Juergens Matthew T, Deshpande Rahul R, Lucker Ben F, Park Jeong-Jin, Wang Hongxia, Gargouri Mahmoud, Holguin F Omar, Disbrow Bradley, Schaub Tanner, Skepper Jeremy N, Kramer David M, Gang David R, Hicks Leslie M, Shachar-Hill Yair
Department of Plant Biology (M.T.J., R.R.D., B.D., Y.S.-H.) and Plant Research Laboratory (M.T.J., B.F.L., D.M.K.), Michigan State University, East Lansing, Michigan 48824;Institute of Biological Chemistry, Washington State University, Pullman, Washington 99164 (J.-J.P., M.G., D.R.G.);Donald Danforth Plant Science Center, St. Louis, Missouri 63132 (H.W., L.M.H.);National Center of Biomedical Analysis, Beijing 100850, China (H.W.);College of Agricultural, Consumer, and Environmental Sciences, New Mexico State University, Las Cruces, New Mexico 88003 (F.O.H., T.S.);Department of Physiology, Cambridge Advanced Imaging Centre, Cambridge CB2 3DY, United Kingdom (J.N.S.); andDepartment of Chemistry, University of North Carolina, Chapel Hill, North Carolina 27599 (L.M.H.).
Department of Plant Biology (M.T.J., R.R.D., B.D., Y.S.-H.) and Plant Research Laboratory (M.T.J., B.F.L., D.M.K.), Michigan State University, East Lansing, Michigan 48824;Institute of Biological Chemistry, Washington State University, Pullman, Washington 99164 (J.-J.P., M.G., D.R.G.);Donald Danforth Plant Science Center, St. Louis, Missouri 63132 (H.W., L.M.H.);National Center of Biomedical Analysis, Beijing 100850, China (H.W.);College of Agricultural, Consumer, and Environmental Sciences, New Mexico State University, Las Cruces, New Mexico 88003 (F.O.H., T.S.);Department of Physiology, Cambridge Advanced Imaging Centre, Cambridge CB2 3DY, United Kingdom (J.N.S.); andDepartment of Chemistry, University of North Carolina, Chapel Hill, North Carolina 27599 (L.M.H.)
Plant Physiol. 2015 Feb;167(2):558-73. doi: 10.1104/pp.114.250530. Epub 2014 Dec 8.
The accumulation of carbon storage compounds by many unicellular algae after nutrient deprivation occurs despite declines in their photosynthetic apparatus. To understand the regulation and roles of photosynthesis during this potentially bioenergetically valuable process, we analyzed photosynthetic structure and function after nitrogen deprivation in the model alga Chlamydomonas reinhardtii. Transcriptomic, proteomic, metabolite, and lipid profiling and microscopic time course data were combined with multiple measures of photosynthetic function. Levels of transcripts and proteins of photosystems I and II and most antenna genes fell with differing trajectories; thylakoid membrane lipid levels decreased, while their proportions remained similar and thylakoid membrane organization appeared to be preserved. Cellular chlorophyll (Chl) content decreased more than 2-fold within 24 h, and we conclude from transcript protein and (13)C labeling rates that Chl synthesis was down-regulated both pre- and posttranslationally and that Chl levels fell because of a rapid cessation in synthesis and dilution by cellular growth rather than because of degradation. Photosynthetically driven oxygen production and the efficiency of photosystem II as well as P700(+) reduction and electrochromic shift kinetics all decreased over the time course, without evidence of substantial energy overflow. The results also indicate that linear electron flow fell approximately 15% more than cyclic flow over the first 24 h. Comparing Calvin-Benson cycle transcript and enzyme levels with changes in photosynthetic (13)CO2 incorporation rates also pointed to a coordinated multilevel down-regulation of photosynthetic fluxes during starch synthesis before the induction of high triacylglycerol accumulation rates.
尽管许多单细胞藻类的光合机构有所衰退,但在营养物质缺乏后它们仍会积累碳储存化合物。为了了解在这个可能具有生物能量价值的过程中光合作用的调控及其作用,我们分析了模式藻类莱茵衣藻在氮缺乏后的光合结构和功能。将转录组学、蛋白质组学、代谢物和脂质谱分析以及微观时间进程数据与多种光合功能测量方法相结合。光系统I和II以及大多数天线基因的转录本和蛋白质水平呈不同轨迹下降;类囊体膜脂质水平降低,但其比例保持相似,类囊体膜组织似乎得以保留。细胞叶绿素(Chl)含量在24小时内下降了两倍多,我们从转录本、蛋白质和(13)C标记率得出结论,Chl合成在翻译前和翻译后均被下调,Chl水平下降是由于合成迅速停止以及细胞生长导致的稀释,而非降解。在整个时间进程中,光合驱动的氧气产生、光系统II的效率以及P700(+)还原和电致变色偏移动力学均下降,没有明显的能量溢流迹象。结果还表明,在最初的24小时内,线性电子流比循环电子流下降约15%。将卡尔文 - 本森循环转录本和酶水平与光合(13)CO2固定率的变化进行比较,也表明在高三酰甘油积累率诱导之前淀粉合成过程中光合通量存在协调的多层次下调。