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黑曲霉9R-双加氧酶-丙二烯氧化物合酶的两个氨基酸替换会使氢过氧化物和丙二烯氧化物的手性发生反转。

Replacement of two amino acids of 9R-dioxygenase-allene oxide synthase of Aspergillus niger inverts the chirality of the hydroperoxide and the allene oxide.

作者信息

Sooman Linda, Wennman Anneli, Hamberg Mats, Hoffmann Inga, Oliw Ernst H

机构信息

Division of Biochemical Pharmacology, Department of Pharmaceutical Biosciences, Uppsala University, Biomedical Center, SE-751 24 Uppsala, Sweden.

Department of Medical Biochemistry and Biophysics, Karolinska Institutet, SE-17177 Solna, Sweden.

出版信息

Biochim Biophys Acta. 2016 Feb;1861(2):108-118. doi: 10.1016/j.bbalip.2015.11.009. Epub 2015 Nov 18.

Abstract

The genome of Aspergillus niger codes for a fusion protein (EHA25900), which can be aligned with ~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 Gly616Ile 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 (Gly616Ile, 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 (Gly616Ile, Phe627Leu) in the DOX domain.

摘要

黑曲霉的基因组编码一种融合蛋白(EHA25900),该蛋白与尖孢镰刀菌的9S - 双加氧酶(DOX)-丙二烯氧化物合酶(AOS)的序列同一性约为50%,与镰刀菌和炭疽菌复合体的同源物序列同一性约为50%,与曲霉属同源物的序列同一性超过62%,包括土曲霉的(DOX)-9R - AOS。目的是表征EHA25900的酶活性,并确定立体特异性的关键氨基酸。重组EHA25900将18:2n - 6依次氧化为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催化在C - 11处提取前R氢,但氧插入方向不同。对9S - 和9R - DOX - AOS的十二个9 - DOX结构域进行比较,发现了保守的氨基酸差异,这可能导致产物的手性。9R - DOX - AOS(黑曲霉)的Gly616Ile替换增加了9S - HPODE和9S(10)-丙二烯氧化物的生物合成,而Phe627Leu替换导致以9S - HPODE和9S(10)-丙二烯氧化物为主要产物的生物合成。双突变体(Gly616Ile,Phe627Leu)形成了超过90%的9S立体异构体的HPODE。9S - HPODE是通过异面氢提取和氧插入形成的,即原始的H - 提取得以保留,但产物手性发生了改变。我们得出结论,通过在DOX结构域中替换两个氨基酸(Gly616Ile,Phe627Leu),9R - DOX - AOS可以转变为9S - DOX - AOS。

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