Integrating Transcriptomics and Metabolomics to Characterize Metabolic Regulation to Elevated CO2 in Chlamydomonas Reinhardtii

莱茵衣藻 代谢组 生物 转录组 代谢组学 光合作用 新陈代谢 代谢途径 糖酵解 衣原体 柠檬酸循环 生物化学 植物 基因 生物信息学 基因表达 突变体
作者
Yufei Zhang,Zipeng Gu,Yudong Ren,Lu Wang,Jian Zhang,Chengwei Liang,Shanying Tong,Yitao Wang,Dong Xu,Xiaowen Zhang,Naihao Ye
出处
期刊:Marine Biotechnology [Springer Science+Business Media]
卷期号:23 (2): 255-275 被引量:26
标识
DOI:10.1007/s10126-021-10021-y
摘要

With atmospheric CO2 increasing, a large amount of CO2 is absorbed by oceans and lakes, which changes the carbonate system and affects the survival of aquatic plants, especially microalgae. The main aim of our study was to explore the responses of Chlamydomonas reinhardtii (Chlorophyceae) to elevated CO2 by combined transcriptome and metabolome analysis under three different scenarios: control (CK, 400 ppm), short-term elevated CO2 (ST, 1000 ppm), and long-term elevated CO2 (LT, 1000 ppm). The transcriptomic data showed moderate changes between ST and CK. However, metabolic analysis indicated that fatty acids (FAs) and partial amino acids (AAs) were increased under ST. There was a global downregulation of genes involved in photosynthesis, glycolysis, lipid metabolism, and nitrogen metabolism but increase in the TCA cycle and β-oxidation under LT. Integrated transcriptome and metabolome analyses demonstrated that the nutritional constituents (FAs, AAs) under LT were poor compared with CK, and most genes and metabolites involved in C and N metabolism were significantly downregulated. However, the growth and photosynthesis of cells under LT increased significantly. Thus, C. reinhardtii could form a specific adaptive evolution to elevated CO2, affecting future biogeochemical cycles.
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