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利用合成同位素标记木质素阐明微生物木质素降解途径。

Elucidation of microbial lignin degradation pathways using synthetic isotope-labelled lignin.

作者信息

Alruwaili Awatif, Rashid Goran M M, Sodré Victoria, Mason James, Rehman Zainab, Menakath Anjali K, Cheung David, Brown Steven P, Bugg Timothy D H

机构信息

Department of Chemistry, University of Warwick Coventry CV4 7AL UK

Department of Physics, University of Warwick Coventry CV4 7AL UK.

出版信息

RSC Chem Biol. 2022 Nov 24;4(1):47-55. doi: 10.1039/d2cb00173j. eCollection 2023 Jan 4.

Abstract

Pathways by which the biopolymer lignin is broken down by soil microbes could be used to engineer new biocatalytic routes from lignin to renewable chemicals, but are currently not fully understood. In order to probe these pathways, we have prepared synthetic lignins containing C at the sidechain β-carbon. Feeding of [β-C]-labelled DHP lignin to RHA1 has led to the incorporation of C label into metabolites oxalic acid, 4-hydroxyphenylacetic acid, and 4-hydroxy-3-methoxyphenylacetic acid, confirming that they are derived from lignin breakdown. We have identified a glycolate oxidase enzyme in RHA1 which is able to oxidise glycolaldehyde glycolic acid to oxalic acid, thereby identifying a pathway for the formation of oxalic acid. glycolate oxidase also catalyses the conversion of 4-hydroxyphenylacetic acid to 4-hydroxybenzoylformic acid, identifying another possible pathway to 4-hydroxybenzoylformic acid. Formation of labelled oxalic acid was also observed from [β-C]-polyferulic acid, which provides experimental evidence in favour of a radical mechanism for α,β-bond cleavage of β-aryl ether units.

摘要

土壤微生物分解生物聚合物木质素的途径可用于设计从木质素到可再生化学品的新生物催化路线,但目前尚未完全了解。为了探究这些途径,我们制备了在侧链β-碳上含有碳的合成木质素。将[β-C]标记的二氢松柏醇木质素喂给RHA1,导致碳标记掺入代谢产物草酸、4-羟基苯乙酸和4-羟基-3-甲氧基苯乙酸中,证实它们源自木质素分解。我们在RHA1中鉴定出一种乙醇酸氧化酶,它能够将乙醇醛、乙醇酸氧化为草酸,从而确定了草酸形成的途径。乙醇酸氧化酶还催化4-羟基苯乙酸转化为4-羟基苯甲酰甲酸,确定了另一条通往4-羟基苯甲酰甲酸的可能途径。从[β-C] - 聚阿魏酸中也观察到标记草酸的形成,这为β-芳基醚单元的α,β-键断裂的自由基机制提供了实验证据。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c954/9811514/26041f4d3a3d/d2cb00173j-f1.jpg

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