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Optimized expression and enhanced production of alkaline protease by genetically modified Bacillus licheniformis 2709

机译:遗传修饰的芽孢杆菌的优化表达和增强生产碱性蛋白酶1109

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Bacillus licheniformis 2709 is extensively applied as a host for the high-level production of heterologous proteins, but Bacillus cells often possess unfavorable wild-type properties, such as production of viscous materials and foam during fermentation, which seriously influenced the application in industrial fermentation. How to develop it from a soil bacterium to a super-secreting cell factory harboring less undomesticated properties always plays vital role in industrial production. Besides, the optimal expression pattern of the inducible enzymes like alkaline protease has not been optimized by comparing the transcriptional efficiency of different plasmids and genomic integration sites in B. licheniformis. Bacillus licheniformis 2709 was genetically modified by disrupting the native lchAC genes related to foaming and the eps cluster encoding the extracellular mucopolysaccharide via a markerless genome-editing method. We further optimized the expression of the alkaline protease gene (aprE) by screening the most efficient expression system among different modular plasmids and genomic loci. The results indicated that genomic expression of aprE was superior to plasmid expression and finally the transcriptional level of aprE greatly increased 1.67-fold through host optimization and chromosomal integration in the vicinity of the origin of replication, while the enzyme activity significantly improved 62.19% compared with the wild-type alkaline protease-producing strain B. licheniformis. We successfully engineered an AprE high-yielding strain free of undesirable properties and its fermentation traits could be applied to bulk-production by host genetic modification and expression optimization. In summary, host optimization is an enabling technology for improving enzyme production by eliminating the harmful traits of the host and optimizing expression patterns. We believe that these strategies can be applied to improve heterologous protein expression in other Bacillus species.
机译:Bacillus Licheniformis 2709广泛应用于异源蛋白的高级别产生的宿主,但芽孢杆菌细胞通常具有不利的野生型性能,例如发酵过程中粘性材料和泡沫的生产,这严重影响了工业发酵的应用。如何从土壤细菌发展到超级分泌细胞厂,含有较少的邪恶性质,始终在工业生产中起着至关重要的作用。此外,通过比较B. lichenifienis的不同质粒和基因组集成位点的转录效率,尚未优化含碱蛋白酶等诱导酶的最佳表达模式。通过破坏与发泡的天然LCHAC基因和通过无标记基因组编辑方法破坏与细胞外粘膜多糖相关的天然LCHAC基因进行遗传修饰。我们通过筛选不同的模块化质粒和基因组基因座中最有效的表达系统进一步优化了碱性蛋白酶基因(APRE)的表达。结果表明,APRE的基因组表达优于质粒表达,最后通过复制起源的宿主优化和染色体一体化大大增加了1.67倍的转录水平,而酶活性明显改善了62.19%野生型碱性蛋白酶产生菌株B.HICHENIFIEDIS。我们成功地设计了APRE高产株,没有不希望的性能,并且其发酵特性可以通过宿主遗传修饰和表达优化来施加批量生产。总之,宿主优化是通过消除主机的有害性状和优化表达模式来改善酶生产的能力技术。我们认为,这些策略可以应用于改善其他芽孢杆菌物种中的异源蛋白表达。

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