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通过适应性实验室进化提高固氮菌属中葡萄糖和木糖的同化作用。

Improving glucose and xylose assimilation in Azotobacter vinelandii by adaptive laboratory evolution.

机构信息

Departamento de Ingeniería Celular y Biocatálisis, Instituto de Biotecnología, Universidad Nacional Autónoma de México, Cuernavaca, Morelos, México.

Departamento de Microbiología Molecular, Instituto de Biotecnología, Universidad Nacional Autónoma de México, Cuernavaca, Morelos, México.

出版信息

World J Microbiol Biotechnol. 2020 Mar 5;36(3):46. doi: 10.1007/s11274-020-02822-5.

Abstract

Azotobacter vinelandii is a microorganism with biotechnological potential because its ability to produce alginate and polyhydroxybutyrate. Large-scale biotechnological processes are oriented to sustainable production by using biomass hydrolysates that are mainly composed by glucose and xylose. In the present study, it was observed that A. vinelandii was unable to consume xylose as the sole carbon source and that glucose assimilation in the presence of xylose was negatively affected. Adaptive Laboratory Evolution (ALE) was used as a metabolic engineering tool in A. vinelandii, to improve both carbohydrate assimilation. As a result of ALE process, the CT387 strain was obtained. The evolved strain (CT387) grown in shaken flask cultivations with xylose (8 g L) and glucose (2 g L), showed an increase of its specific growth rate (µ), as well as of its glucose and xylose uptake rates of 2, 6.45 and 3.57-fold, respectively, as compared with the parental strain. At bioreactor level, the µ, the glucose consumption rate and the relative expression of gluP that codes for the glucose permease in the evolved strain were also higher than in the native strain (1.53, 1.29 and 18-fold, respectively). Therefore, in the present study, we demonstrated the potential of ALE as a metabolic engineering tool for improving glucose and xylose consumption in A. vinelandii.

摘要

维氏固氮菌是一种具有生物技术潜力的微生物,因为它能够产生海藻酸盐和聚羟基丁酸酯。大规模的生物技术过程旨在通过使用主要由葡萄糖和木糖组成的生物质水解物进行可持续生产。在本研究中,观察到维氏固氮菌不能消耗木糖作为唯一的碳源,并且在存在木糖的情况下葡萄糖的同化受到负面影响。适应性实验室进化(ALE)被用作维氏固氮菌的代谢工程工具,以改善碳水化合物的同化。作为 ALE 过程的结果,获得了 CT387 菌株。在摇瓶培养中用木糖(8 g/L)和葡萄糖(2 g/L)培养的进化菌株(CT387),与亲本菌株相比,其比生长速率(µ)以及葡萄糖和木糖摄取率分别提高了 2、6.45 和 3.57 倍。在生物反应器水平上,进化菌株的µ、葡萄糖消耗率和编码葡萄糖渗透酶的 gluP 的相对表达也高于原始菌株(分别为 1.53、1.29 和 18 倍)。因此,在本研究中,我们证明了 ALE 作为一种代谢工程工具,具有提高维氏固氮菌葡萄糖和木糖消耗的潜力。

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