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工程化氧化应激防御途径以在解脂耶氏酵母中构建一个强大的脂质生产平台。

Engineering oxidative stress defense pathways to build a robust lipid production platform in Yarrowia lipolytica.

作者信息

Xu Peng, Qiao Kangjian, Stephanopoulos Gregory

机构信息

Department of Chemical Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139.

Department of Chemical, Biochemical and Environmental Engineering, University of Maryland, Baltimore County, Baltimore, Maryland.

出版信息

Biotechnol Bioeng. 2017 Jul;114(7):1521-1530. doi: 10.1002/bit.26285. Epub 2017 Apr 18.

Abstract

Microbially derived lipids have recently attracted renewed interests due to their broad applications in production of green diesels, cosmetic additives, and oleochemicals. Metabolic engineering efforts have targeted a large portfolio of biosynthetic pathways to efficiently convert sugar to lipids in oleaginous yeast. In the engineered overproducing strains, endogenous cell metabolism typically generates harmful electrophilic molecules that compromise cell fitness and productivity. Lipids, particularly unsaturated fatty acids, are highly susceptible to oxygen radical attack and the resulting oxidative species are detrimental to cell metabolism and limit lipid productivity. In this study, we investigated cellular oxidative stress defense pathways in Yarrowia lipolytica to further improve the lipid titer, yield, and productivity. Specifically, we determined that coupling glutathione disulfide reductase and glucose-6-phosphate dehydrogenase along with aldehyde dehydrogenase are efficient solutions to combat reactive oxygen and aldehyde stress in Y. lipolytica. With the reported engineering strategies, we were able to synchronize cell growth and lipid production, improve cell fitness and morphology, and achieved industrially-relevant level of lipid titer (72.7 g/L), oil content (81.4%) and productivity (0.97 g/L/h) in controlled bench-top bioreactors. The strategies reported here represent viable steps in the development of sustainable biorefinery platforms that potentially upgrade low value carbons to high value oleochemicals and biofuels. Biotechnol. Bioeng. 2017;114: 1521-1530. © 2017 Wiley Periodicals, Inc.

摘要

微生物衍生的脂质由于在绿色柴油、化妆品添加剂和油脂化学品生产中的广泛应用,最近重新引起了人们的兴趣。代谢工程的努力针对大量生物合成途径,以在产油酵母中有效地将糖转化为脂质。在工程化的高产菌株中,内源性细胞代谢通常会产生有害的亲电分子,从而损害细胞适应性和生产力。脂质,特别是不饱和脂肪酸,极易受到氧自由基攻击,由此产生的氧化物质对细胞代谢有害,并限制脂质生产力。在本研究中,我们研究了解脂耶氏酵母中的细胞氧化应激防御途径,以进一步提高脂质滴度、产量和生产力。具体而言,我们确定将谷胱甘肽二硫化物还原酶和葡萄糖 - 6 - 磷酸脱氢酶与醛脱氢酶结合是对抗解脂耶氏酵母中活性氧和醛应激的有效解决方案。通过所报道的工程策略,我们能够同步细胞生长和脂质生产,改善细胞适应性和形态,并在可控的台式生物反应器中实现了与工业相关的脂质滴度(72.7 g/L)、油含量(81.4%)和生产力(0.97 g/L/h)水平。这里报道的策略代表了可持续生物精炼平台开发中的可行步骤,该平台有可能将低价值碳升级为高价值油脂化学品和生物燃料。《生物技术与生物工程》2017年;114: 1521 - 1530。© 2017威利期刊公司

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