首页> 外文期刊>Applied and Environmental Microbiology >Role of β-Oxidation Enzymes in γ-Decalactone Production by the Yeast Yarrowia lipolytica
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Role of β-Oxidation Enzymes in γ-Decalactone Production by the Yeast Yarrowia lipolytica

机译:β-氧化酶在解脂耶氏酵母中产生γ-十内酯的作用

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Some microorganisms can transform methyl ricinoleate into γ-decalactone, a valuable aroma compound, but yields of the bioconversion are low due to (i) incomplete conversion of ricinoleate (C18) to the C10 precursor of γ-decalactone, (ii) accumulation of other lactones (3-hydroxy-γ-decalactone and 2- and 3-decen-4-olide), and (iii) γ-decalactone reconsumption. We evaluated acyl coenzyme A (acyl-CoA) oxidase activity (encoded by the POX1 throughPOX5 genes) in Yarrowia lipolytica in lactone accumulation and γ-decalactone reconsumption inPOX mutants. Mutants with no acyl-CoA oxidase activity could not reconsume γ-decalactone, and mutants with a disruption ofpox3, which encodes the short-chain acyl-CoA oxidase, reconsumed it more slowly. 3-Hydroxy-γ-decalactone accumulation during transformation of methyl ricinoleate suggests that, in wild-type strains, β-oxidation is controlled by 3-hydroxyacyl-CoA dehydrogenase. In mutants with low acyl-CoA oxidase activity, however, the acyl-CoA oxidase controls the β-oxidation flux. We also identified mutant strains that produced 26 times more γ-decalactone than the wild-type parents.
机译:一些微生物可以将蓖麻油酸酯甲酯转化为有价值的香气化合物γ-癸内酯,但由于(i)蓖麻油酸酯(C 18 )不完全转化为C 10,生物转化的产量较低。 的前体,(ii)积累其他内酯(3-羟基-γ-癸内酯以及2-和3-decen-4-olide),以及(iii)γ-癸内酯的再消耗。我们评估了解脂耶氏酵母中内酯积累和γ的酰基辅酶A(酰基辅酶A)氧化酶活性(由 POX1 POX5 基因编码) -emalPOX 突变体中的癸内酯再消耗。没有酰基辅酶A氧化酶活性的突变体不能恢复γ-癸内酯,而编码短链酰基辅酶A的氧化酶 pox3 被破坏的突变体恢复速度较慢。蓖麻油酸甲酯转化过程中3-羟基-γ-癸内酯的积累表明,在野生型菌株中,β-氧化受3-羟酰基-CoA脱氢酶的控制。但是,在酰基辅酶A氧化酶活性低的突变体中,酰基辅酶A氧化酶控制着β-氧化通量。我们还确定了突变菌株,其产生的γ-癸内酯比野生型亲本多26倍。

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