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Engineering lipid overproduction in the oleaginous yeast Yarrowia lipolytica

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논문

Engineering lipid overproduction in the oleaginous yeast Yarrowia lipolytica

학술지

Metabolic engineering

저자명

Qiao, Kangjian; Imam Abidi, Syed Hussain; Liu, Hongjuan; Zhang, Haoran; Chakraborty, Sagar; Watson, Nicki; Kumaran Ajikumar, Parayil; Stephanopoulos, Gregory

초록

<P><B>Abstract</B></P> <P>Conversion of carbohydrates to lipids at high yield and productivity is essential for cost-effective production of renewable biodiesel. Although some microorganisms can convert sugars to oils, conversion yields and rates are typically low due primarily to allosteric inhibition of the lipid biosynthetic pathway by saturated fatty acids. By reverse engineering the mammalian cellular obese phenotypes, we identified the delta-9 stearoyl-CoA desaturase (SCD) as a rate limiting step and target for the metabolic engineering of the lipid synthesis pathway in <I>Yarrowia lipolytica</I>. Simultaneous overexpression of SCD, Acetyl-CoA carboxylase (ACC1), and Diacylglyceride acyl-transferase (DGA1) in <I>Y. lipolytica</I> yielded an engineered strain exhibiting highly desirable phenotypes of fast cell growth and lipid overproduction including high carbon to lipid conversion yield (84.7% of theoretical maximal yield), high lipid titers (~55g/L), enhanced tolerance to glucose and cellulose-derived sugars. Moreover, the engineered strain featured a three-fold growth advantage over the wild type strain. As a result, a maximal lipid productivity of ~1g/L/h is obtained during the stationary phase. Furthermore, we showed that the engineered yeast required cytoskeleton remodeling in eliciting the obesity phenotype. Altogether, our work describes the development of a microbial catalyst with the highest reported lipid yield, titer and productivity to date. This is an important step towards the development of an efficient and cost-effective process for biodiesel production from renewable resources.</P> <P><B>Highlights</B></P> <P> <UL> <LI> A lipogenic enzyme was identified by reverse engineering the mammalian cellular obese phenotypes. </LI> <LI> Overexpression of SCD in <I>Yarrowia lipolytica</I> led to obese phenotype with enhanced growth rate. </LI> <LI> The engineered yeast featured high yield (0.234g/g), titer (55g/L) and productivity (0.71g/L/h). </LI> </UL> </P>

발행연도

2015

발행기관

Elsevier

라이선스

publisher-specific-oa

ISSN

1096-7176

ISSN

1096-7184

29

페이지

pp.56-65

주제어

Biodiesel; Metabolic engineering; Triacylglycerol; Autophagy

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1 2023-12-11

논문; 2015-05-01

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