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Mechanistic insight into 3‐methylmercaptopropionate metabolism and kinetical regulation of demethylation pathway in marine dimethylsulfoniopropionate‐catabolizing bacteria

The vast majority of oceanic dimethylsulfoniopropionate (DMSP) is thought to be catabolized by bacteria via the DMSP demethylation pathway. This pathway contains four enzymes termed DmdA, DmdB, DmdC and DmdD/AcuH, which together catabolize DMSP to acetylaldehyde and methanethiol as carbon and sulfur...

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Autores principales: Shao, Xuan, Cao, Hai‐Yan, Zhao, Fang, Peng, Ming, Wang, Peng, Li, Chun‐Yang, Shi, Wei‐Ling, Wei, Tian‐Di, Yuan, Zenglin, Zhang, Xiao‐Hua, Chen, Xiu‐Lan, Todd, Jonathan D., Zhang, Yu‐Zhong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6850173/
https://www.ncbi.nlm.nih.gov/pubmed/30677184
http://dx.doi.org/10.1111/mmi.14211
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author Shao, Xuan
Cao, Hai‐Yan
Zhao, Fang
Peng, Ming
Wang, Peng
Li, Chun‐Yang
Shi, Wei‐Ling
Wei, Tian‐Di
Yuan, Zenglin
Zhang, Xiao‐Hua
Chen, Xiu‐Lan
Todd, Jonathan D.
Zhang, Yu‐Zhong
author_facet Shao, Xuan
Cao, Hai‐Yan
Zhao, Fang
Peng, Ming
Wang, Peng
Li, Chun‐Yang
Shi, Wei‐Ling
Wei, Tian‐Di
Yuan, Zenglin
Zhang, Xiao‐Hua
Chen, Xiu‐Lan
Todd, Jonathan D.
Zhang, Yu‐Zhong
author_sort Shao, Xuan
collection PubMed
description The vast majority of oceanic dimethylsulfoniopropionate (DMSP) is thought to be catabolized by bacteria via the DMSP demethylation pathway. This pathway contains four enzymes termed DmdA, DmdB, DmdC and DmdD/AcuH, which together catabolize DMSP to acetylaldehyde and methanethiol as carbon and sulfur sources respectively. While molecular mechanisms for DmdA and DmdD have been proposed, little is known of the catalytic mechanisms of DmdB and DmdC, which are central to this pathway. Here, we undertake physiological, structural and biochemical analyses to elucidate the catalytic mechanisms of DmdB and DmdC. DmdB, a 3‐methylmercaptopropionate (MMPA)‐coenzyme A (CoA) ligase, undergoes two sequential conformational changes to catalyze the ligation of MMPA and CoA. DmdC, a MMPA‐CoA dehydrogenase, catalyzes the dehydrogenation of MMPA‐CoA to generate MTA‐CoA with Glu435 as the catalytic base. Sequence alignment suggests that the proposed catalytic mechanisms of DmdB and DmdC are likely widely adopted by bacteria using the DMSP demethylation pathway. Analysis of the substrate affinities of involved enzymes indicates that Roseobacters kinetically regulate the DMSP demethylation pathway to ensure DMSP functioning and catabolism in their cells. Altogether, this study sheds novel lights on the catalytic and regulative mechanisms of bacterial DMSP demethylation, leading to a better understanding of bacterial DMSP catabolism.
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spelling pubmed-68501732019-11-18 Mechanistic insight into 3‐methylmercaptopropionate metabolism and kinetical regulation of demethylation pathway in marine dimethylsulfoniopropionate‐catabolizing bacteria Shao, Xuan Cao, Hai‐Yan Zhao, Fang Peng, Ming Wang, Peng Li, Chun‐Yang Shi, Wei‐Ling Wei, Tian‐Di Yuan, Zenglin Zhang, Xiao‐Hua Chen, Xiu‐Lan Todd, Jonathan D. Zhang, Yu‐Zhong Mol Microbiol Research Articles The vast majority of oceanic dimethylsulfoniopropionate (DMSP) is thought to be catabolized by bacteria via the DMSP demethylation pathway. This pathway contains four enzymes termed DmdA, DmdB, DmdC and DmdD/AcuH, which together catabolize DMSP to acetylaldehyde and methanethiol as carbon and sulfur sources respectively. While molecular mechanisms for DmdA and DmdD have been proposed, little is known of the catalytic mechanisms of DmdB and DmdC, which are central to this pathway. Here, we undertake physiological, structural and biochemical analyses to elucidate the catalytic mechanisms of DmdB and DmdC. DmdB, a 3‐methylmercaptopropionate (MMPA)‐coenzyme A (CoA) ligase, undergoes two sequential conformational changes to catalyze the ligation of MMPA and CoA. DmdC, a MMPA‐CoA dehydrogenase, catalyzes the dehydrogenation of MMPA‐CoA to generate MTA‐CoA with Glu435 as the catalytic base. Sequence alignment suggests that the proposed catalytic mechanisms of DmdB and DmdC are likely widely adopted by bacteria using the DMSP demethylation pathway. Analysis of the substrate affinities of involved enzymes indicates that Roseobacters kinetically regulate the DMSP demethylation pathway to ensure DMSP functioning and catabolism in their cells. Altogether, this study sheds novel lights on the catalytic and regulative mechanisms of bacterial DMSP demethylation, leading to a better understanding of bacterial DMSP catabolism. John Wiley and Sons Inc. 2019-03-04 2019-04 /pmc/articles/PMC6850173/ /pubmed/30677184 http://dx.doi.org/10.1111/mmi.14211 Text en © 2019 The Authors. Molecular Microbiology Published byJohn Wiley & Sons Ltd This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes.
spellingShingle Research Articles
Shao, Xuan
Cao, Hai‐Yan
Zhao, Fang
Peng, Ming
Wang, Peng
Li, Chun‐Yang
Shi, Wei‐Ling
Wei, Tian‐Di
Yuan, Zenglin
Zhang, Xiao‐Hua
Chen, Xiu‐Lan
Todd, Jonathan D.
Zhang, Yu‐Zhong
Mechanistic insight into 3‐methylmercaptopropionate metabolism and kinetical regulation of demethylation pathway in marine dimethylsulfoniopropionate‐catabolizing bacteria
title Mechanistic insight into 3‐methylmercaptopropionate metabolism and kinetical regulation of demethylation pathway in marine dimethylsulfoniopropionate‐catabolizing bacteria
title_full Mechanistic insight into 3‐methylmercaptopropionate metabolism and kinetical regulation of demethylation pathway in marine dimethylsulfoniopropionate‐catabolizing bacteria
title_fullStr Mechanistic insight into 3‐methylmercaptopropionate metabolism and kinetical regulation of demethylation pathway in marine dimethylsulfoniopropionate‐catabolizing bacteria
title_full_unstemmed Mechanistic insight into 3‐methylmercaptopropionate metabolism and kinetical regulation of demethylation pathway in marine dimethylsulfoniopropionate‐catabolizing bacteria
title_short Mechanistic insight into 3‐methylmercaptopropionate metabolism and kinetical regulation of demethylation pathway in marine dimethylsulfoniopropionate‐catabolizing bacteria
title_sort mechanistic insight into 3‐methylmercaptopropionate metabolism and kinetical regulation of demethylation pathway in marine dimethylsulfoniopropionate‐catabolizing bacteria
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6850173/
https://www.ncbi.nlm.nih.gov/pubmed/30677184
http://dx.doi.org/10.1111/mmi.14211
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