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通过从头合成核黄素和细胞色素来提高希瓦氏菌属 oneidensis 细胞外电子转移效率。

Coupling riboflavin de novo biosynthesis and cytochrome expression for improving extracellular electron transfer efficiency in Shewanella oneidensis.

机构信息

Frontier Science Center for Synthetic Biology and Key Laboratory of Systems Bioengineering (Ministry of Education), Tianjin University, Tianjin, China.

Key Laboratory of Systems Bioengineering (Ministry of Education), Tianjin University, Tianjin, China.

出版信息

Biotechnol Bioeng. 2022 Oct;119(10):2806-2818. doi: 10.1002/bit.28172. Epub 2022 Jul 18.

DOI:10.1002/bit.28172
PMID:35798677
Abstract

Shewanella oneidensis MR-1, as a model exoelectrogen with divergent extracellular electron transfer (EET) pathways, has been widely used in microbial fuel cells (MFCs). The electron transfer rate is largely determined by riboflavin (RF) and c-type cytochromes (c-Cyts). However, relatively low RF production and inappropriate amount of c-Cyts substantially impede the capacity of improving the EET rate. In this study, coupling of riboflavin de novo biosynthesis and c-Cyts expression was implemented to enhance the efficiency of EET in S. oneidensis. First, the upstream pathway of RF de novo biosynthesis was divided into four modules, and the expression level of 22 genes in above four modules was fine-tuned by employing promoters with different strengths. Among them, genes zwf*, glyA, and ybjU which exhibited optimal RF production were combinatorially overexpressed, leading to the enhancement of maximum output power density by 166%. Second, the diverse c-Cyts genes were overexpressed to match high RF production, and omcA was selected for further combination. Third, RF de novo biosynthesis and c-Cyts expression were combined, resulting in 2.34-fold higher power output than the parent strain. This modular and combinatorial manipulation strategy provides a generalized reference to advance versatile practical applications of electroactive microorganisms.

摘要

希瓦氏菌属(Shewanella oneidensis)MR-1 是一种具有不同胞外电子传递(EET)途径的模式外生菌,已被广泛应用于微生物燃料电池(MFCs)中。电子传递速率在很大程度上取决于核黄素(RF)和 c 型细胞色素(c-Cyts)。然而,相对较低的 RF 产量和不合适的 c-Cyts 数量极大地阻碍了提高 EET 速率的能力。在本研究中,通过核黄素从头生物合成和 c-Cyts 表达的耦合,来提高希瓦氏菌属中 EET 的效率。首先,将 RF 从头生物合成的上游途径分为四个模块,并通过采用不同强度的启动子来精细调节上述四个模块中的 22 个基因的表达水平。其中,zwf*、glyA 和 ybjU 这三个基因表现出最佳的 RF 产量,将它们进行组合过表达,使最大输出功率密度提高了 166%。其次,过量表达了多种 c-Cyts 基因以匹配高 RF 产量,并选择 omcA 进行进一步组合。最后,RF 从头生物合成和 c-Cyts 表达被结合起来,产生的功率输出比亲本菌株高 2.34 倍。这种模块化和组合式的操作策略为推进电活性微生物的多功能实际应用提供了一般性参考。

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