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Discovery and Functional Analysis of a Salicylic Acid Hydroxylase from Aspergillus niger

机译:曲霉属植物葡萄牙酸碱酸羟化酶的发现与功能分析

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Salicylic acid plays an important role in the plant immune response, and its degradation is therefore important for plant-pathogenic fungi. However, many nonpathogenic microorganisms can also degrade salicylic acid. In the filamentous fungus Aspergillus niger , two salicylic acid metabolic pathways have been suggested. The first pathway converts salicylic acid to catechol by a salicylate hydroxylase (ShyA). In the second pathway, salicylic acid is 3-hydroxylated to 2,3-dihydroxybenzoic acid, followed by decarboxylation to catechol by 2,3-dihydroxybenzoate decarboxylase (DhbA). A. niger cleaves the aromatic ring of catechol catalyzed by catechol 1,2-dioxygenase (CrcA) to form cis , cis -muconic acid. However, the identification and role of the genes and characterization of the enzymes involved in these pathways are lacking. In this study, we used transcriptome data of A. niger grown on salicylic acid to identify genes ( shyA and crcA ) involved in salicylic acid metabolism. Heterologous production in Escherichia coli followed by biochemical characterization confirmed the function of ShyA and CrcA. The combination of ShyA and CrcA demonstrated that cis,cis -muconic acid can be produced from salicylic acid. In addition, the in vivo roles of shyA , dhbA , and crcA were studied by creating A. niger deletion mutants which revealed the role of these genes in the fungal metabolism of salicylic acid.IMPORTANCE Nonrenewable petroleum sources are being depleted, and therefore, alternative sources are needed. Plant biomass is one of the most abundant renewable sources on Earth and is efficiently degraded by fungi. In order to utilize plant biomass efficiently, knowledge about the fungal metabolic pathways and the genes and enzymes involved is essential to create efficient strategies for producing valuable compounds such as cis , cis -muconic acid. cis , cis -Muconic acid is an important platform chemical that is used to synthesize nylon, polyethylene terephthalate (PET), polyurethane, resins, and lubricants. Currently, cis , cis -muconic acid is mainly produced through chemical synthesis from petroleum-based chemicals. Here, we show that two enzymes from fungi can be used to produce cis , cis -muconic acid from salicylic acid and contributes in creating alternative methods for the production of platform chemicals.
机译:水杨酸在植物免疫应答中起重要作用,因此其降解对植物致病性真菌很重要。然而,许多非暴力微生物也可以降解水杨酸。在丝状真菌曲霉菌中,已经提出了两个水杨酸代谢途径。第一个途径通过水杨酸盐羟化酶(Shya)将水杨酸转化为儿茶酚。在第二途径中,水杨酸是3-羟基化至2,3-二羟基苯甲酸,然后通过2,3-二羟基苯甲酸脱羧(DHBA)对儿茶酚脱羧。 A.尼日尔用儿茶醇1,2-二氧化酶(CRCA)催化的儿茶酚芳香环,以形成顺式CIS,CIS-熔酸。然而,缺乏基因的鉴定和作用以及参与这些途径的酶的表征。在这项研究中,我们使用了在水杨酸上生长的A.尼日尔的转录组数据以鉴定参与水杨酸代谢的基因(Shya和CRCA)。在大肠杆菌中的异源生产,然后生化表征证实了Shya和CRCA的功能。 Shya和CRCA的组合证明了CIS,CIS-熔酸可以由水杨酸制备。此外,通过创造尼日尔缺失突变体研究了Shya,Dhba和CRCA的体内作用,该脉冲突变体揭示了这些基因在水杨酸的真菌代谢中的作用。分为不可再生的石油来源是耗尽的,因此替代需要来源。植物生物质是地球上最丰富的可再生源之一,并通过真菌有效降解。为了有效地利用植物生物质,有关真菌代谢途径和所涉及的基因和酶的知识对于产生有效的策略,以产生有价值的化合物,如CIS,CIS-MUCOCOLION。 CIS,顺式 - 熔酸是一种重要的平台化学品,用于合成尼龙,聚对苯二甲酸乙二醇酯(PET),聚氨酯,树脂和润滑剂。目前,CIS,CIS-MUCOCOLINAN主要通过石油基化学品的化学合成生产。在这里,我们表明来自真菌的两种酶可用于生产来自水杨酸的CIS,顺式 - 墨西琥珀酸,并有助于为生产平台化学品产生替代方法。

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