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Insights into Heterologous Biosynthesis of Arteannuin B and Artemisinin in Physcomitrella patens

机译:在Physcomitrella的Arteannuin B和Artemisinin的异源生物合成中的见解

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摘要

Metabolic engineering is an integrated bioengineering approach, which has made considerable progress in producing terpenoids in plants and fermentable hosts. Here, the full biosynthetic pathway of artemisinin, originating from Artemisia annua, was integrated into the moss Physcomitrella patens. Different combinations of the five artemisinin biosynthesis genes were ectopically expressed in P. patens to study biosynthesis pathway activity, but also to ensure survival of successful transformants. Transformation of the first pathway gene, ADS, into P. patens resulted in the accumulation of the expected metabolite, amorpha-4,11-diene, and also accumulation of a second product, arteannuin B. This demonstrates the presence of endogenous promiscuous enzyme activity, possibly cytochrome P450s, in P. patens. Introduction of three pathway genes, ADS-CYP71AV1-ADH1 or ADS-DBR2-ALDH1 both led to the accumulation of artemisinin, hinting at the presence of one or more endogenous enzymes in P. patens that can complement the partial pathways to full pathway activity. Transgenic P. patens lines containing the different gene combinations produce artemisinin in varying amounts. The pathway gene expression in the transgenic moss lines correlates well with the chemical profile of pathway products. Moreover, expression of the pathway genes resulted in lipid body formation in all transgenic moss lines, suggesting that these may have a function in sequestration of heterologous metabolites. This work thus provides novel insights into the metabolic response of P. patens and its complementation potential for A. annua artemisinin pathway genes. Identification of the related endogenous P. patens genes could contribute to a further successful metabolic engineering of artemisinin biosynthesis, as well as bioengineering of other high-value terpenoids in P. patens.
机译:代谢工程是一种综合生物工程方法,在生产植物和可发酵宿主中产生了相当大的进展。在这里,源自蒿属植物的蒿属植物的全部生物合成途径被整合到苔藓Physcomitrella patens中。五个蒿属植物生物合成基因的不同组合在P. P. Patens中表达以研究生物合成途径活性,同时确保成功转化体的存活。将第一个途径基因的转化为P. PATENS含量为预期的代谢物,氨基-4,11-二烯的积累,也是第二种产品的积累,Arteannuin B.这证明了内源性混杂酶活性的存在,可能是细胞色素p450s,在p. patens。引入三种途径基因,ADS-CYP71AV1-ADH1或ADS-DBR2-ALDH1都导致了氨化蛋白的积累,在P的一个或多个内源酶的存在下暗示,可以补充部分途径到完全途径活动。含有不同基因组合的实质性P.含有不同基因组合的水分在不同的量产生蒿蛋白。转基因磁带线中的途径基因表达与途径产物的化学谱相关。此外,途径基因的表达导致所有转基因型磁盘系中的脂质体形成,表明这些可能在异源代谢物的封存中具有函数。因此,这项工作提供了新的洞察P. P. Patons的代谢反应及其对Anua Artemisinin途径基因的互补潜力。鉴定相关内源性P.PATENS基因可能导致阿尔美霉素生物合成的进一步成功成功的代谢工程,以及P. P.P.P的其他高价值萜类化合物的生物工程。

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