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A synthetic biochemistry system for the in vitro production of isoprene from glycolysis intermediates

机译:用于从糖酵解中间体体外生产异戊二烯的合成生物化学系统

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摘要

The high yields required for the economical production of chemicals and fuels using microbes can be difficult to achieve due to the complexities of cellular metabolism. An alternative to performing biochemical transformations in microbes is to build biochemical pathways in vitro, an approach we call synthetic biochemistry. Here we test whether the full mevalonate pathway can be reconstituted in vitro and used to produce the commodity chemical isoprene. We construct an in vitro synthetic biochemical pathway that uses the carbon and ATP produced from the glycolysis intermediate phosphoenolpyruvate to run the mevalonate pathway. The system involves 12 enzymes to perform the complex transformation, while providing and balancing the ATP, NADPH, and acetyl-CoA cofactors. The optimized system produces isoprene from phosphoenolpyruvate in ∼100% molar yield. Thus, by inserting the isoprene pathway into previously developed glycolysis modules it may be possible to produce isoprene and other acetyl-CoA derived isoprenoids from glucose in vitro.
机译:由于细胞代谢的复杂性,使用微生物经济地生产化学品和燃料所需的高产量可能难以实现。在微生物中进行生物化学转化的另一种方法是在体外建立生物化学途径,我们称这种方法为合成生物化学。在这里,我们测试完整的甲羟戊酸途径是否可以在体外重构并用于生产商品化学异戊二烯。我们构建了体外合成生化途径,利用糖酵解中间体磷酸烯醇式丙酮酸产生的碳和ATP来运行甲羟戊酸途径。该系统涉及12种酶以执行复杂的转化,同时提供并平衡ATP,NADPH和乙酰辅酶A辅因子。优化的系统由磷酸烯醇丙酮酸生产异戊二烯,摩尔产率约为100%。因此,通过将异戊二烯途径插入先前开发的糖酵解模块中,有可能在体外从葡萄糖产生异戊二烯和其他乙酰辅酶A衍生的类异戊二烯。

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