黑曲霉漆酶McoG的结构与功能

M. Ferraroni, A. Westphal, M. Borsari, J. A. Tamayo-Ramos, F. Briganti, L. Graaff, W. Berkel
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引用次数: 19

摘要

摘要子囊菌黑曲霉产生多种铜氧化酶,但其生物催化性质仍不清楚。在1.7 Å分辨率下对a . niger漆酶McoG的晶体结构进行了解析,发现该糖蛋白的c端尾部阻断了T3溶剂通道,并且一个过氧化物离子桥接了两个T3铜原子。值得注意的是,McoG含有组氨酸(His253),而不是常见的天冬氨酸或谷氨酸,它们被认为参与了与酚类化合物的催化质子转移。在1.5 Å分辨率下,H253D的晶体结构类似于野生型结构。McoG和H253D、H253A和H253N变体对2,2 ' -氮基-双(3-乙基苯并噻唑-6-磺酸或N,N-二甲基-对苯二胺硫酸盐具有相似的活性。但与野生型相比,H253A和H253N对2-氨基-4-甲基苯酚和2-氨基-4-甲氧基苯酚的活性明显降低。测定了野生型和变异型的氧化还原电位和电子传递速率(ks) (McoG wt E°′为+453 mV),特别是H253A和H253N的还原k值与它们对酚类化合物的低活性有很强的相关性。综上所述,我们的研究结果表明,His253对McoG的适应有利于酚类化合物的转化。
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Structure and function of Aspergillus niger laccase McoG
Abstract The ascomycete Aspergillus niger produces several multicopper oxidases, but their biocatalytic properties remain largely unknown. Elucidation of the crystal structure of A. niger laccase McoG at 1.7 Å resolution revealed that the C-terminal tail of this glycoprotein blocks the T3 solvent channel and that a peroxide ion bridges the two T3 copper atoms. Remarkably, McoG contains a histidine (His253) instead of the common aspartate or glutamate expected to be involved in catalytic proton transfer with phenolic compounds. The crystal structure of H253D at 1.5 Å resolution resembles the wild type structure. McoG and the H253D, H253A and H253N variants have similar activities with 2,2’-azino-bis(3- ethylbenzothiazoline-6-sulphonic acid or N,N-dimethyl-p-phenylenediamine sulphate. However, the activities of H253A and H253N with 2-amino-4-methylphenol and 2-amino-4-methoxyphenol are strongly reduced compared to that of wild type. The redox potentials and electron transfer rates (ks) of wild type and variants were determined (McoG wt E°’ is +453 mV), and especially the reduced ks values of H253A and H253N show strong correlation with their low activity on phenolic compounds. In summary, our results suggest that the His253 adaptation of McoG can be beneficial for the conversion of phenolic compounds.
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