2-amino-3-carboxy-1,4-naphthoquinone affects the end-product profile of bifidobacteria through the mediated oxidation of NAD(P)H

被引:61
作者
Yamazki, S
Kaneko, T
Taketomo, N
Kano, K [1 ]
Ikeda, T
机构
[1] Kyoto Univ, Grad Sch Agr, Div Appl Life Sci, Kyoto 6068502, Japan
[2] Meiji Milk Prod Co Ltd, Food Functional Res inst, Tokyo 1898530, Japan
基金
日本学术振兴会;
关键词
D O I
10.1007/s00253-002-0982-z
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 [微生物学]; 0836 [生物工程]; 090102 [作物遗传育种]; 100705 [微生物与生化药学];
摘要
Glucose metabolism of bifidobacteria in the presence of 2-amino-3-carboxy-1,4-naphthoquinone (ACNQ), a specific growth stimulator for bifidobacteria, and ferricyanide (Fe(CN)(6)(3-)) as an extracellular electron acceptor was examined using resting cells of Bifidobacterium longum and Bifidobacterium breve. NAD(P)H in the cells is oxidized by ACNQ with the aid of diaphorase activity, and reduced ACNQ donates the electron to Fe(CN)(6)(3-). Exogenous oxidation of NADH by the ACNQ/Fe(CN)(6)(3-) system suppresses the endogenous lactate dehydrogenase reaction competitively, which results in the remarkable generation of pyruvate and a decrease in lactate production. In addition, a decrease in acetate generation is also observed in the presence of ACNQ and Fe(CN)(6)(3-). This phenomenon could not be explained in terms of the fructose-6-phosphate phosphoketolase pathway, but suggests rather that glucose is partially metabolized via the hexose monophosphate pathway. This was verified by NADP+-induced reduction of Fe(CN)(6)(3-) in cell-free extracts in the presence of ACNQ. Effects of the ACNQ/Fe(CN)(6)(3-) system on anaerobically harvested cells were also examined. Stoichiometric analysis of the metabolites from the pyruvate-formate lyase pathway suggests that exogenous oxidation of NADH is an efficient method to produce ATP in this pathway.
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收藏
页码:72 / 78
页数:7
相关论文
共 13 条
[1]
TRANSPLASMA-MEMBRANE REDOX SYSTEMS IN GROWTH AND DEVELOPMENT [J].
CRANE, FL ;
SUN, IL ;
CLARK, MG ;
GREBING, C ;
LOW, H .
BIOCHIMICA ET BIOPHYSICA ACTA, 1985, 811 (03) :233-264
[2]
DEGNAN BA, 1994, APPL MICROBIOL BIOT, V40, P800, DOI 10.1007/s002530050070
[3]
CARBOHYDRATE METABOLISM IN BIFIDOBACTERIUM BIFIDUM [J].
DEVRIES, W ;
GERBRAND.SJ ;
STOUTHAM.AH .
BIOCHIMICA ET BIOPHYSICA ACTA, 1967, 136 (03) :415-&
[4]
FERMENTATION OF GLUCOSE LACTOSE GALACTOSE MANNITOL AND XYLOSE BY BIFIDOBACTERIA [J].
DEVRIES, W ;
STOUTHAMER, AH .
JOURNAL OF BACTERIOLOGY, 1968, 96 (02) :472-+
[5]
Control of the shift from homolactic acid to mixed-acid fermentation in Lactococcus lactis: Predominant role of the NADH/NAD(+) ratio [J].
Garrigues, C ;
Loubiere, P ;
Lindley, ND ;
CocaignBousquet, M .
JOURNAL OF BACTERIOLOGY, 1997, 179 (17) :5282-5287
[6]
Measurements of oxidoreductase-like activity of intact bacterial cells by an amperometric method using a membrane-coated electrode [J].
Ikeda, T ;
Kurosaki, T ;
Takayama, K ;
Kano, K ;
Miki, K .
ANALYTICAL CHEMISTRY, 1996, 68 (01) :192-198
[7]
GROWTH STIMULATOR FOR BIFIDOBACTERIA PRODUCED BY PROPIONIBACTERIUM-FREUDENREICHII AND SEVERAL INTESTINAL BACTERIA [J].
KANEKO, T ;
MORI, H ;
IWATA, M ;
MEGURO, S .
JOURNAL OF DAIRY SCIENCE, 1994, 77 (02) :393-404
[8]
POST-TRANSLATIONAL ACTIVATION INTRODUCES A FREE-RADICAL INTO PYRUVATE FORMATE-LYASE [J].
KNAPPE, J ;
NEUGEBAUER, FA ;
BLASCHKOWSKI, HP ;
GANZLER, M .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA-BIOLOGICAL SCIENCES, 1984, 81 (05) :1332-1335
[9]
MECHANISM OF VARIATION OF ACETATE/LACTATE RATIO DURING GLUCOSE FERMENTATION BY BIFIDOBACTERIA [J].
LAUER, E ;
KANDLER, O .
ARCHIVES OF MICROBIOLOGY, 1976, 110 (2-3) :271-277
[10]
Isolation and structural identification of bifidogenic growth stimulator produced by Propionibacterium freudenreichii [J].
Mori, H ;
Sato, Y ;
Taketomo, N ;
Kamiyama, T ;
Yoshiyama, Y ;
Meguro, S ;
Sato, H ;
Kaneko, T .
JOURNAL OF DAIRY SCIENCE, 1997, 80 (09) :1959-1964