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Metabolic engineering of Saccharomyces cerevisiae to produce a reduced viscosity oil from lignocellulose

机译:Saccharomyces酿酒酵母的代谢工程,从木质纤维素产生降低的粘度油

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BackgroundAcetyl-triacylglycerols (acetyl-TAGs) are unusual triacylglycerol (TAG) molecules that contain an sn -3 acetate group. Compared to typical triacylglycerol molecules (here referred to as long chain TAGs; lcTAGs), acetyl-TAGs possess reduced viscosity and improved cold temperature properties, which may allow direct use as a drop-in diesel fuel. Their different chemical and physical properties also make acetyl-TAGs useful for other applications such as lubricants and plasticizers. Acetyl-TAGs can be synthesized by Ea DAcT, a diacylglycerol acetyltransferase enzyme originally isolated from Euonymus alatus (Burning Bush). The heterologous expression of Ea DAcT in different organisms, including Saccharomyces cerevisiae , resulted in the accumulation of acetyl-TAGs in storage lipids. Microbial conversion of lignocellulose into acetyl-TAGs could allow biorefinery production of versatile molecules for biofuel and bioproducts. ResultsIn order to produce acetyl-TAGs from abundant lignocellulose feedstocks, we expressed Ea DAcT in S. cerevisiae previously engineered to utilize xylose as a carbon source. The resulting strains were capable of producing acetyl-TAGs when grown on different media. The highest levels of acetyl-TAG production were observed with growth on synthetic lab media containing glucose or xylose. Importantly, acetyl-TAGs were also synthesized by this strain in ammonia fiber expansion (AFEX)-pretreated corn stover hydrolysate (ACSH) at higher volumetric titers than previously published strains. The deletion of the four endogenous enzymes known to contribute to lcTAG production increased the proportion of acetyl-TAGs in the total storage lipids beyond that in existing strains, which will make purification of these useful lipids easier. Surprisingly, the strains containing the four deletions were still capable of synthesizing lcTAG, suggesting that the particular strain used in this study possesses additional undetermined diacylglycerol acyltransferase activity. Additionally, the carbon source used for growth influenced the accumulation of these residual lcTAGs, with higher levels in strains cultured on xylose containing media. ConclusionOur results demonstrate that S. cerevisiae can be metabolically engineered to produce acetyl-TAGs when grown on different carbon sources, including hydrolysate derived from lignocellulose. Deletion of four endogenous acyltransferases enabled a higher purity of acetyl-TAGs to be achieved, but lcTAGs were still synthesized. Longer incubation times also decreased the levels of acetyl-TAGs produced. Therefore, additional work is needed to further manipulate acetyl-TAG production in this strain of S. cerevisiae , including the identification of other TAG biosynthetic and lipolytic enzymes and a better understanding of the regulation of the synthesis and degradation of storage lipids.
机译:背景酰基 - 三酰基甘油(乙酰标签)是含有Sn -3乙酸盐基团的不寻常的三酰基甘油(标签)分子。与典型的三酰基甘油分子(此处称为长链标签; Lctags),乙酰标签具有降低的粘度和改善的冷温度,可允许直接用作柴油燃料。它们的不同化学和物理性质也使乙酰基标签用于其他应用,例如润滑剂和增塑剂。乙酰标签可以通过EA Dact合成,原始从Euonymus Alatus(燃烧衬套)分离的二酰基甘油乙酰转移酶。在不同生物中的EA Dact的异源表达,包括酿酒酵母,导致储存脂质中的乙酰标签的积累。将木质纤维素的微生物转化为乙酰基标签可以允许生物灌注物生产的生物燃料和生物制作。结果旨在从丰富的木质纤维素原料生产乙酰基标签,我们在先前设计的酿酒酵母中表达EA Dact以利用木糖作为碳源。当在不同介质上生长时,所得菌株能够产生乙酰基标签。在含有葡萄糖或木糖的合成实验室培养基上的生长观察到最高水平的乙酰标签产生。重要的是,在氨纤维膨胀(AFex) - 预粒子玻璃渣水解产物(ACSH)中的这种菌株也比以前公布的菌株在较高的容量滴度下合成乙酰标签。已知的四种内源性酶有助于LCTAG产量的缺失增加了在现有菌株中的总储存脂质中乙酰基标签的比例,这将使这些有用的脂质纯化更容易。令人惊讶的是,含有四次缺失的菌株仍然能够合成洛杉矶,表明该研究中使用的特定菌株具有额外的未确定二酰基甘油酰基转移酶活性。另外,用于生长的碳源影响了这些残留的LCTAG的积累,含有含有培养基的木糖培养的菌株较高。结论调查结果表明,在不同碳源的生长时,可以代谢工程,以便在不同的碳源上产生乙酰基标签,包括从木质纤维素衍生的水解产物。缺失四个内源性酰基转移酶使得能够实现更高纯度的乙酰基标签,但仍然合成LCTAGS。较长的孵育时间也降低了所产生的乙酰标签的水平。因此,需要额外的作用来进一步操纵该菌株在酿酒酵母中的乙酰基标签的产生,包括鉴定其他标签的生物合成和脂肪酶,并更好地了解储存脂质的合成和降解的调节。

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