Linpei Zhang
Jiangnan University
3 Papers
2 Citations
Linpei Zhang is an academic researcher from Jiangnan University. The author has an hindex of 1, co-authored 3 publications.
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Papers
Light-driven CO2 sequestration in Escherichia coli to achieve theoretical yield of chemicals
Guipeng Hu,Zehong Li,Danlei Ma,Chao Ye,Linpei Zhang,Cong Gao,Liming Liu,Xiulai Chen +7 more
- 29 Apr 2021
Abstract: CO2 sequestration engineering is an attractive strategy for achieving carbon- and energy-efficient bioproduction. However, the efficiency of heterotrophic CO2 sequestration is limited by bioproduct dependence and energy deficiency. Here, modular CO2 sequestration engineering was developed to produce target chemicals by integrating synthetic CO2 fixation and CO2 mitigation modules. A synthetic CO2 fixation pathway was designed, and then enhanced by light-driven reducing power using self-assembled cadmium sulfide nanoparticles. Next, a CO2 mitigation switch was designed, and then optimized by light-driven energy via proteorhodopsin. Finally, by integrating CO2 fixation and CO2 mitigation modules, the efficiency of CO2 sequestration was notably enhanced in Escherichia coli and the yields of l-malate and butyrate were increased to 1.48 and 0.79 mol/mol glucose, respectively, reaching theoretical yields. This CO2 sequestration system provides an efficient platform for channelling CO2 into value-added chemicals. Improving the efficiency of carbon yield in heterotrophic microorganisms is desired for biomanufacturing. Now, a product-independent and energy-efficient CO2 sequestration system that maximizes carbon conversion has been developed, as showcased by the production of chemicals reaching their theoretical yields.
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Reprogramming microbial populations using a programmed lysis system to improve chemical production.
Wenwen Diao,Liang Guo,Qiang Ding,Cong Gao,Guipeng Hu,Xiulai Chen,Yang Li,Linpei Zhang,Wei Chen,Jian Chen,Liming Liu +10 more
TL;DR: In this article, a programmed lysis system (PLS) was developed to reprogram microbial cooperation to enhance chemical production, where a colicin M -based lysis unit was constructed to lyse Escherichia coli.
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Dynamic control of the distribution of carbon flux between cell growth and butyrate biosynthesis in Escherichia coli
TL;DR: In this paper, a recombinase-based genetic circuit was developed to achieve the optimal distribution of acetyl-CoA between cell growth and butyrate biosynthesis, which directly improved the consumption of the CoA.
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