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Perspectives for biocatalytic lignin utilization: cleaving 4-O-5 and Cα-Cβ bonds in dimeric lignin model compounds catalyzed by a promiscuous activity of tyrosinase

机译:利用生物催化木质素的前景:通过酪氨酸酶的混杂活性催化二聚体木质素模型化合物中的4-O-5和Cα-Cβ键断裂

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摘要

Background: In the biorefinery utilizing lignocellulosic biomasses, lignin decomposition to value-added phenolic derivatives is a key issue, and recently biocatalytic delignification is emerging owing to its superior selectivity, low energy consumption, and unparalleled sustainability. However, besides heme-containing peroxidases and laccases, information about lignolytic biocatalysts is still limited till date.Results: Herein, we report a promiscuous activity of tyrosinase which is closely associated with delignification requiring high redox potentials (>1.4 V vs. normal hydrogen electrode [NHE]). The promiscuous activity of tyrosinase not only oxidizes veratryl alcohol, a commonly used nonphenolic substrate for assaying ligninolytic activity, to veratraldehyde but also cleaves the 4-O-5 and Cα–Cβ bonds in 4-phenoxyphenol and guaiacyl glycerol-β-guaiacyl ether (GGE) that are dimeric lignin model compounds. Cyclic voltammograms additionally verified that the promiscuous activity oxidizes lignin-related high redox potential substrates.ConclusionThese results might be applicable for extending the versatility of tyrosinase toward biocatalytic delignification as well as suggesting a new perspective for sustainable lignin utilization. Furthermore, the results provide insight for exploring the previously unknown promiscuous activities of biocatalysts much more diverse than ever thought before, thereby innovatively expanding the applicable area of biocatalysis.
机译:背景:在利用木质纤维素生物质的生物精炼厂中,木质素分解为增值的酚类衍生物是关键问题,近来由于其优越的选择性,低能耗和无与伦比的可持续性,生物催化脱木素技术正在兴起。然而,除了含血红素的过氧化物酶和漆酶外,有关木质素生物催化剂的信息仍是有限的。结果:在此,我们报道了酪氨酸酶的混杂活性,这与需要高氧化还原电位(> 1.4 V相对于正常氢电极的脱木素作用)密切相关。 [NHE]。酪氨酸酶的混杂活性不仅可以氧化藜芦醇(一种用于测定木质素分解活性的常用非酚底物)氧化为藜芦醛,而且还可以裂解4-苯氧基苯酚和愈创甘油基甘油-β-愈创甘油醚中的4-O-5和Cα-Cβ键( GGE)是二聚体木质素模型化合物。循环伏安图还证实了混杂活性氧化了木质素相关的高氧化还原电位底物。结论这些结果可能适用于扩展酪氨酸酶对生物催化脱木质素的多功能性,并为可持续利用木质素提供了新的见解。此外,结果为探索以前未知的比以往任何时候都更加多样化的生物催化剂的混杂活性提供了见识,从而创新地扩大了生物催化的适用领域。

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