| Literature DB >> 28630648 |
Hui Chen1, Yanli Zheng1,2, Jiao Zhan1, Chenliu He1, Qiang Wang3.
Abstract
Microalgae are a promising feedstock for biofuel production. Microalgal metabolic pathways are heavily inEntities:
Keywords: Carbon metabolism; Lipid metabolism; Metabolome; Microalgae; Nitrogen assimilation; Nitrogen salvage
Year: 2017 PMID: 28630648 PMCID: PMC5471736 DOI: 10.1186/s13068-017-0839-4
Source DB: PubMed Journal: Biotechnol Biofuels ISSN: 1754-6834 Impact factor: 6.040
Fig. 1Lipid accumulation of three Chlorella strains with different lipid contents grown under nitrogen starvation. Lipid accumulation analyzed by CLSM (a) and TLC (b) after 0, 1, 2, and 6 day of N starvation. CLSM (a) images of cells with Bodipy 505/515 fluorescence (green) and Chl autofluorescence (red) in each treatment were recorded. The size of the scale bar is shown directly on the image. Asterisk symbol in b, glyceryl trioleate as loading standard. The expected lipid bands for further clarity were marked using red box. All of the figures are representative of three replicated studies with similar findings
Fig. 2Main nitrogen assimilation related to amino acid metabolism pathway in three Chlorella strains. a glutamate–glutamine system and corresponding transaminase pathways; b protein concentration in three Chlorella strains under N− treatment, all data points in the current and following figures represent the means and SD of five biological replicates (t test, p < 0.05), and the significance of the differences between the 0 day of each strain and other test values in 1, 2, and 6 day in the same strain was tested using a one-way ANOVA. *p < 0.05; c nitrogen assimilation and re-distribution from glutamate. The line plot Y-axis represents median-scaled (ion counts under the curve) intensity data. The intensity data have no units. In all plots, “1.0” represents the median of all the sample values detected for that compound. After determination of the median, any null values are imputed (substituted) with the minimum detected value for that compound
Fig. 3Arginine biosynthesis process in three Chlorella strains. The compound names with gray were undetected compounds. Solid arrow one step of metabolic flow, dotted arrow more than one step of metabolic flow. The line plot Y-axis represents median-scaled (ion counts under the curve) intensity data. The intensity data have no units. In all plots, “1.0” represents the median of all the sample values detected for that compound. After determination of the median, any null values are imputed (substituted) with the minimum detected value for that compound
Fig. 4Main nitrogen assimilation related to purine metabolism process in three Chlorella strains. The compound names with gray were undetected compounds. Solid arrow one step of metabolic flow, dotted arrow more than one step of metabolic flow. The line plot Y-axis represents median-scaled (ion counts under the curve) intensity data. The intensity data have no units. In all plots, “1.0” represents the median of all the sample values detected for that compound. After determination of the median, any null values are imputed (substituted) with the minimum detected value for that compound
Fig. 5Main nitrogen assimilation related to pyrimidine metabolism process in three Chlorella strains. The compound names with gray were undetected compounds. The line plot Y-axis represents median-scaled (ion counts under the curve) intensity data. The intensity data have no units. In all plots, “1.0” represents the median of all the sample values detected for that compound. After determination of the median, any null values are imputed (substituted) with the minimum detected value for that compound
Fig. 6The relative enzyme activities in three Chlorella strains. The relative enzyme activities of glutamine synthetase (GS) (a), glutamate synthase/NADH-dependent (NADH-GSN) (b), glutamate synthase/Fd-dependent (Fd-GSN) (c), aspartate aminotransferase (AST) (d), alanine aminotransferase (ALT) (e), pyruvate kinase (PK) (f), and citrate synthase (CS) (g) were detected after 0, 1, 2, and 6 day of N starvation, and control (0 day of C1) value of each enzyme activity was set to 1 for easy comparison. The significance of the differences between the 0 day of each strain and other test values in 1, 2, and 6 day in the same strain in each panel was tested using a one-way ANOVA. *p < 0.05
Fig. 7Main carbon sink and distribution from glycolysis process in three Chlorella strains. The compound names with gray were undetected compounds. Solid arrow one step of metabolic flow, dotted arrow more than one step of metabolic flow. The line plot Y-axis represents median-scaled (ion counts under the curve) intensity data. The intensity data have no units. In all plots, “1.0” represents the median of all the sample values detected for that compound. After determination of the median, any null values are imputed (substituted) with the minimum detected value for that compound
Fig. 8The relative enzyme activities and gene transcript levels in Chlamydomonas reinhardtii strain CC4533. The relative enzyme activities and gene transcript levels of glutamine synthetase (GS) (a, b), glutamate synthase/NADH-dependent (NADH-GSN) (c, d), glutamate synthase/Fd-dependent (Fd-GSN) (e, f), aspartate aminotransferase (AST) (g, h), alanine aminotransferase (ALT) (i, j), pyruvate kinase (PK) (k, l), and citrate synthase (CS) (m, n) were detected after 0, 12, 24, and 48 h of N starvation, and control (0 h) value of each enzyme activity or gene transcript level was set to 1 for easy comparison. The significance of the differences between the 0 h and other test values in each panel was tested using a one-way ANOVA. *p < 0.05
Fig. 9Lipid accumulation of Chlamydomonas reinhardtii strain CC4533 and its knock-out mutants. Lipid accumulation of Chlamydomonas reinhardtii strain CC4533 (1) and its knock-out mutants deficient in glutamate synthase/NADH-dependent (2), aspartate aminotransferase (3), glutamine synthetase (4), alanine aminotransferase (5), glutamate synthase/Fd-dependent (6), pyruvate kinase (7), and citrate synthase (8) cells labeled in vivo with Bodipy 505/515 were analyzed by FCM (A, B) and CLSM (C) after 0 h (a), 12 h (b), 24 h (c), and 48 h (d) of N starvation. A, B The control (0 h of sample 1) value of lipid content was set to 1 for easy comparison; the significance of the differences between the CC4533 (1) and other mutants in each time point was tested using a one-way ANOVA. *p < 0.05. C CLSM images of cells with Bodipy 505/515 fluorescence (green) in each treatment were recorded, all of the figures are representative of three replicated studies with similar findings, and the size of the scale bar is shown directly on the image
Fig. 10The distribution and contribution of nitrogen/carbon metabolism for lipid metabolism pathway. Black words the metabolic pathways which are related to lipid synthesis, gray words the metabolic pathways which are not related to lipid synthesis. Blue arrow N flow pathways, red arrow C flow pathways, green arrow N and C flow pathways. Solid arrow one step of metabolic flow, dotted arrow more than one step of metabolic flow