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Analysis of N‐glycosylation in fungal l‐amino acid oxidases expressed in the methylotrophic yeast Pichia pastoris

机译:甲基嗜酸纤维酵母Pichia牧草中的真菌L-氨基酸氧化酶N-糖基化分析

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摘要

l‐amino acid oxidases (LAAOs) catalyze the oxidative deamination of l‐amino acids to corresponding α‐keto acids. Here, we describe the heterologous expression of four fungal LAAOs in Pichia pastoris. cgLAAO1 from Colletotrichum gloeosporioides and ncLAAO1 from Neurospora crassa were able to convert substrates not recognized by recombinant 9His‐hcLAAO4 from the fungus Hebeloma cylindrosporum described earlier thereby broadening the substrate spectrum for potential applications. 9His‐frLAAO1 from Fibroporia radiculosa and 9His‐laLAAO2 from Laccaria amethystine were obtained only in low amounts. All four enzymes were N‐glycosylated. We generated mutants of 9His‐hcLAAO4 lacking N‐glycosylation sites to further understand the effects of N‐glycosylation. All four predicted N‐glycosylation sites were glycosylated in 9His‐hcLAAO4 expressed in P. pastoris. Enzymatic activity was similar for fully glycosylated 9His‐hcLAAO4 and variants without one or all N‐glycosylation sites after acid activation of all samples. However, activity without acid treatment was low in a variant without N‐glycans. This was caused by the absence of a hypermannosylated N‐glycan on asparagine residue N54. The lack of one or all of the other N‐glycans was without effect. Our results demonstrate that adoption of a more active conformation requires a specific N‐glycosylation during biosynthesis.
机译:L-氨基酸氧化酶(LaAOS)催化L-氨基酸的氧化脱氨基,对应于相应的α-酮酸。在这里,我们描述了毕赤酵母四个真菌Laaos的异源表达。来自Gloepora crassa的Collectrichum的CglaaO1和Nclaao1能够从前面描述的真菌Hebeloma圆柱孢锥孢子中转化重组9his-hclaao4未识别的底物,从而展现潜在应用的基材谱。来自纤维植物的9HIS-FRLAAO1和来自曲霉素亚乙基乙基乙基乙基乙丝氨酸的9HIS-Lalaao2仅在低量获得。所有四种酶都是N-糖基化。我们产生9His-HClaao4的突变体缺乏N-糖基化位点,以进一步了解N-糖基化的作用。所有四个预测的N-糖基化位点在P. Pastoris中表达的9His-HClaaO 4中糖基化。酶活性类似于完全糖基化的9His-HClaaO4和变体,没有一个或全部N-糖基化位点在所有样品的酸活化后。然而,在没有N-聚糖的变体中,不含酸处理的活性低。这是由于在天冬酰胺残基N54上没有超法溶解的N-聚糖导致。缺乏一个或所有其他n-glycans没有效果。我们的结果表明,采用更活跃的构象在生物合成中需要特异性N-糖基化。

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