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Enhanced limonene production in a fast-growing cyanobacterium through combinatorial metabolic engineering

机译:通过组合代谢工程增强了一种快速生长的蓝藻中的柠檬烯生产

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摘要

Terpenoids are a large and diverse group of natural products with commercial applications. Microbial production of terpenes is considered as a feasible approach for the stable supply of these complex hydrocarbons. Cyanobacteria, photosynthetic prokaryotes, are attractive hosts for sustainable bioproduction, because these autotrophs require only light and CO2 for growth. Despite cyanobacteria having been engineered to produce a variety of compounds, their productivities of terpenes are generally low. Further research is needed to determine the bottleneck reactions for enhancing terpene production in cyanobacteria. In this study, we engineered the fast-growing cyanobacterium Synechococcus elongatus UTEX 2973 to produce a commercially-used terpenoid, limonene. We identified a beneficial mutation in the gene encoding geranylgeranyl pyrophosphate synthase crtE, leading to a 2.5-fold increase in limonene production. The engineered strain produced 16.4 ​mg ​L−1 of limonene at a rate of 8.2 ​mg ​L−1 day−1, which is 8-fold higher than limonene productivities previously reported in other cyanobacterial species. Furthermore, we employed a combinatorial metabolic engineering approach to optimize genes involved in the upstream pathway of limonene biosynthesis. By modulating the expression of genes encoding the enzymes in the MEP pathway and the geranyl pyrophosphate synthase, we showed that optimization of the expression level is critical to enhance limonene production in cyanobacteria.
机译:Terpenoids是具有商业应用的大型和多样化的天然产品。 Terpenes的微生物生产被认为是这些复合烃稳定供应的可行方法。 Cyanobacteria,光合原核生物是可持续生物生产的有吸引力的主持人,因为这些自动萎缩只需要光和二氧化碳的生长。尽管设计了树脂菌以产生各种化合物,但它们的萜烯的产品通常是低的。需要进一步研究以确定用于增强蓝藻的萜烯生产的瓶颈反应。在这项研究中,我们设计了快速生长的蓝杆菌肌细胞Elongatus Utex 2973,以产生商业用过的萜烯酸,柠檬烯。我们鉴定了编码焦磷酸焦磷酸盐合成酶CRTE的基因中的有益突变,导致柠檬烯生产增加2.5倍。工程化应变以8.2mg L-1天-1的速率产生16.4mg L-1的柠檬烯,其比以前在其他蓝藻物种中报道的柠檬烯产型高出8倍。此外,我们采用了组合代谢工程方法来优化参与柠檬烯生物合成的上游途径的基因。通过调节在MEP途径中编码酶的基因的表达,我们表明表达水平的优化对于增强蓝藻中的柠檬烯产生至关重要。

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