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首页> 外文期刊>Metabolic engineering >Replacement of the glucose phosphotransferase transport system by galactose permease reduces acetate accumulation and improves process performance of Escherichia coli for recombinant protein production without impairment of growth rate.
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Replacement of the glucose phosphotransferase transport system by galactose permease reduces acetate accumulation and improves process performance of Escherichia coli for recombinant protein production without impairment of growth rate.

机译:用半乳糖渗透酶代替葡萄糖磷酸转移酶转运系统减少了乙酸盐的积累,并改善了用于重组蛋白生产的大肠杆菌的工艺性能,而没有损害生长速率。

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摘要

Acetate accumulation under aerobic conditions is a common problem in Escherichia coli cultures, as it causes a reduction in both growth rate and recombinant protein productivity. In this study, the effect of replacing the glucose phosphotransferase transport system (PTS) with an alternate glucose transport activity on growth kinetics, acetate accumulation and production of two model recombinant proteins, was determined. Strain VH32 is a W3110 derivative with an inactive PTS. The promoter region of the chromosomal galactose permease gene galP of VH32 was replaced by the strong trc promoter. The resulting strain, VH32GalP+ acquired the capacity to utilize glucose as a carbon source. Strains W3110 and VH32GalP+ were transformed for the production of recombinant TrpLE-proinsulin accumulated as inclusion bodies (W3110-PI and VH32GalP+-PI) and for production of soluble intracellular green fluorescent protein (W3110-pV21 and VH32GalP+-pV21). W3110-pV21 and VH32GalP+-pV21 were grown in batch cultures. Maximum recombinant protein concentration, as determined from fluorescence, was almost four-fold higher in VH32GalP+-pV21, relative to W3110-pV21. Maximum acetate concentration reached 2.8 g/L for W3110-pV21 cultures, whereas a maximum of 0.39 g/L accumulated in VH32GalP+-pV21. W3110-PI and VH32GalP+-PI were grown in batch and fed-batch cultures. Compared to W3110-PI, the engineered strain maintained similar production and growth rate capabilities while reducing acetate accumulation. Specific glucose consumption rate was lower and product yield on glucose was higher in VH32GalP+-PI fed-batch cultures. Altogether, strains with the engineered glucose uptake system showed improved process performance parameters for recombinant protein production over the wild-type strain.
机译:在有氧条件下,乙酸盐的积累是大肠杆菌培养中的常见问题,因为它会导致生长速率和重组蛋白生产率的降低。在这项研究中,确定了用替代的葡萄糖转运活性替代葡萄糖磷酸转移酶转运系统(PTS)对两种模型重组蛋白的生长动力学,乙酸盐积累和产生的影响。菌株VH32是W3110衍生物,具有无效的PTS。 VH32的染色体半乳糖渗透酶基因galP的启动子区域被强力trc启动子取代。所得菌株VH32GalP +获得了利用葡萄糖作为碳源的能力。转化菌株W3110和VH32GalP +以产生作为包涵体积累的重组TrpLE-胰岛素原(W3110-PI和VH32GalP + -PI),并产生可溶性细胞内绿色荧光蛋白(W3110-pV21和VH32GalP + -pV21)。 W3110-pV21和VH32GalP + -pV21在分批培养中生长。通过荧光测定,与W3110-pV21相比,VH32GalP + -pV21的最大重组蛋白浓度几乎高出四倍。对于W3110-pV21培养物,最大乙酸盐浓度达到2.8 g / L,而在VH32GalP + -pV21中累积的最大乙酸盐浓度为0.39 g / L。 W3110-PI和VH32GalP + -PI分批和分批补料培养。与W3110-PI相比,工程菌株保持了相似的生产和生长速率,同时减少了乙酸盐的积累。在VH32GalP + -PI补料分批培养物中,比葡萄糖消耗率较低,而葡萄糖的产物收率较高。总之,具有工程葡萄糖摄取系统的菌株显示出比野生型菌株改善的用于重组蛋白生产的工艺性能参数。

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