Subramanian Venkataramanan, Dubini Alexandra, Astling David P, Laurens Lieve M L, Old William M, Grossman Arthur R, Posewitz Matthew C, Seibert Michael
National Renewable Energy Laboratory , Golden, Colorado 80401, United States.
J Proteome Res. 2014 Dec 5;13(12):5431-51. doi: 10.1021/pr500342j. Epub 2014 Oct 21.
Chlamydomonas reinhardtii is well adapted to survive under different environmental conditions due to the unique flexibility of its metabolism. Here we report metabolic pathways that are active during acclimation to anoxia, but were previously not thoroughly studied under dark, anoxic H2-producing conditions in this model green alga. Proteomic analyses, using 2D-differential in-gel electrophoresis in combination with shotgun mass fingerprinting, revealed increased levels of proteins involved in the glycolytic pathway downstream of 3-phosphoglycerate, the glyoxylate pathway, and steps of the tricarboxylic acid (TCA) reactions. Upregulation of the enzyme, isocitrate lyase (ICL), was observed, which was accompanied by increased intracellular succinate levels, suggesting the functioning of glyoxylate pathway reactions. The ICL-inhibitor study revealed presence of reverse TCA reactions under these conditions. Contributions of the serine-isocitrate lyase pathway, glycine cleavage system, and c1-THF/serine hydroxymethyltransferase pathway in the acclimation to dark anoxia were found. We also observed increased levels of amino acids (AAs) suggesting nitrogen reorganization in the form of de novo AA biosynthesis during anoxia. Overall, novel routes for reductant utilization, in combination with redistribution of carbon and nitrogen, are used by this alga during acclimation to O2 deprivation in the dark.
莱茵衣藻由于其独特的代谢灵活性,能够很好地适应不同的环境条件。在此,我们报告了在适应缺氧过程中活跃的代谢途径,但此前在这种模式绿藻的黑暗、缺氧产氢条件下尚未对其进行深入研究。蛋白质组学分析采用二维差异凝胶电泳结合鸟枪法质谱指纹图谱,结果显示,在3-磷酸甘油酸下游的糖酵解途径、乙醛酸途径以及三羧酸(TCA)反应步骤中,相关蛋白质水平有所增加。观察到异柠檬酸裂解酶(ICL)的上调,同时细胞内琥珀酸水平升高,这表明乙醛酸途径反应发挥了作用。ICL抑制剂研究表明在这些条件下存在反向TCA反应。发现了丝氨酸-异柠檬酸裂解酶途径、甘氨酸裂解系统和c1-四氢叶酸/丝氨酸羟甲基转移酶途径在适应黑暗缺氧过程中的作用。我们还观察到氨基酸(AAs)水平升高,这表明在缺氧期间以从头合成氨基酸的形式进行了氮的重新组织。总体而言,这种藻类在适应黑暗中的氧气剥夺过程中,利用了新的还原剂利用途径,同时伴随着碳和氮的重新分布。