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Engineering co-culture system for production of apigetrin in Escherichia coli

机译:高校大肠杆菌生产亚脂素的工程共培养体系

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Microbial cells have extensively been utilized to produce value-added bioactive compounds. Based on advancement in protein engineering, DNA recombinant technology, genome engineering, and metabolic remodeling, the microbes can be re-engineered to produce industrially and medicinally important platform chemicals. The emergence of co-culture system which reduces the metabolic burden and allows parallel optimization of the engineered pathway in a modular fashion restricting the formation of undesired byproducts has become an alternative way to synthesize and produce bioactive compounds. In this study, we present genetically engineered E. coli-based co-culture system to the de novo synthesis of apigetrin (APG), an apigenin-7-O-beta-d-glucopyranoside of apigenin. The culture system consists of an upstream module including 4-coumarate: CoA ligase (4CL), chalcone synthase, chalcone flavanone isomerase (CHS, CHI), and flavone synthase I (FNSI) to synthesize apigenin (API) from p-coumaric acid (PCA). Whereas, the downstream system contains a metabolizing module to enhance the production of UDP-glucose and expression of glycosyltransferase (PaGT3) to convert API into APG. To accomplish this improvement in titer, the initial inoculum ratio of strains for making the co-culture system, temperature, and media component was optimized. Following large-scale production, a yield of 38.5 A mu M (16.6 mg/L) of APG was achieved. In overall, this study provided an efficient tool to synthesize bioactive compounds in microbial cells.
机译:广泛地利用微生物细胞来产生增值的生物活性化合物。基于蛋白质工程,DNA重组技术,基因组工程和代谢重塑的进步,可以重新设计微生物以生产工业和药用重要的平台化学品。共培养系统的出现降低了代谢负担,并允许以模块化方式限制构成途径的平行优化,限制不需要的副产物的形成已成为合成和生产生物活性化合物的替代方法。在这项研究中,我们将基因工程化的大肠杆菌的共培养系统呈现给De Novo合成的Apigetrin(APG),是Apigenin的Apigenin-7-O-β-D-吡喃葡萄糖苷。培养系统由上游模块组成,包括4-作用:CoA连接酶(4Cl),Chalcone合酶,Chalcone黄酮异构酶(CHS,Chi)和黄酮合酶I(FNSI),以合成来自p-香豆酸的Apigenin(API)( PCA)。然而,下游系统含有代谢模块,以增强UDP-葡萄糖的产生和糖基转移酶(PAGT3)的表达转换成APG。为了实现滴度的这种改进,优化了制备共培养系统,温度和培养基组分的菌株的初始含量。在大规模生产之后,实现了38.5A亩(16.6mg / L)的APG的产率。总体而言,该研究提供了一种有效的工具,用于在微生物细胞中合成生物活性化合物。

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