Engineering Yarrowia lipolytica for the sustainable production of β-farnesene from waste oil feedstock.

Yinghang Liu, Jin Zhang, Qingbin Li, Zhaoxuan Wang, Zhiyong Cui, Tianyuan Su, Xuemei Lu, Qingsheng Qi, Jin Hou
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Abstract

Background: β-Farnesene is a sesquiterpene with versatile industrial applications. The production of β-farnesene from waste lipid feedstock is an attractive method for sustainable production and recycling waste oil. Yarrowia lipolytica is an unconventional oleaginous yeast, which can use lipid feedstock and has great potential to synthesize acetyl-CoA-derived chemicals.

Results: In this study, we engineered Y. lipolytica to produce β-farnesene from lipid feedstock. To direct the flux of acetyl-CoA, which is generated from lipid β-oxidation, to β-farnesene synthesis, the mevalonate synthesis pathway was compartmentalized into peroxisomes. β-Farnesene production was then engineered by the protein engineering of β-farnesene synthase and pathway engineering. The regulation of lipid metabolism by enhancing β-oxidation and eliminating intracellular lipid synthesis was further performed to improve the β-farnesene synthesis. As a result, the final β-farnesene production with bio-engineering reached 35.2 g/L and 31.9 g/L using oleic acid and waste cooking oil, respectively, which are the highest β-farnesene titers reported in Y. lipolytica.

Conclusions: This study demonstrates that engineered Y. lipolytica could realize the sustainable production of value-added acetyl-CoA-derived chemicals from waste lipid feedstock.

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利用脂肪分解蓍草菌从废油原料中可持续地生产 β-法呢烯。
背景:β-法呢烯是一种倍半萜烯,具有广泛的工业用途。利用废弃脂质原料生产 β-法呢烯是一种具有吸引力的可持续生产和废油回收方法。脂肪分解酵母菌(Yarrowia lipolytica)是一种非常规的含油酵母菌,可以利用脂质原料,在合成乙酰-CoA 衍生化学品方面具有巨大潜力:在这项研究中,我们改造了脂溶性酵母菌,使其能够利用脂质原料生产β-法呢烯。为了引导乙酰-CoA(由脂质β氧化产生)流向β-法呢烯的合成,甲羟戊酸合成途径被分隔到过氧化物酶体中。然后,通过β-法呢烯合成酶的蛋白质工程和途径工程,实现了β-法呢烯的生产。通过加强β-氧化和消除细胞内脂质合成来调节脂质代谢,进一步提高了β-法呢烯的合成。结果,使用油酸和废食用油进行生物工程改造后,β-法呢烯的最终产量分别达到 35.2 克/升和 31.9 克/升,这是目前报道的溶脂酵母中最高的β-法呢烯滴度:本研究表明,工程化的脂肪分解酵母可实现从废弃脂质原料中可持续地生产乙酰-CoA 衍生的高附加值化学品。
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