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Dynamic control of gene expression in Saccharomyces cerevisiae engineered for the production of plant sesquitepene α-santalene in a fed-batch mode.

机译:在酿酒酵母中以补料分批方式生产植物倍半萜烯α-檀香烯的基因表达的动态控制。

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Microbial cells engineered for efficient production of plant sesquiterpenes may allow for sustainable and scalable production of these compounds that can be used as e.g. perfumes and pharmaceuticals. Here, for the first time a Saccharomyces cerevisiae strain capable of producing high levels of α-santalene, the precursor of a commercially interesting compound, was constructed through a rationally designed metabolic engineering approach. Optimal sesquiterpene production was obtained by modulating the expression of one of the key metabolic steps of the mevalonate (MVA) pathway, squalene synthase (Erg9). To couple ERG9 expression to glucose concentration its promoter was replaced by the HXT1 promoter. In a second approach, the HXT2 promoter was used to express an ERG9 antisense construct. Using the HXT1 promoter to control ERG9 expression, it was possible to divert the carbon flux from sterol synthesis towards α-santalene improving the productivity by 3.4 fold. Combining this approach together with the overexpression of a truncated form of 3-hydroxyl-3-methyl-glutaryl-CoA reductase (HMGR) and deletion of lipid phosphate phosphatase encoded by LPP1 led to a strain with a productivity of 0.18mg/gDCWh. The titer was further increased by deleting DPP1 encoding a second FPP consuming pyrophosphate phosphatase yielding a final productivity and titer, respectively, of 0.21mg/gDCWh and 92mg/l of α-santalene.
机译:为有效生产植物倍半萜而设计的微生物细胞可允许可持续且可扩展地生产这些化合物,这些化合物例如可以用作生物农药。香水和药品。在这里,通过合理设计的代谢工程方法,首次构建了能够产生高水平的α-檀香烯(一种商业上感兴趣的化合物)的酿酒酵母菌株。通过调节甲羟戊酸(MVA)途径的关键代谢步骤之一,角鲨烯合酶(Erg9)的表达,可获得最佳的倍半萜烯生产。为了使ERG9表达与葡萄糖浓度偶联,其启动子被HXT1启动子代替。在第二种方法中,使用HXT2启动子表达ERG9反义构建体。使用HXT1启动子控制ERG9的表达,可以将碳流量从固醇合成转移到α-檀香烯,从而将生产率提高了3.4倍。将这种方法与3-羟基-3-甲基-戊二酰辅酶A还原酶(HMGR)的截短形式的过表达和LPP1编码的脂质磷酸酯磷酸酶的缺失相结合,可产生菌株,其产量为0.18mg / gDCWh。通过删除编码第二种消耗焦磷酸磷酸酶的FPP的DPP1来进一步提高滴度,最终产生的最终生产率和滴度分别为0.21mg / gDCWh和92mg / lα-檀香烯。

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