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首页> 外文期刊>Biochimica et Biophysica Acta. Molecular and cell biology of Lipids >Replacement of two amino acids of 9R-dioxygenase-allene oxide synthase of Aspergillus niger inverts the chirality of the hydroperoxide and the allene oxide
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Replacement of two amino acids of 9R-dioxygenase-allene oxide synthase of Aspergillus niger inverts the chirality of the hydroperoxide and the allene oxide

机译:黑曲霉的9R-双加氧酶-氧化烯合酶的两个氨基酸的替换逆转了氢过氧化物和氧化烯的手性

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The genome of Aspergillus niger codes for a fusion protein (EHA25900), which can be aligned with similar to 50% sequence identity to 9S-dioxygenase (DOX)-allene oxide synthase (AOS) of Fusarium oxysporum, homologues of the Fusarium and Colletotrichum complexes and with over 62% sequence identity to homologues of Aspergilli, including (DOX)-9R-AOS of Aspergillus terreus. The aims were to characterize the enzymatic activities of EHA25900 and to identify crucial amino acids for the stereospecificity. Recombinant EHA25900 oxidized 18:2n-6 sequentially to 9R-hydroperoxy-10(E),12(Z)-octadecadienoic acid (9R-HPODE) and to a 9R(10)-allene oxide. 9S- and 9R-DOX-AOS catalyze abstraction of the pro-R hydrogen at C-11, but the direction of oxygen insertion differs. A comparison between twelve 9-DOX domains of 9S-and 9R-DOX-AOS revealed conserved amino acid differences, which could contribute to the chirality of products. The Gly61611e replacement of 9R-DOX-AOS (A. niger) increased the biosynthesis of 9S-HPODE and the 9S(10)-allene oxide, whereas the Phe627Leu replacement led to biosynthesis of 9S-HPODE and the 9S(10)-allene oxide as main products. The double mutant (Gly61611e, Phe627Leu) formed over 90% of the 9S stereoisomer of HPODE. 9S-HPODE was formed by antarafacial hydrogen abstraction and oxygen insertion, i.e., the original H-abstraction was retained but the product chirality was altered. We conclude that 9R-DOX-AOS can be altered to 9S-DOX-AOS by replacement of two amino acids (G1y61611e, Phe627Leu) in the DOX domain. (C) 2015 Elsevier B.V. All rights reserved.
机译:黑曲霉的基因组编码一个融合蛋白(EHA25900),该序列可以与尖酸镰刀菌的9S-双加氧酶(DOX)-氧化烯合酶(AOS),镰刀菌和炭疽菌复合体的同源物有大约50%的序列同一性进行比对并且与曲霉的同源物具有超过62%的序列同一性,包括曲霉(DOX)-9R-AOS。目的是表征EHA25900的酶促活性,并鉴定立体特异性的关键氨基酸。重组EHA25900依次将18:2n-6氧化为9R-氢过氧-10(E),12(Z)-十八碳二烯酸(9R-HPODE)和9R(10)-丙二烯氧化物。 9S-和9R-DOX-AOS在C-11处催化pro-R氢的提取,但氧的插入方向不同。比较9S-和9R-DOX-AOS的12个9-DOX域,可以发现保守的氨基酸差异,这可能有助于产品的手性。 9R-DOX-AOS(黑曲霉)的Gly61611e替代增加了9S-HPODE和9S(10)-丙二烯氧化物的生物合成,而Phe627Leu替代导致9S-HPODE和9S(10)-丙二烯的生物合成。氧化物为主要产品。双突变体(Gly61611e,Phe627Leu)形成了HPODE 9S立体异构体的90%以上。 9S-HPODE是通过反面氢的提取和氧的插入而形成的,即保留了最初的H-抽象,但产物的手性却改变了。我们得出的结论是,可以通过替换DOX域中的两个氨基酸(G1y61611e,Phe627Leu)将9R-DOX-AOS更改为9S-DOX-AOS。 (C)2015 Elsevier B.V.保留所有权利。

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