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Metabolic engineering for ricinoleic acid production in the oleaginous yeast Yarrowia lipolytica

机译:产油酵母酵母解脂耶氏酵母中产蓖麻油酸的代谢工程

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摘要

Although there are numerous oleochemical applications for ricinoleic acid (RA) and its derivatives, their production is limited and subject to various safety legislations. In an effort to produce RA from alternative sources, we constructed a genetically modified strain of the oleaginous yeast Yarrowia lipolytica. This strain is unable to perform β- oxidation and is invalidated for the native triacylglycerol(TAG) acyltransferases (Dga1p, Dga2p, and Lro1p) and the Δ12 desaturase (Fad2p). We also expressed the Ricinus communis Δ12 hydroxylase (RcFAH12) under the control of the TEF constitutive promoter in this strain. However, RA constituted only 7 % of the total lipids produced by this modified strain. By contrast, expression of the Claviceps purpurea hydroxylase CpFAH12 in this background resulted in a strain able to accumulate RA to 29 % of total lipids, and expression of an additional copy of CpFAH12 drove RA accumulation up to 35 % of total lipids. The co-expression of the C. purpurea or R. communis type II diacylglycerol acyltransferase (RcDGAT2 or CpDGAT2) had negative effects on RA accumulation in this yeast, with RA levels dropping to below 14 % of total lipids. Overexpression of the native Y. lipolytica PDAT acyltransferase (Lro1p) restored both TAG accumulation and RA levels. Thus, we describe the consequences of rerouting lipid metabolism in this yeast so as to develop a cell factory for RA production. The engineered strain is capable of accumulating RA to 43 % of its total lipids and over 60 mg/g of cell dry weight; this is the most efficient production of RA described to date.
机译:尽管蓖麻油酸(RA)及其衍生物在油脂化学领域有许多应用,但其生产受到限制,并受各种安全法规的约束。为了从其他来源生产RA,我们构建了油性酵母解脂耶氏酵母(Yarrowia lipolytica)的基因改造菌株。该菌株无法进行β-氧化,并且对于天然三酰甘油(TAG)酰基转移酶(Dga1p,Dga2p和Lro1p)和Δ12去饱和酶(Fad2p)无效。我们还表达了该菌株中TEF组成型启动子控制下的蓖麻(Ricinus communis)Δ12羟化酶(RcFAH12)。然而,RA仅占该修饰菌株产生的总脂质的7%。相比之下,在这种背景下表达紫癜羟化酶CpFAH12导致菌株能够将RA积累到总脂质的29%,另外一份CpFAH12的表达使RA积累到总脂质的35%。紫氏梭状芽胞杆菌或R. communis II型二酰基甘油酰基转移酶(RcDGAT2或CpDGAT2)的共表达对这种酵母中的RA积累有负面影响,RA水平降至总脂质的14%以下。天然解脂耶氏酵母PDAT酰基转移酶(Lro1p)的过表达恢复了TAG积累和RA水平。因此,我们描述了在该酵母中重新引导脂质代谢的后果,从而建立了用于RA生产的细胞工厂。该工程菌株能够将RA累积至其总脂质的43%,细胞干重超过60 mg / g。这是迄今为止描述的最有效的RA生产。

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