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Original Research | Open Access

Widespread Bathyarchaeia encode a novel methyltransferase utilizing lignin-derived aromatics

Tiantian Yu1,2,# Haining Hu2,#Xianhong Zeng2,#Yinzhao Wang2 Donald Pan1Longhui Deng1Lewen Liang1Jialin Hou2 Fengping Wang1,2,3 ( )
School of Oceanography, Shanghai Jiao Tong University, Shanghai, China
State Key Laboratory of Microbial Metabolism, School of Life Sciences and Biotechnology, Shanghai Jiao Tong University, Shanghai, China
Southern Marine Science and Engineering, Guangdong Laboratory (Zhuhai), Zhuhai, China

#Tiantian Yu, Haining Hu, and Xianhong Zeng contributed equally to this study.

Edited by Shuang‐Jiang Liu, Shandong University, China

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Abstract

Lignin degradation is a major process in the global carbon cycle across both terrestrial and marine ecosystems. Bathyarchaeia, which are among the most abundant microorganisms in marine sediment, have been proposed to mediate anaerobic lignin degradation. However, the mechanism of bathyarchaeial lignin degradation remains unclear. Here, we report an enrichment culture of Bathyarchaeia, named Candidatus Baizosediminiarchaeum ligniniphilus DL1YTT001 (Ca. B. ligniniphilus), from coastal sediments that can grow with lignin as the sole organic carbon source under mesophilic anoxic conditions. Ca. B. ligniniphilus possesses and highly expresses novel methyltransferase 1 (MT1, mtgB) for transferring methoxyl groups from lignin monomers to cob(I)alamin. MtgBs have no homology with known microbial methyltransferases and are present only in bathyarchaeial lineages. Heterologous expression of the mtgB gene confirmed O-demethylation activity. The mtgB genes were identified in metagenomic data sets from a wide range of coastal sediments, and they were highly expressed in coastal sediments from the East China Sea. These findings suggest that Bathyarchaeia, capable of O-demethylation via their novel and specific methyltransferases, are ubiquitous in coastal sediments.

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Pages 272-282

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Cite this article:
Yu T, Hu H, Zeng X, et al. Widespread Bathyarchaeia encode a novel methyltransferase utilizing lignin-derived aromatics. mLife, 2023, 2(3): 272-282. https://doi.org/10.1002/mlf2.12082

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Received: 22 May 2023
Accepted: 12 July 2023
Published: 18 September 2023
© 2023 The Authors. mLife published by John Wiley & Sons Australia, Ltd. on behalf of Institute of Microbiology, Chinese Academy of Sciences.

This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.