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Rational design of engineered microbial cell surface multi-enzyme co-display system for sustainable NADH regeneration from low-cost biomass

机译:从低成本生物质可持续NADH再生的工程微生物细胞表面多酶共同显示系统的理性设计

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摘要

As an important cofactor, NADH is essential for most redox reactions and biofuel cells. However, supply of exogenous NADH is challenged, due to the low production efficiency and high cost of NADH regeneration system, as well as low stability of NADH. Here, we constructed a novel cell surface multi-enzyme co-display system with ratio- and space-controllable manner as exogenous NADH regeneration system for the sustainable NADH production from low-cost biomass. Dockerin-fused glucoamylase (GA) and glucose dehydrogenase (GDH) were expressed and assembled on the engineered bacterial surfaces, which displayed protein scaffolds with various combinations of different cohesins. When the ratio of GA and GDH was 3:1, the NADH production rate of the whole-cell biocatalyst reached the highest level using starch as substrate, which was three times higher than that of mixture of free enzymes, indicating that the highly ordered spatial organization of enzymes would promote reactions, due to the ratio of enzymes and proximity effect. To confirm performance of the established NADH regeneration system, the highly efficient synthesis of l-lactic acid (l-LA) was conducted by the system and the yield of l-LA (16 g/L) was twice higher than that of the mixture of free enzymes. The multi-enzyme co-display system showed good stability in the cyclic utilization. In conclusion, the novel sustainable NADH system would provide a cost-effective strategy to regenerate cofactor from low-cost biomass.
机译:作为重要的辅助因子,NADH对于大多数氧化还原反应和生物燃料细胞至关重要。然而,由于NADH再生系统的生产效率低和高成本,因此,由于NADH再生系统的效率低,并且稳定性低,供应外源性NADH。这里,我们构建了一种具有比与低成本生物质的可持续NADH生产的与外源NADH再生系统的比率和可空间多酶共同显示系统的新细胞表面多酶共同显示系统。在工程化细菌表面上表达和组装了Dockerin-Fused葡糖淀粉酶(Ga)和葡萄糖脱氢酶(GDH),其用不同辅酶的各种组合显示蛋白质支架。当Ga和GDH的比例为3:1时,全细胞生物催化剂的NADH生产率使用淀粉作为基质达到最高水平,比游离酶混合物高三倍,表明高度有序的空间由于酶与邻近效应的比例,酶组织将促进反应。为了确认所建立的NADH再生系统的性能,通过该系统进行高效合成L-乳酸(L-LA),L-LA(16g / L)的产率比混合物的两倍高免费酶。多酶共同显示系统在循环利用方面表现出良好的稳定性。总之,新型可持续纳扎系统将提供成本效益的策略,从低成本生物量再生辅因子。

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