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Stepwise increase of spinosad production in Saccharopolyspora spinosa by metabolic engineering

机译:通过代谢工程逐步增加棘糖多孢菌中多杀菌素的产量

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摘要

Rational metabolic and cellular engineering approaches are useful in improving strain performance. In the last years, several studies not only clarified the biosynthetic pathway of spinosad, but also provided useful information of metabolic restrictions in the spinosyn biosynthetic pathway. However, these studies overlooked the problem that the spinosyn biosynthetic pathway was unbalanced: the expression of six genes in the spinosyn biosynthetic pathway was insufficient; Saccharopolyspora spinosa accumulated useless compounds because of insufficient expression of SpnK. So a rational strain improvement strategy was developed to tune the unbalanced spinosyn biosynthetic pathway. First, we overexpressed spnK to increase the amount of the flux from rhamnosylated aglycone to pseudoaglycones (PSA). Then six genes (spnP, spnO, spnN, spnQ, spnR, and spnS) involved in forosamine biosynthesis and spnK were co-expressed in S. spinosa LU102 to convert the accumulated PSA to spinosad. The yield of spinosad in S. spinosa LU102 was 214mg/L, which was 2.6-fold higher than that in the wild-type S. spinosa (82mg/L). Finally, spinosad production in the tuned S. spinosa LU104 was further increased to 405 mg/L, which was a 5.0-fold enhancement compared with the wild-type S. spinosa, by duplicating spnP, spnO, spnN, spnQ, spnR, spnS, spnK, gtt, gdh and kre genes.
机译:合理的代谢和细胞工程方法可用于改善菌株性能。近年来,多项研究不仅阐明了多杀菌素的生物合成途径,而且还为多杀菌素生物合成途径中的代谢限制提供了有用的信息。然而,这些研究忽视了刺糖多孢菌素生物合成途径不平衡的问题:刺糖多孢菌素生物合成途径中的6个基因的表达不足。由于SpnK的表达不足,所以棘糖多孢菌积聚了无用的化合物。因此,开发了合理的应变改善策略来调节不平衡的多杀菌素生物合成途径。首先,我们过表达spnK以增加从鼠李糖基糖苷配基到假糖苷配基(PSA)的通量。然后,将六种基因(spnP,spnO,spnN,spnQ,spnR和spnS)与山梨糖胺生物合成和spnK一起在S. spinosa LU102中共表达,将积累的PSA转化为spinosad。多刺葡萄球菌LU102中多杀菌素的产量为214mg / L,是野生型多刺葡萄球菌(82mg / L)的2.6倍。最后,通过复制spnP,spnO,spnN,spnQ,spnR,spnS,将经过调节的多刺葡萄球菌LU104中的多刺藻产量进一步提高至405 mg / L,与野生型多刺葡萄球菌相比提高了5.0倍。 ,spnK,gtt,gdh和kre基因。

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