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Engineering Triterpene and Methylated Triterpene Production in Plants Provides Biochemical and Physiological Insights into Terpene Metabolism

机译:工程化三萜和甲基化三萜在植物中的生产提供了萜烯代谢的生化和生理学见识

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摘要

Linear, branch-chained triterpenes, including squalene (C30), botryococcene (C30), and their methylated derivatives (C31–C37), generated by the green alga Botryococcus braunii race B have received significant attention because of their utility as chemical and biofuel feedstocks. However, the slow growth habit of B. braunii makes it impractical as a production system. In this study, we evaluated the potential of generating high levels of botryococcene in tobacco (Nicotiana tabacum) plants by diverting carbon flux from the cytosolic mevalonate pathway or the plastidic methylerythritol phosphate pathway by the targeted overexpression of an avian farnesyl diphosphate synthase along with two versions of botryococcene synthases. Up to 544 µg g−1 fresh weight of botryococcene was achieved when this metabolism was directed to the chloroplasts, which is approximately 90 times greater than that accumulating in plants engineered for cytosolic production. To test if methylated triterpenes could be produced in tobacco, we also engineered triterpene methyltransferases (TMTs) from B. braunii into wild-type plants and transgenic lines selected for high-level triterpene accumulation. Up to 91% of the total triterpene contents could be converted to methylated forms (C31 and C32) by cotargeting the TMTs and triterpene biosynthesis to the chloroplasts, whereas only 4% to 14% of total triterpenes were methylated when this metabolism was directed to the cytoplasm. When the TMTs were overexpressed in the cytoplasm of wild-type plants, up to 72% of the total squalene was methylated, and total triterpene (C30+C31+C32) content was elevated 7-fold. Altogether, these results point to innate mechanisms controlling metabolite fluxes, including a homeostatic role for squalene.
机译:绿藻类B. Botryococcus braunii B族产生的线性,支链三萜,包括角鲨烯(C30),葡萄球菌(C30)及其甲基化衍生物(C31-C37),由于其作为化学和生物燃料原料的用途而备受关注。但是,布鲁氏杆菌的缓慢生长习性使其作为生产系统是不切实际的。在这项研究中,我们评估了通过将鸟法呢基二磷酸合酶和两种版本的目标过量表达转移到胞质甲羟戊酸途径或质朴甲基赤藓糖醇磷酸途径的碳通量,从而在烟草(烟草)植物中产生高水平的葡萄球菌的潜力。葡萄球菌合酶的合成。当这种新陈代谢直接传递给叶绿体时,可以达到高达544 µg g -1 的葡萄孢菌新重,比叶绿体中积累的植物重约90倍。为了测试甲基化的三萜烯是否可以在烟草中生产,我们还设计了来自布鲁氏双歧杆菌的三萜烯甲基转移酶(TMT),用于野生型植物和为高水平三萜积累而选择的转基因品系。通过将TMT和三萜生物合成共同靶向到叶绿体,可将总三萜含量的多达91%转化为甲基化形式(C31和C32),而当这种代谢直接针对三叶草时,只有三分之四的三萜被甲基化。细胞质。当TMTs在野生型植物的细胞质中过表达时,高达72%的鲨烯被甲基化,总三萜(C30 + C31 + C32)的含量增加了7倍。总而言之,这些结果表明了控制代谢物通量的先天机制,包括角鲨烯的稳态作用。

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