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Production of C3 platform chemicals from CO2 by genetically engineered cyanobacteria

机译:通过基因工程蓝细菌从二氧化碳中生产C3平台化学品

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Platform chemicals can be readily converted into various value-added chemicals and fuels. Photosynthetic production of platform chemicals directly from CO2 by cyanobacteria, in the presence of sunlight, holds promise for addressing global energy and environmental concerns. Herein, we report the photosynthetic production of C3 platform chemicals using engineered Synechococcus elongatus PCC7942 as the kernel. The engineered S. elongatus strain YW1 expressing glycerol-3-phosphatase produced a C3 intermediate, glycerol, with a high concentration of 1.17 g L-1 and a maximum production rate of 7733 mu g L-1 H-1. Strain YW1 could serve as the kernel for the production of various C3 chemicals. By extending heterologous pathways in the cyanobacterial kernel, the carbon flux was further channelled to produce two platform chemicals: dihydroxyacetone by introducing glycerol dehydrogenase and 3-hydroxypropionic acid by introducing glycerol dehydratase and aldehyde dehydrogenase. Co-cultivation of the cyanobacterial kernel and another microbe, Klebsiella pneumoniae, was also performed to convert the C3 intermediate produced from CO2 to 1,3-propanediol, an important monomer for biodegradable material production. Besides direct photosynthetic production and co-cultivation, we demonstrated that glycerol produced by the cyanobacterial kernel can be used as a fermentation feedstock after simple concentration. The production processes presented here display great potential for carbon capture and storage and for sustainable production of chemicals and fuels.
机译:平台化学品可轻松转换为各种增值化学品和燃料。在有阳光的情况下,由蓝细菌直接从CO2光合作用生产平台化学品,有望解决全球能源和环境问题。在本文中,我们报告了使用工程化的细长突触球菌PCC7942作为核心的C3平台化学品的光合作用生产。表达甘油3-磷酸酶的经工程改造的细长链霉菌菌株YW1产生了C3中间体甘油,其具有1.17g L-1的高浓度和最大7733μgL-1 H-1的生产率。 YW1菌株可以用作生产各种C3化学品的核心。通过扩展蓝细菌内核中的异源途径,进一步引导碳通量产生两种平台化学品:通过引入甘油脱氢酶的二羟基丙酮和通过引入甘油脱水酶和醛脱氢酶的3-羟基丙酸。还进行了蓝细菌内核和另一种微生物肺炎克雷伯菌的共培养,以将由CO2产生的C3中间体转化为1,3-丙二醇,这是可生物降解材料生产的重要单体。除了直接的光合作用生产和共培养之外,我们证明了由蓝细菌内核产生的甘油在简单浓缩后就可以用作发酵原料。此处介绍的生产过程显示出巨大的潜力,可用于碳捕集与封存以及可持续生产化学品和燃料。

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