Kılıç Mehmet, Gollan Peter J, Lepistö Anniina, Isojärvi Janne, Sakurai Isamu, Aro Eva-Mari, Mulo Paula
Molecular Plant Biology, Department of Life Technologies University of Turku Turku Finland.
Present address: Turku PET Centre University of Turku Turku Finland.
Plant Direct. 2022 Jun 6;6(6):e409. doi: 10.1002/pld3.409. eCollection 2022 Jun.
Photosystems I and II (PSI and PSII) are the integral components of the photosynthetic electron transport chain that utilize light to provide chemical energy for CO fixation. In this study, we investigated how the deficiency of PSII affects the gene expression, accumulation, and organization of thylakoid protein complexes as well as physiological characteristics of sp. PCC 6803 by combining biochemical, biophysical, and transcriptomic approaches. RNA-seq analysis showed upregulated expression of genes encoding the PSII core proteins, and downregulation of genes associated with interaction between light-harvesting phycobilisomes and PSI. Two-dimensional separation of thylakoid protein complexes confirmed the lack of PSII complexes, yet unassembled PSII subunits were detected. The content of PsaB representing PSI was lower, while the content of cytochrome bf complexes was higher in the PSII-less strain as compared with control (CS). Application of oxygraph measurements revealed higher rates of dark respiration and lower PSI activity in the mutant. The latter likely resulted from the detected decrease in the accumulation of PSI, PSI monomerization, increased proportion of energetically decoupled phycobilisomes in PSII-less cultures, and low abundance of phycocyanin. Merging the functional consequences of PSII depletion with differential protein and transcript accumulation in the mutant, in comparison to CS, identified signal transduction from the photosynthetic apparatus to the genome level.
光系统I和II(PSI和PSII)是光合电子传递链的组成部分,利用光能为CO固定提供化学能。在本研究中,我们结合生化、生物物理和转录组学方法,研究了PSII缺陷如何影响集胞藻PCC 6803的基因表达、类囊体蛋白复合物的积累和组织以及生理特性。RNA测序分析表明,编码PSII核心蛋白的基因表达上调,而与捕光藻胆体和PSI之间相互作用相关的基因表达下调。类囊体蛋白复合物的二维分离证实了PSII复合物的缺失,但检测到了未组装的PSII亚基。与对照(CS)相比,代表PSI的PsaB含量在无PSII菌株中较低,而细胞色素bf复合物的含量较高。氧电极测量结果显示,突变体的暗呼吸速率较高,PSI活性较低。后者可能是由于检测到PSI积累减少、PSI单体化、无PSII培养物中能量解偶联的藻胆体比例增加以及藻蓝蛋白丰度较低所致。与CS相比,将PSII缺失的功能后果与突变体中差异蛋白质和转录本积累相结合,确定了从光合装置到基因组水平的信号转导。