ENERGETIC ASPECTS OF GLUCOSE-METABOLISM IN A PYRUVATE-DEHYDROGENASE-NEGATIVE MUTANT OF SACCHAROMYCES-CEREVISIAE

被引:74
作者
PRONK, JT [1 ]
WENZEL, TJ [1 ]
LUTTIK, MAH [1 ]
KLAASSEN, CCM [1 ]
SCHEFFERS, WA [1 ]
STEENSMA, HY [1 ]
VANDIJKEN, JP [1 ]
机构
[1] LEIDEN UNIV, DEPT MOLEC & CELLULAR BIOL, CLUSIUS LAB, 2333 AL LEIDEN, NETHERLANDS
来源
MICROBIOLOGY-SGM | 1994年 / 140卷
关键词
GLUCOSE METABOLISM; SACCHAROMYCES CEREVISIAE; PYRUVATE DEHYDROGENASE; PDA1; GENE; PYRUVATE DECARBOXYLASE;
D O I
10.1099/00221287-140-3-601
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Saccharomyces cerevisiae T23C (pda1::Tn5ble) is an isogenic gene replacement mutant of the wild-type strain S. cerevisiae T23D. The mutation causes a complete loss of pyruvate dehydrogenase activity. Pyruvate metabolism in this pyruvate-dehydrogenase- negative (Pdh(-)) strain was investigated in aerobic glucose-limited chemostat cultures, grown at a dilution rate of 0.10 h(-1), and compared with the metabolism in the isogenic wild-type strain. Under these conditions, growth of the Pdh(-) strain was fully respiratory. Enzyme activities in cell-free extracts indicated that the enzymes pyruvate decarboxylase, acetaldehyde dehydrogenase and acetyl-coenzyme A (acetyl-CoA) synthetase could provide a functional bypass of the pyruvate dehydrogenase complex. Since this metabolic sequence involves ATP hydrolysis in the acetyl-CoA synthetase reaction, a negative effect of the pda1::Tn5ble mutation on the growth efficiency was anticipated. Indeed, the biomass yield of the Pdh(-) strain [0.44 g biomass (g glucose)(-1)] was significantly lower than that of wild-type S. cerevisiae [0.52 g biomass (g glucose)(-1)]. The effect of the mutation on biomass yield could be quantitatively explained in terms of a lower ATP yield from glucose catabolism and an increased ATP requirement for the synthesis of acetyl-CoA used in anabolism. Control experiments showed that the pda1::Tn5ble mutation did not affect biomass yield in ethanol-limited chemostat cultures. The results support the view that, during aerobic glucose-limited growth of S. cerevisiae at low growth rates, the pyruvate dehydrogenase complex accounts for the major part of the pyruvate flux. Moreover, it is concluded that hydrolysis of pyrophosphate formed in the acetyl-CoA synthetase reaction does not contribute significantly to energy transduction in this yeast. Respiratory-deficient cells did not contribute to glucose metabolism in the chemostat cultures and were probably formed upon plating.
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页码:601 / 610
页数:10
相关论文
共 23 条
  • [1] MOLECULAR-CLONING OF THE GENE FOR THE E1-ALPHA SUBUNIT OF THE PYRUVATE-DEHYDROGENASE COMPLEX FROM SACCHAROMYCES-CEREVISIAE
    DESTEENSMA, HY
    HOLTERMAN, L
    DEKKER, I
    VANSLUIS, CA
    WENZEL, TJ
    [J]. EUROPEAN JOURNAL OF BIOCHEMISTRY, 1990, 191 (03): : 769 - 774
  • [2] DIXON GH, 1959, BIOCH J, V72
  • [3] AUTOREGULATION MAY CONTROL THE EXPRESSION OF YEAST PYRUVATE DECARBOXYLASE STRUCTURAL GENES PDC1 AND PDC5
    HOHMANN, S
    CEDERBERG, H
    [J]. EUROPEAN JOURNAL OF BIOCHEMISTRY, 1990, 188 (03): : 615 - 621
  • [4] HOLZER H, 1957, BIOCHEM Z, V329, P175
  • [5] PYRUVATE-DEHYDROGENASE COMPLEX FROM BAKERS-YEAST .1. PURIFICATION AND SOME KINETIC AND REGULATORY PROPERTIES
    KRESZE, GB
    RONFT, H
    [J]. EUROPEAN JOURNAL OF BIOCHEMISTRY, 1981, 119 (03): : 573 - 579
  • [6] PURIFICATION AND SOME PROPERTIES OF MEMBRANE-BOUND AND SOLUBLE PYROPHOSPHATASES OF YEAST VACUOLES
    LICHKO, L
    OKOROKOV, L
    [J]. YEAST, 1991, 7 (08) : 805 - 812
  • [7] CHARACTERIZATION OF A MITOCHONDRIAL INORGANIC PYROPHOSPHATASE IN SACCHAROMYCES-CEREVISIAE
    LUNDIN, M
    DEOPUJARI, SW
    LICHKO, L
    DASILVA, LP
    BALTSCHEFFSKY, H
    [J]. BIOCHIMICA ET BIOPHYSICA ACTA, 1992, 1098 (02) : 217 - 223
  • [8] Oura E., 1972, THESIS U HELSINKI FI
  • [9] INDUCTION AND ELIMINATION OF OSCILLATIONS IN CONTINUOUS CULTURES OF SACCHAROMYCES-CEREVISIAE
    PARULEKAR, SJ
    SEMONES, GB
    ROLF, MJ
    LIEVENSE, JC
    LIM, HC
    [J]. BIOTECHNOLOGY AND BIOENGINEERING, 1986, 28 (05) : 700 - 710
  • [10] PETRIK M, 1983, J GEN MICROBIOL, V129, P43