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Engineering of a modular and synthetic phosphoketolase pathway for photosynthetic production of acetone from CO2 in Synechococcus elongatus PCC 7942 under light and aerobic condition

机译:光电状况下二氧化碳丙酮丙酮丙酮光合生产的模块化和合成磷酸磷酸酶路径途径

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Summary Capture and conversion of COsub2/sub to valuable chemicals is intended to answer global challenges on environmental issues, climate change and energy security. Engineered cyanobacteria have been enabled to produce industry-relevant chemicals from COsub2/sub. However, the final products from cyanobacteria have often been mixed with fermented metabolites during dark fermentation. In this study, our engineering of Synechococcus elongatus PCC 7942 enabled continuous conversion of COsub2/sub to volatile acetone as sole product. This process occurred during lighted, aerobic culture via both ATP-driven malonyl-CoA synthesis pathway and heterologous phosphoketolase (PHK)-phosphotransacetylase (Pta) pathway. Because of strong correlations between the metabolic pathways of acetate and acetone, supplying the acetyl-CoA directly from COsub2/sub in the engineered strain, led to sole production of acetone (22.48?mg/L?±?1.00) without changing nutritional constraints, and without an anaerobic shift. Our engineered S.?elongatus strains, designed for acetone production, could be modified to create biosolar cell factories for sustainable photosynthetic production of acetyl-CoA-derived biochemicals.
机译:总结CO 2 对宝贵化学品的捕获和转换旨在回答环境问题,气候变化和能源安全的全球挑战。工程化蓝藻已被启用,以产生来自CO 2 的行业相关化学品。然而,来自Cyanobacteria的最终产品通常在黑暗发酵过程中与发酵代谢物混合。在这项研究中,我们的SyneChococcus Elongatus PCC 7942的工程使CO 2 连续转化为挥发丙酮作为鞋底产品。通过ATP驱动的丙二酰基 - CoA合成途径和异源磷酸溶酶(PHK) - 磷甲酰基酶(PTA)途径在点燃的,有氧培养期间发生该方法。由于乙酸酯和丙酮代谢途径之间的相关性,直接从工程菌株中的CO 2 供应乙酰COA,导致丙酮的唯一生产(22.48Ω·mg / l?±1.00 )不改变营养限制,而没有厌氧转变。我们的工程化S.?Helongatus菌株专为丙酮生产而设计,可以进行修饰,以创造用于可持续的乙酰辅酶生化生化的可持续光合作用的生物溶细胞厂。

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