的关注。苔藓植物与种子植物的祖先分化已有超过 4 亿年的历史,它们可以为光合作用复合物在适应陆地生活过程中的进化提供有价值的见解。本研究从苔藓植物拟南芥中分离出完整的光系统 I(PSI)及其相关的光捕获复合物(LHCI),并使用电子显微镜、质谱、生化和生理方法对其结构、多肽组成和光捕获功能进行了表征。研究结果表明,拟南芥拥有大量不同的 PSI 核心亚基和 LHCI 蛋白的同工型。结果表明,所有这些不同的亚基同工型都在蛋白质水平上表达,并被整合到功能性 PSI-LHCI 复合物中。此外,与之前的报道相反,研究表明拟南芥组装了一个由四个光捕获蛋白组成的光捕获复合物,形成了一种类似于高等植物的 PSI 超结构。