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A novel starch-binding laccase from the wheat pathogen Zymoseptoria tritici highlights the functional diversity of ascomycete laccases

机译:来自小麦病原体唑虫毒素的新型淀粉结合漆酶突出了ascycete漆酶的功能多样性

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摘要

Abstract Background Laccases are multicopper oxidases, which are assigned into auxiliary activity family 1 (AA1) in the CAZy database. These enzymes, catalyzing the oxidation of phenolic and nonphenolic substrates coupled to reduction of O2 to H2O, are increasingly attractive as eco-friendly oxidation biocatalysts. Basidiomycota laccases are well characterized due to their potential in de-lignification of lignocellulose. By contrast, insight into the biochemical diversity of Ascomycota counterparts from saprophytes and plant pathogens is scarce. Results Here, we report the properties of the laccase from the major wheat pathogen Zymoseptoria tritici (ZtrLac1A), distinguished from common plant fungal pathogens by an apoplastic infection strategy. We demonstrate that ZtrLac1A is appended to a functional starch-binding module and displays an activity signature disfavoring relatively apolar phenolic redox mediators as compared to the related biochemically characterized laccases. By contrast, the redox potential of ZtrLac1A (370 mV vs. SHE) is similar to ascomycetes counterparts. The atypical specificity is consistent with distinctive sequence substitutions and insertions in loops flanking the T1 site and the enzyme C-terminus compared to characterized laccases. Conclusions ZtrLac1A is the first reported modular laccase appended to a functional starch-specific carbohydrate binding module of family 20 (CBM20). The distinct specificity profile of ZtrLac1A correlates to structural differences in the active site region compared to previously described ascomycetes homologues. These differences are also highlighted by the clustering of the sequence of ZtrLac1A in a distinct clade populated predominantly by plant pathogens in the phylogenetic tree of AA1 laccases. The possible role of these laccases in vivo merits further investigations. These findings expand our toolbox of laccases for green oxidation and highlight the binding functionality of CBM-appended laccases as versatile immobilization tags.
机译:摘要背景漆酶是多杯氧化酶,其被分配到Cazy数据库中的辅助活动家庭1(AA1)中。这些酶,催化酚类和非对酚醛基材的氧化与O 2还原到H 2 O的氧化,越来越具有生态型氧化生物催化剂。由于它们在木质纤维素的脱钙潜力,基础霉菌缺失酶很好地表征。相比之下,对脂肪酸和植物病原体的Ascomycota对应物的生化多样性的洞察力是稀缺的。结果在此,我们报告了来自主要小麦病原体唑菌素麦芽素(Ztrlac1a)的漆酶的性质,从常规感染策略与常见的植物真菌病原体区分开来。我们证明Ztrlac1a被附加到功能淀粉结合模块上,与相关的生物化学表征的漆酶相比,呈现出相对恶性酚醛氧化还原介质的活性特征。相比之下,Ztrlac1a的氧化还原电位(370mV与她)类似于Ascomycetes对应物。与特征漆酶相比,非典型特异性与侧翼T1位点的序列取代和酶C-末端的环节中的分插。结论Ztrlac1a是第一个报告的模块化漆酶,其附加到家庭20(CBM20)的官能淀粉特异性碳水化合物结合模块。与先前描述的Ascomycetes同源物相比,Ztrlac1a的不同特异性谱与活性位点区域的结构差异相关。这些差异也通过Ztrlac1a序列在主要由AA1漆酶的系统病原体中的植物病原体中填充的不同思想中的Ztrlac1a序列的聚类来突出显示。这些漆酶在体内可能的作用可以进一步调查。这些调查结果扩展了我们的漆酶的工具箱,以进行绿色氧化,并突出CBM附加漆酶的结合功能作为多功能固定标签。

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