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工程改造解脂耶氏酵母用于食品废弃物生物修复:从植物食用油生产脂肪酸乙酯

Engineering Yarrowia lipolytica towards food waste bioremediation: Production of fatty acid ethyl esters from vegetable cooking oil.

作者信息

Ng Tee-Kheang, Yu Ai-Qun, Ling Hua, Pratomo Juwono Nina Kurniasih, Choi Won Jae, Leong Susanna Su Jan, Chang Matthew Wook

机构信息

NUS Synthetic Biology for Clinical and Technological Innovation (SynCTI), Centre for Life Sciences, National University of Singapore, 28 Medical Drive, 117456, Singapore; Department of Biochemistry, Yong Loo Lin School of Medicine, National University of Singapore, 8 Medical Drive, 117596, Singapore.

NUS Synthetic Biology for Clinical and Technological Innovation (SynCTI), Centre for Life Sciences, National University of Singapore, 28 Medical Drive, 117456, Singapore; Department of Biochemistry, Yong Loo Lin School of Medicine, National University of Singapore, 8 Medical Drive, 117596, Singapore; Institute of Chemical and Engineering Sciences, Agency for Science, Technology and Research in Singapore (A*STAR), 1 Pesek Road, Jurong Island, 627833, Singapore.

出版信息

J Biosci Bioeng. 2020 Jan;129(1):31-40. doi: 10.1016/j.jbiosc.2019.06.009. Epub 2019 Jul 15.

Abstract

Fatty acid ethyl esters (FAEEs) can potentially be used as biodiesel, which provides a renewable alternative to petroleum-derived diesel. FAEEs are primarily produced via transesterification of vegetable oil with an alcohol catalyzed by a strong base, which raises safety concerns. Microbial production presents a more environmentally sustainable method for FAEE production, and by harnessing the ability of oleaginous yeast Yarrowia lipolytica to degrade and assimilate hydrophobic substrates, FAEE production could be coupled to food waste bioremediation. In this study, we engineered Y. lipolytica to produce FAEEs from dextrose as well as from vegetable cooking oil as a model food waste. Firstly, we introduced pyruvate decarboxylase (pdc) and alcohol dehydrogenase II (adhB) from Zymomonas mobilis to reconstitute the heterologous pathway for ethanol production. Second, we introduced and compared two heterologous wax ester synthases ws2 and maqu_0168 from Marinobacter sp. for FAEE biosynthesis. Next, we disrupted competitive pathways to increase fatty acyl-CoA pool, and optimized carbon sources and cell density for shake-flask fermentation. The engineered strain showed a 24-fold improvement in FAEE production titer over the starting strain. Moreover, we explored the potential of the engineered strain for FAEE production from the model food waste by supplementing vegetable cooking oil to the culture medium. To the best of our knowledge, this is the first report on FAEE production with the supplementation of vegetable cooking oil in Y. lipolytica. These findings provide valuable insights into the engineering of Y. lipolytica for high-level production of FAEEs and its utilization in food waste bioremediation.

摘要

脂肪酸乙酯(FAEEs)有潜力用作生物柴油,这为石油衍生柴油提供了一种可再生替代品。FAEEs主要通过植物油与醇在强碱催化下的酯交换反应生产,这引发了安全问题。微生物生产为FAEEs生产提供了一种更具环境可持续性的方法,通过利用产油酵母解脂耶氏酵母降解和同化疏水底物的能力,FAEEs生产可以与食品废弃物生物修复相结合。在本研究中,我们对解脂耶氏酵母进行了工程改造,使其能够利用葡萄糖以及作为典型食品废弃物的植物油来生产FAEEs。首先,我们引入了来自运动发酵单胞菌的丙酮酸脱羧酶(pdc)和乙醇脱氢酶II(adhB),以重建乙醇生产的异源途径。其次,我们引入并比较了来自海杆菌属的两种异源蜡酯合酶ws2和maqu_0168用于FAEE生物合成。接下来,我们破坏了竞争途径以增加脂肪酰辅酶A库,并优化了摇瓶发酵的碳源和细胞密度。工程菌株的FAEE生产滴度比出发菌株提高了24倍。此外,我们通过向培养基中添加植物油,探索了工程菌株利用典型食品废弃物生产FAEEs的潜力。据我们所知,这是关于在解脂耶氏酵母中添加植物油生产FAEEs的首次报道。这些发现为解脂耶氏酵母的工程改造以实现FAEEs的高水平生产及其在食品废弃物生物修复中的应用提供了有价值的见解。

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