Department of Chemical Engineering and Materials Science, University of Minnesota, Minneapolis, MN 55455, USA.
Department of Chemical Engineering and Materials Science, University of Minnesota, Minneapolis, MN 55455, USA.
Metab Eng. 2015 Jan;27:20-28. doi: 10.1016/j.ymben.2014.10.004. Epub 2014 Oct 29.
Medium-chain esters such as isobutyl acetate (IBAc) and isoamyl acetate (IAAc) are high-volume solvents, flavors and fragrances. In this work, we engineered synthetic metabolic pathways in Escherichia coli for the total biosynthesis of IBAc and IAAc directly from glucose. Our pathways harnessed the power of natural amino acid biosynthesis. In particular, the native valine and leucine pathways in E. coli were utilized to supply the precursors. Then alcohol acyltransferases from various organisms were investigated on their capability to catalyze esterification reactions. It was discovered that ATF1 from Saccharomyces cerevisiae was the best enzyme for the formation of both IBAc and IAAc in E. coli. In vitro biochemical characterization of ATF1 confirmed the fermentation results and provided rational guidance for future enzyme engineering. We also performed strain improvement by removing byproduct pathways (Δldh, ΔpoxB, Δpta) and increased the production of both target chemicals. Then the best IBAc producing strain was used for scale-up fermentation in a 1.3-L benchtop bioreactor. 36g/L of IBAc was produced after 72h fermentation. This work demonstrates the feasibility of total biosynthesis of medium-chain esters as renewable chemicals.
中链酯,如乙酸异丁酯(IBAc)和乙酸异戊酯(IAAc),是高用量的溶剂、香料和香精。在这项工作中,我们在大肠杆菌中设计了合成代谢途径,以直接从葡萄糖中全合成 IBAc 和 IAAc。我们的途径利用了天然氨基酸生物合成的力量。具体来说,大肠杆菌中天然的缬氨酸和亮氨酸途径被用来提供前体。然后,研究了来自不同生物体的醇酰基转移酶催化酯化反应的能力。结果发现,来自酿酒酵母的 ATF1 是在大肠杆菌中形成 IBAc 和 IAAc 的最佳酶。ATF1 的体外生化特性分析证实了发酵结果,并为未来的酶工程提供了合理的指导。我们还通过去除副产物途径(Δldh、ΔpoxB、Δpta)和增加两种目标化学品的产量来进行菌株改进。然后,将产 IBAc 能力最强的菌株用于 1.3L 台式生物反应器的放大发酵。72h 发酵后,可生产 36g/L 的 IBAc。这项工作证明了作为可再生化学品的中链酯的全生物合成的可行性。