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Metabolic Engineering of Bacillus subtilis Toward Taxadiene Biosynthesis as the First Committed Step for Taxol Production

机译:枯草芽孢杆菌的代谢工程促进税前生物合成作为紫杉醇生产的首批承诺步骤

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摘要

Terpenoids are natural products known for their medicinal and commercial applications. Metabolic engineering of microbial hosts for the production of valuable compounds, such as artemisinin and Taxol, has gained vast interest in the last few decades. The Generally Regarded As Safe (GRAS) Bacillus subtilis 168 with its broad metabolic potential is considered one of these interesting microbial hosts. In the effort toward engineering B. subtilis as a cell factory for the production of the chemotherapeutic Taxol, we expressed the plant-derived taxadiene synthase (TXS) enzyme. TXS is responsible for the conversion of the precursor geranylgeranyl pyrophosphate (GGPP) to taxa-4,11-diene, which is the first committed intermediate in Taxol biosynthesis. Furthermore, overexpression of eight enzymes in the biosynthesis pathway was performed to increase the flux of the GGPP precursor. This was achieved by creating a synthetic operon harboring the B. subtilis genes encoding the 2-C-methyl-D-erythritol-4-phosphate (MEP) pathway (dxs, ispD, ispF, ispH, ispC, ispE, ispG) together with ispA (encoding geranyl and farnesyl pyrophosphate synthases) responsible for providing farnesyl pyrophosphate (FPP). In addition, a vector harboring the crtE gene (encoding geranylgeranyl pyrophosphate synthase, GGPPS, of Pantoea ananatis) to increase the supply of GGPP was introduced. The overexpression of the MEP pathway enzymes along with IspA and GGPPS caused an 83-fold increase in the amount of taxadiene produced compared to the strain only expressing TXS and relying on the innate pathway of B. subtilis. The total amount of taxadiene produced by that strain was 17.8 mg/l. This is the first account of the successful expression of taxadiene synthase in B. subtilis. We determined that the expression of GGPPS through the crtE gene is essential for the formation of sufficient precursor, GGPP, in B. subtilis as its innate metabolism is not efficient in producing it. Finally, the extracellular localization of taxadiene production by overexpressing the complete MEP pathway along with IspA and GGPPS presents the prospect for further engineering aiming for semisynthesis of Taxol.
机译:Terpenoids是其药用和商业应用已知的天然产品。用于生产有价值的化合物的微生物主机的代谢工程,例如蒿蛋白和紫杉醇,在过去的几十年里取得了巨大的兴趣。通常被认为是安全(GRAs)枯草芽孢杆菌168,其具有较广的代谢潜力被认为是这些有趣的微生物宿主之一。在工程B.枯草芽孢杆菌作为制备化学治疗紫杉醇的枯草芽孢杆菌的努力中,我们表达了植物衍生的巨脂素合酶(TXS)酶。 TXS负责将前体Geranylangeranyl(GGPP)转化为Taxa-4,11-二烯,这是紫杉醇生物合成中的第一个犯下的中间体。此外,进行生物合成途径中八个酶的过表达以增加GGPP前体的通量。这是通过产生编码2-C-甲基-D-赤藓糖醇-4-磷酸盐(MEP)途径(DXS,ISPD,ISPF,ISPH,ISPC,ISPC,ISPE,ISPG)的枯草芽孢杆菌基因的合成杂志来实现的ISPA(编码Geranyl和Farneryl焦磷酸酯合成酶)负责提供法呢基焦磷酸酯(FPP)。此外,被引入携带的crtE基因(编码香叶基香叶基焦磷酸合酶,GGPPS,的菠萝泛菌),以增加GGPP的供给的载体。 MEP途径酶以及ISPA和GGPP的过表达引起与仅表达TXS的菌株相比产生的少税额的83倍,并依赖于B.枯草芽孢杆菌的先天途径。由该菌株产生的少脂醛的总量为17.8mg / L.这是B.枯草芽孢杆菌在B.苏黎林合酶成功表达的第一个叙述。我们确定GGPP通过CRTE基因的表达对于形成足够的前体GGPP,B.枯草芽孢杆菌作为其先天代谢的形成是必不可少的。最后,通过与ISPA和GGPPS沿过表达完整的MEP途径紫杉生产的胞外定位提出了进一步的工程目标是紫杉醇的半合成的前景。

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