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用于生产L-核糖的植物乳杆菌的代谢工程

Metabolic engineering of Lactobacillus plantarum for production of L-ribulose.

作者信息

Helanto M, Kiviharju K, Leisola M, Nyyssölä A

机构信息

Laboratory of Bioprocess Engineering, Department of Chemical Technology, Helsinki University of Technology, PO Box 6100, FIN-02015 Espoo, Finland.

出版信息

Appl Environ Microbiol. 2007 Nov;73(21):7083-91. doi: 10.1128/AEM.01180-07. Epub 2007 Sep 14.

Abstract

L-Ribulose is a rare and expensive sugar that can be used as a precursor for the production of other rare sugars of high market value such as L-ribose. In this work we describe a production process for L-ribulose using L-arabinose, a common component of polymers of lignocellulosic materials, as the starting material. A ribulokinase-deficient mutant of the heterofermentative lactic acid bacterium Lactobacillus plantarum NCIMB8826 was constructed. Expression of araA, which encodes the critical enzyme L-arabinose isomerase, was repressed by high glucose concentrations in batch cultivations. A fed-batch cultivation strategy was therefore used to maximize L-arabinose isomerase production during growth. Resting cells of the ribulokinase-deficient mutant were used for the production of L-ribulose. The isomerization of L-arabinose to L-ribulose was very unfavorable for L-ribulose formation. However, high L-ribulose yields were obtained by complexing the produced L-ribulose with borate. The process for L-ribulose production in borate buffer by resting cells was optimized using central composite designs. The experiment design suggested that the process has an optimal operation point around an L-arabinose concentration of 100 g liter(-1), a borate concentration of 500 mM, and a temperature of 48 degrees C, where the statistical software predicted an initial L-ribulose production rate of 29.1 g liter(-1) h(-1), a best-achievable process productivity of 14.8 g liter(-1) h(-1), and a conversion of L-arabinose to L-ribulose of 0.70 mol mol(-1).

摘要

L-核糖是一种稀有且昂贵的糖,可用作生产其他具有高市场价值的稀有糖(如L-核糖)的前体。在这项工作中,我们描述了一种以L-阿拉伯糖(木质纤维素材料聚合物的常见成分)为起始原料生产L-核糖的工艺。构建了异源发酵乳酸菌植物乳杆菌NCIMB8826的核糖激酶缺陷型突变体。在分批培养中,编码关键酶L-阿拉伯糖异构酶的araA的表达受到高葡萄糖浓度的抑制。因此,采用补料分批培养策略以在生长过程中最大化L-阿拉伯糖异构酶的产量。核糖激酶缺陷型突变体的静息细胞用于生产L-核糖。L-阿拉伯糖向L-核糖的异构化对L-核糖的形成非常不利。然而,通过将产生的L-核糖与硼酸盐络合获得了高L-核糖产量。使用中心复合设计优化了静息细胞在硼酸盐缓冲液中生产L-核糖的工艺。实验设计表明,该工艺在L-阿拉伯糖浓度约为100 g·L⁻¹、硼酸盐浓度为500 mM和温度为48℃左右有一个最佳操作点,统计软件预测此时L-核糖的初始生产速率为29.1 g·L⁻¹·h⁻¹,最佳可实现的工艺生产率为14.8 g·L⁻¹·h⁻¹,L-阿拉伯糖向L-核糖的转化率为0.70 mol·mol⁻¹。

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