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共进料提高了甲基酮的产率。

Co-feeding enhances the yield of methyl ketones.

机构信息

Process Systems Engineering (AVT.SVT), RWTH Aachen University, 52074 Aachen, Germany.

Institute of Applied Microbiology (iAMB), RWTH Aachen University, 52074 Aachen, Germany.

出版信息

J Ind Microbiol Biotechnol. 2023 Feb 17;50(1). doi: 10.1093/jimb/kuad029.

Abstract

UNLABELLED

The biotechnological production of methyl ketones is a sustainable alternative to fossil-derived chemical production. To date, the best host for microbial production of methyl ketones is a genetically engineered Pseudomonas taiwanensis VLB120 ∆6 pProd strain, achieving yields of 101 mgg-1 on glucose in batch cultivations. For competitiveness with the petrochemical production pathway, however, higher yields are necessary. Co-feeding can improve the yield by fitting the carbon-to-energy ratio to the organism and the target product. In this work, we developed co-feeding strategies for P. taiwanensis VLB120 ∆6 pProd by combined metabolic modeling and experimental work. In a first step, we conducted flux balance analysis with an expanded genome-scale metabolic model of iJN1463 and found ethanol as the most promising among five cosubstrates. Next, we performed cultivations with ethanol and found the highest reported yield in batch production of methyl ketones with P. taiwanensis VLB120 to date, namely, 154 mg g-1 methyl ketones. However, ethanol is toxic to the cell, which reflects in a lower substrate consumption and lower product concentrations when compared to production on glucose. Hence, we propose cofeeding ethanol with glucose and find that, indeed, higher concentrations than in ethanol-fed cultivation (0.84 g Laq-1 with glucose and ethanol as opposed to 0.48 g Laq-1 with only ethanol) were achieved, with a yield of 85 mg g-1. In a last step, comparing experimental with computational results suggested the potential for improving the methyl ketone yield by fed-batch cultivation, in which cell growth and methyl ketone production are separated into two phases employing optimal ethanol to glucose ratios.

ONE-SENTENCE SUMMARY: By combining computational and experimental work, we demonstrate that feeding ethanol in addition to glucose improves the yield of biotechnologically produced methyl ketones.

摘要

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生物技术生产甲基酮是对化石衍生的化学生产的可持续替代方案。迄今为止,微生物生产甲基酮的最佳宿主是经过基因工程改造的恶臭假单胞菌 VLB120 ∆6 pProd 菌株,在分批培养中葡萄糖产量达到 101 mgg-1。然而,为了与石油化工生产途径竞争,需要更高的产量。共喂养可以通过使碳与能量的比例与生物体和目标产物相适应来提高产量。在这项工作中,我们通过组合代谢建模和实验工作为 P. taiwanensis VLB120 ∆6 pProd 开发了共喂养策略。在第一步中,我们使用 iJN1463 的扩展基因组规模代谢模型进行通量平衡分析,发现乙醇是五种共底物中最有前途的一种。接下来,我们进行了乙醇培养实验,发现迄今为止,恶臭假单胞菌 VLB120 在分批生产甲基酮方面的报道产量最高,即 154 mg g-1 甲基酮。然而,乙醇对细胞有毒,与葡萄糖生产相比,它反映在较低的底物消耗和较低的产物浓度上。因此,我们提出共喂养乙醇和葡萄糖,并发现确实可以达到比乙醇喂养培养更高的浓度(0.84 g Laq-1 与葡萄糖和乙醇相比,仅用乙醇为 0.48 g Laq-1),产量为 85 mg g-1。在最后一步,将实验与计算结果进行比较表明,通过分批补料培养可以提高生物合成生产甲基酮的产率,在该培养中,细胞生长和甲基酮生产分为两个阶段,采用最佳的乙醇与葡萄糖比。

一句话总结

通过结合计算和实验工作,我们证明了除了葡萄糖之外,还可以通过共喂养乙醇来提高生物技术生产甲基酮的产量。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/79e0/10521942/30558dd074ea/kuad029fig1g.jpg

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