基因工程
生化工程
化学
生物技术
纳米技术
生物
材料科学
生物化学
工程类
基因
作者
Zhengyu Tao,Song Lin,Shangsong Li,Baoyuan Li,Rui Nie,Xin Huang
标识
DOI:10.1021/acssuschemeng.4c10406
摘要
The integration of semiconductor nanoparticles and bacteria presents an enticing method to augment fermentative hydrogen production by leveraging solar energy as an additional driving force. However, there remains significant room for improvement in effectively using and transforming substrates within the biohybrid system. Here, a new type of engineered Escherichia coli (E. coli) strain is constructed by multigene knockout of hycA, ldhA, and frdD to strengthen the flux of pyruvate to formate. Subsequently, upon intracellular biomineralization in the presence of a cadmium source and a selenium source, CdSexS1–x nanoparticles could be specially formed inside the engineered strain, and then a high conversion efficiency from glucose to hydrogen is achieved, as high as 1.86 mol·H2·mol–1·G–1 (93% of the theoretical value from glucose to H2), which currently boasts the highest conversion ratio among biohybrid systems. Therefore, it is anticipated that such a study could contribute a promising way to break through the bottleneck of biological hydrogen production efficiency.
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