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氧化葡萄糖杆菌 DSM 7145 中膜结合多元醇脱氢酶的特性及其失活研究揭示了其在中间型赤藓醇氧化中的作用。

Characterization and inactivation of the membrane-bound polyol dehydrogenase in Gluconobacter oxydans DSM 7145 reveals a role in meso-erythritol oxidation.

机构信息

Institute of Microbiology and Genetics, Georg-August Universität, Grisebachstr. 8, D-37077 Göttingen, Germany.

Department of Microbiology, Technische Universität München, Emil-Ramann-Str. 4, D-85354 Freising-Weihenstephan, Germany.

出版信息

Microbiology (Reading). 2010 Jun;156(Pt 6):1890-1899. doi: 10.1099/mic.0.037598-0. Epub 2010 Mar 11.

DOI:10.1099/mic.0.037598-0
PMID:20223802
Abstract

The growth of Gluconobacter oxydans DSM 7145 on meso-erythritol is characterized by two stages: in the first stage, meso-erythritol is oxidized almost stoichiometrically to L-erythrulose according to the Bertrand-Hudson rule. The second phase is distinguished from the first phase by a global metabolic change from membrane-bound meso-erythritol oxidation to L-erythrulose assimilation with concomitant accumulation of acetic acid. The membrane-associated erythritol-oxidizing enzyme was found to be encoded by a gene homologous to sldA known from other species of acetic acid bacteria. Disruption of this gene in the genome of G. oxydans DSM 7145 revealed that the membrane-bound polyol dehydrogenase not only oxidizes meso-erythritol but also has a broader substrate spectrum which includes C3-C6 polyols and D-gluconate and supports growth on these substrates. Cultivation of G. oxydans DSM 7145 on different substrates indicated that expression of the polyol dehydrogenase was not regulated, implying that the production of biomass of G. oxydans to be used as whole-cell biocatalysts in the biotechnological conversion of meso-erythritol to L-erythrulose, which is used as a tanning agent in the cosmetics industry, can be conveniently carried out with glucose as the growth substrate.

摘要

氧化葡萄糖菌 DSM 7145 利用 meso-erythritol 生长的特点是分为两个阶段:第一阶段,根据 Bertrand-Hudson 规则,meso-erythritol 几乎按化学计量比氧化为 L-erythrulose。第二阶段与第一阶段的区别在于,从膜结合的 meso-erythritol 氧化到 L-erythrulose 同化的全局代谢变化,同时伴随着乙酸的积累。发现与其他醋酸菌物种中的 sldA 同源的基因编码与膜相关的赤藓醇氧化酶。在氧化葡萄糖菌 DSM 7145 的基因组中破坏这个基因表明,膜结合的多元醇脱氢酶不仅氧化 meso-erythritol,而且具有更广泛的底物谱,包括 C3-C6 多元醇和 D-葡萄糖酸盐,并支持在这些底物上的生长。不同底物的氧化葡萄糖菌 DSM 7145 的培养表明,多元醇脱氢酶的表达不受调控,这意味着作为整个细胞生物催化剂用于生物技术转化 meso-erythritol 为 L-erythrulose 的氧化葡萄糖菌的生物质的生产可以方便地使用葡萄糖作为生长底物进行。

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