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伞菌目蘑菇木质素过氧化物酶:从结构功能到降解能力

Agaricales Mushroom Lignin Peroxidase: From Structure-Function to Degradative Capabilities.

作者信息

Sánchez-Ruiz María Isabel, Ayuso-Fernández Iván, Rencoret Jorge, González-Ramírez Andrés Manuel, Linde Dolores, Davó-Siguero Irene, Romero Antonio, Gutiérrez Ana, Martínez Angel T, Ruiz-Dueñas Francisco Javier

机构信息

Centro de Investigaciones Biológicas "Margarita Salas" (CIB), Consejo Superior de Investigaciones Científicas (CSIC), 28040 Madrid, Spain.

Instituto de Recursos Naturales y Agrobiología de Sevilla (IRNAS), Consejo Superior de Investigaciones Científicas (CSIC), 41012 Seville, Spain.

出版信息

Antioxidants (Basel). 2021 Sep 12;10(9):1446. doi: 10.3390/antiox10091446.

Abstract

Lignin biodegradation has been extensively studied in white-rot fungi, which largely belong to order Polyporales. Among the enzymes that wood-rotting polypores secrete, lignin peroxidases (LiPs) have been labeled as the most efficient. Here, we characterize a similar enzyme (ApeLiP) from a fungus of the order Agaricales (with ~13,000 described species), the soil-inhabiting mushroom . X-ray crystallography revealed that ApeLiP is structurally related to Polyporales LiPs, with a conserved heme-pocket and a solvent-exposed tryptophan. Its biochemical characterization shows that ApeLiP can oxidize both phenolic and non-phenolic lignin model-compounds, as well as different dyes. Moreover, using stopped-flow rapid spectrophotometry and 2D-NMR, we demonstrate that ApeLiP can also act on real lignin. Characterization of a variant lacking the above tryptophan residue shows that this is the oxidation site for lignin and other high redox-potential substrates, and also plays a role in phenolic substrate oxidation. The reduction potentials of the catalytic-cycle intermediates were estimated by stopped-flow in equilibrium reactions, showing similar activation by HO, but a lower potential for the rate-limiting step (compound-II reduction) compared to other LiPs. Unexpectedly, ApeLiP was stable from acidic to basic pH, a relevant feature for application considering its different optima for oxidation of phenolic and nonphenolic compounds.

摘要

木质素生物降解已在白腐真菌中得到广泛研究,这些真菌大多属于多孔菌目。在木腐多孔菌分泌的酶中,木质素过氧化物酶(LiPs)被认为是最有效的。在此,我们从伞菌目(约有13000种已描述物种)的一种真菌——土壤栖息蘑菇中鉴定出一种类似的酶(ApeLiP)。X射线晶体学表明,ApeLiP在结构上与多孔菌目LiPs相关,具有保守的血红素口袋和一个暴露于溶剂中的色氨酸。其生化特性表明,ApeLiP既能氧化酚类和非酚类木质素模型化合物,也能氧化不同的染料。此外,通过停流快速分光光度法和二维核磁共振,我们证明ApeLiP也能作用于真实的木质素。对缺乏上述色氨酸残基的变体进行表征表明,这是木质素和其他高氧化还原电位底物的氧化位点,并且在酚类底物氧化中也起作用。通过停流平衡反应估算了催化循环中间体的还原电位,结果表明与其他LiPs相比,HO对其具有相似的活化作用,但限速步骤(化合物II还原)的电位较低。出乎意料的是,ApeLiP在酸性至碱性pH范围内都很稳定,考虑到其对酚类和非酚类化合物氧化的不同最适条件,这一特性对于其应用具有重要意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f7bd/8472802/2b43dbd20eab/antioxidants-10-01446-g001.jpg

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