Glucose Metabolism and Gluconic Acid Production by Acetobacter diazotrophicus
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概要
- 論文の詳細を見る
Acetobacter diazotrophicus, a recently isolated nitrogen-fixing acidotolerant acetic acid bacterium, grew well in simple mineral media and exhibited high rates of gluconic acid formation. Glucose oxidation by the organism was less sensitive to low pH values than glucose oxidation by Gluconobacter oxydans. Growth and glucose oxidation were not affected by high gluconic acid concentrations. These observations indicate that A. diazotrophicus is an interesting organism for the industrial production of gluconic acid. The organism exhibited a high maintenance requirement (m_s=1.0 mmol glucose h^<-1> (g dry weight)^<-1>) during glucose-limited growth in chemostat cultures at pH 3.5. Enzyme activities in cell-free extracts suggested that glucose metabolism in A. diazotrophicus proceeds exclusively via the hexose monophosphate pathway : the enzymes of the Embden-Meyerhof and Entner-Doudoroff pathways could not be detected. Both the phosphorylative and direct oxidative pathways of glucose metabolism appeared to be operative. In addition to a pyridine nucleotide (strictly NAD)-dependent glucose dehydrogenase, A. diazotrophicus contained a dye-linked, probably pyrolo-quinoline quinone (PQQ)-dependent, glucose dehydrogenase. The latter activity seemed to be primarily responsible for gluconic acid formation.
- 社団法人日本生物工学会の論文
- 1991-08-25
著者
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Van Dijken
Delft Univ. Technol. Delft Nld
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Van Dijken
Department Of Microbiology And Enzymology Kluyver Laboratory Of Biotechnology Delft University Of Te
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Pronk J
Delft Univ. Technol. Delft Nld
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Attwood Margaret
(present Address)department Of Molecular Biology And Biotechnology University Of Sheffield
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PRONK JACK
Department of Microbiology and Enzymology, Kluyver Laboratory of Biotechnology, Delft University of
関連論文
- Glucose Metabolism and Gluconic Acid Production by Acetobacter diazotrophicus
- Use of Chemostat Data for Modelling Extracellular-Inulinase Production by Kluyveromyces marxianus in a High-Cell-Density Fed-Batch Process