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Modulation of sulfur metabolism enables efficient glucosinolate engineering

机译:调节硫代谢可实现高效的芥子油苷工程

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Background Metabolic engineering in heterologous organisms is an attractive approach to achieve efficient production of valuable natural products. Glucosinolates represent a good example of such compounds as they are thought to be the cancer-preventive agents in cruciferous plants. We have recently demonstrated that it is feasible to engineer benzylglucosinolate (BGLS) in the non-cruciferous plant Nicotiana benthamiana by transient expression of five genes from Arabidopsis thaliana . In the same study, we showed that co-expression of a sixth Arabidopsis gene, γ-glutamyl peptidase 1 ( GGP1 ), resolved a metabolic bottleneck, thereby increasing BGLS accumulation. However, the accumulation did not reach the expected levels, leaving room for further optimization. Results To optimize heterologous glucosinolate production, we have in this study performed a comparative metabolite analysis of BGLS-producing N. benthamiana leaves in the presence or absence of GGP1 . The analysis revealed that the increased BGLS levels in the presence of GGP1 were accompanied by a high accumulation of the last intermediate, desulfoBGLS, and a derivative thereof. This evidenced a bottleneck in the last step of the pathway, the transfer of sulfate from 3'-phosphoadenosine-5'-phosphosulfate ( PAPS ) to desulfoBGLS by the sulfotransferase AtSOT16. While substitution of AtSOT16 with alternative sulfotransferases did not alleviate the bottleneck, experiments with the three genes involved in the formation and recycling of PAPS showed that co-expression of adenosine 5'-phosphosulfate kinase 2 ( APK2 ) alone reduced the accumulation of desulfoBGLS and its derivative by more than 98% and increased BGLS accumulation 16-fold. Conclusion Adjusting sulfur metabolism by directing sulfur from primary to secondary metabolism leads to a remarkable improvement in BGLS accumulation and thereby represents an important step towards a clean and efficient production of glucosinolates in heterologous hosts. Our study emphasizes the importance of considering co-substrates and their biological nature in metabolic engineering projects.
机译:背景技术异源生物中的代谢工程是实现有效生产有价值的天然产物的一种有吸引力的方法。芥子油苷是这类化合物的一个很好的例子,因为它们被认为是十字花科植物中的癌症预防剂。我们最近证明,通过瞬时表达来自拟南芥的五个基因,在非十字花科植物本氏烟草中工程化苄基芥子油苷(BGLS)是可行的。在同一研究中,我们显示了第六个拟南芥基因γ-谷氨酰肽酶1(GGP1)的共表达解决了代谢瓶颈,从而增加了BGLS的积累。但是,累积量未达到预期的水平,为进一步优化留有空间。结果为了优化异源芥子油苷的生产,在这项研究中,我们对存在或不存在GGP1的BGLS产本氏烟草叶进行了比较代谢物分析。分析显示,在存在GGP1的情况下BGLS水平升高,同时伴随着最后中间体,desulfoBGLS及其衍生物的大量积累。这证明了该途径最后一步的瓶颈,即通过磺基转移酶AtSOT16将硫酸盐从3'-磷酸腺苷-5'-磷酸硫酸盐(PAPS)转移到desulfoBGLS。虽然用替代的磺基转移酶替代AtSOT16并不能缓解瓶颈,但是对参与PAPS形成和回收利用的三个基因的实验表明,单独表达腺苷5'-磷酸磷酸激酶2(APK2)可以减少desulfoBGLS及其分子的积累。派生率超过98%,BGLS积累增加了16倍。结论通过将硫从一级代谢引导至二级代谢来调节硫代谢,可显着改善BGLS的积累,从而代表了在异源宿主中清洁高效生产芥子油苷的重要一步。我们的研究强调在代谢工程项目中考虑共基质及其生物学性质的重要性。

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