Oxygen dependence of metabolic fluxes and energy generation of Saccharomyces cerevisiae CEN.PK113-1A

被引:91
作者
Jouhten, Paula [1 ]
Rintala, Eija [1 ]
Huuskonen, Anne [1 ]
Tamminen, Anu [1 ]
Toivari, Mervi [1 ]
Wiebe, Marilyn [1 ]
Ruohonen, Laura [1 ]
Penttila, Merja [1 ]
Maaheimo, Hannu [1 ]
机构
[1] VTT Tech Res Ctr Finland, Espoo, Finland
来源
BMC SYSTEMS BIOLOGY | 2008年 / 2卷
基金
芬兰科学院;
关键词
D O I
10.1186/1752-0509-2-60
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Background: The yeast Saccharomyces cerevisiae is able to adjust to external oxygen availability by utilizing both respirative and fermentative metabolic modes. Adjusting the metabolic mode involves alteration of the intracellular metabolic fluxes that are determined by the cell's multilevel regulatory network. Oxygen is a major determinant of the physiology of S. cerevisiae but understanding of the oxygen dependence of intracellular flux distributions is still scarce. Results: Metabolic flux distributions of S. cerevisiae CEN. PK113-1A growing in glucose-limited chemostat cultures at a dilution rate of 0.1 h(-1) with 20.9%, 2.8%, 1.0%, 0.5% or 0.0% O(2) in the inlet gas were quantified by (13)C-MFA. Metabolic flux ratios from fractional [U-(13)C] glucose labelling experiments were used to solve the underdetermined MFA system of central carbon metabolism of S. cerevisiae. While ethanol production was observed already in 2.8% oxygen, only minor differences in the flux distribution were observed, compared to fully aerobic conditions. However, in 1.0% and 0.5% oxygen the respiratory rate was severely restricted, resulting in progressively reduced fluxes through the TCA cycle and the direction of major fluxes to the fermentative pathway. A redistribution of fluxes was observed in all branching points of central carbon metabolism. Yet only when oxygen provision was reduced to 0.5%, was the biomass yield exceeded by the yields of ethanol and CO(2). Respirative ATP generation provided 59% of the ATP demand in fully aerobic conditions and still a substantial 25% in 0.5% oxygenation. An extensive redistribution of fluxes was observed in anaerobic conditions compared to all the aerobic conditions. Positive correlation between the transcriptional levels of metabolic enzymes and the corresponding fluxes in the different oxygenation conditions was found only in the respirative pathway. Conclusion: (13)C-constrained MFA enabled quantitative determination of intracellular fluxes in conditions of different redox challenges without including redox cofactors in metabolite mass balances. A redistribution of fluxes was observed not only for respirative, respiro-fermentative and fermentative metabolisms, but also for cells grown with 2.8%, 1.0% and 0.5% oxygen. Although the cellular metabolism was respiro-fermentative in each of these low oxygen conditions, the actual amount of oxygen available resulted in different contributions through respirative and fermentative pathways.
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页数:19
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共 81 条
  • [1] [Anonymous], 2007, SACCHAROMYCES GENOME
  • [2] Determination of confidence intervals of metabolic fluxes estimated from stable isotope measurements
    Antoniewicz, Maciek R.
    Kelleher, Joanne K.
    Stephanopoulos, Gregory
    [J]. METABOLIC ENGINEERING, 2006, 8 (04) : 324 - 337
  • [3] Yeast mitochondrial metabolism:: From in vitro to in situ quantitative study
    Avéret, N
    Fitton, V
    Bunoust, O
    Rigoulet, M
    Guérin, B
    [J]. MOLECULAR AND CELLULAR BIOCHEMISTRY, 1998, 184 (1-2) : 67 - 79
  • [4] The mitochondrial alcohol dehydrogenase adh3p is involved in a redox shuttle in Saccharomyces cerevisiae
    Bakker, BM
    Bro, C
    Kötter, P
    Luttik, MAH
    van Dijken, JP
    Pronk, JT
    [J]. JOURNAL OF BACTERIOLOGY, 2000, 182 (17) : 4730 - 4737
  • [5] Stoichiometry and compartmentation of NADH metabolism in Saccharomyces cerevisiae
    Bakker, BM
    Overkamp, KM
    van Maris, AJA
    Kötter, P
    Luttik, MAH
    van Dijken, JP
    Pronk, JT
    [J]. FEMS MICROBIOLOGY REVIEWS, 2001, 25 (01) : 15 - 37
  • [6] Large-scale 13C-flux analysis reveals mechanistic principles of metabolic network robustness to null mutations in yeast -: art. no. R49
    Blank, LM
    Kuepfer, L
    Sauer, U
    [J]. GENOME BIOLOGY, 2005, 6 (06)
  • [7] Metabolic-flux and network analysis in fourteen hemiascomycetous yeasts
    Blank, LM
    Lehmbeck, F
    Sauer, U
    [J]. FEMS YEAST RESEARCH, 2005, 5 (6-7) : 545 - 558
  • [8] Identification and characterization of MAE1, the Saccharomyces cerevisiae structural gene encoding mitochondrial malic enzyme
    Boles, E
    de Jong-Gubbels, P
    Pronk, JT
    [J]. JOURNAL OF BACTERIOLOGY, 1998, 180 (11) : 2875 - 2882
  • [9] BRUINENBERG PM, 1983, J GEN MICROBIOL, V129, P953
  • [10] Effect of carbon source perturbations on transcriptional regulation of metabolic fluxes in Saccharomyces cerevisiae
    Cakir, Tunahan
    Kirdar, Betul
    Onsan, Z. Ilsen
    Ulgen, Kutlu O.
    Nielsen, Jens
    [J]. BMC SYSTEMS BIOLOGY, 2007, 1