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Enhancement of 5-keto-D-gluconate production by a recombinant Gluconobacter oxydans using a dissolved oxygen control strategy

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논문

Enhancement of 5-keto-D-gluconate production by a recombinant Gluconobacter oxydans using a dissolved oxygen control strategy

학술지

Journal of bioscience and bioengineering

저자명

Yuan, J.; Wu, M.; Lin, J.; Yang, L.

초록

The rapid and incomplete oxidation of sugars, alcohols, and polyols by the gram-negative bacterium Gluconobacter oxydans facilitates a wide variety of biological applications. For the conversion of glucose to 5-keto-d-gluconate (5-KGA), a promising precursor of the industrial substance L-(+)-tartaric acid, G. oxydans DSM2343 was genetically engineered to strain ZJU2, in which the GOX1231 and GOX1081 genes were knocked out in a markerless fashion. Then, a secondary alcohol dehydrogenase (GCD) from Xanthomonas campestris DSM3586 was heterologously expressed in G. oxydans ZJU2. The 5-KGA production and cell yield were increased by 10% and 24.5%, respectively. The specific activity of GCD towards gluconate was 1.75+/-0.02 U/mg protein, which was 7-fold higher than that of the sldAB in G. oxydans. Based on the analysis of kinetic parameters including specific cell growth rate (&mu;), specific glucose consumption rate (q<SUB>s</SUB>) and specific 5-KGA production rate (q<SUB>p</SUB>), a dissolved oxygen (DO) control strategy was proposed. Finally, batch fermentation was carried out in a 15-L bioreactor using an initial agitation speed of 600 rpm to obtain a high &mu; for cell growth. Subsequently, DO was continuously maintained above 20% to achieve a high q<SUB>p</SUB> to ensure a high accumulation of 5-KGA. Under these conditions, the maximum concentration of 5-KGA reached 117.75 g/L with a productivity of 2.10 g/(L.h).

발행연도

2016

발행기관

Society for Bioscience and Bioengineering, Japan ; Distributed outside Japan by Elsevier Science

ISSN

1389-1723

ISSN

1347-4421

122

1

페이지

pp.10-16

주제어

5-Keto-d-gluconate; Gluconobacter oxydans; Secondary alcohol dehydrogenase; Pyruvate decarboxylase; Dissolved oxygen control strategy

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1 2023-12-11

논문; 2016-07-01

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