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Crystal structures of γ-glutamylmethylamide synthetase provide insight into bacterial metabolism of oceanic monomethylamine

Monomethylamine (MMA) is an important climate-active oceanic trace gas and ubiquitous in the oceans. γ-Glutamylmethylamide synthetase (GmaS) catalyzes the conversion of MMA to γ-glutamylmethylamide, the first step in MMA metabolism in many marine bacteria. The gmaS gene occurs in ∼23% of microbial g...

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Autores principales: Wang, Ning, Chen, Xiu-Lan, Gao, Chao, Peng, Ming, Wang, Peng, Zhang, Na, Li, Fuchuan, Yang, Gui-Peng, Shen, Qing-Tao, Li, Shengying, Chen, Yin, Zhang, Yu-Zhong, Li, Chun-Yang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7948447/
https://www.ncbi.nlm.nih.gov/pubmed/33199371
http://dx.doi.org/10.1074/jbc.RA120.015952
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author Wang, Ning
Chen, Xiu-Lan
Gao, Chao
Peng, Ming
Wang, Peng
Zhang, Na
Li, Fuchuan
Yang, Gui-Peng
Shen, Qing-Tao
Li, Shengying
Chen, Yin
Zhang, Yu-Zhong
Li, Chun-Yang
author_facet Wang, Ning
Chen, Xiu-Lan
Gao, Chao
Peng, Ming
Wang, Peng
Zhang, Na
Li, Fuchuan
Yang, Gui-Peng
Shen, Qing-Tao
Li, Shengying
Chen, Yin
Zhang, Yu-Zhong
Li, Chun-Yang
author_sort Wang, Ning
collection PubMed
description Monomethylamine (MMA) is an important climate-active oceanic trace gas and ubiquitous in the oceans. γ-Glutamylmethylamide synthetase (GmaS) catalyzes the conversion of MMA to γ-glutamylmethylamide, the first step in MMA metabolism in many marine bacteria. The gmaS gene occurs in ∼23% of microbial genomes in the surface ocean and is a validated biomarker to detect MMA-utilizing bacteria. However, the catalytic mechanism of GmaS has not been studied because of the lack of structural information. Here, the GmaS from Rhodovulum sp. 12E13 (RhGmaS) was characterized, and the crystal structures of apo-RhGmaS and RhGmaS with different ligands in five states were solved. Based on structural and biochemical analyses, the catalytic mechanism of RhGmaS was explained. ATP is first bound in RhGmaS, leading to a conformational change of a flexible loop (Lys287-Ile305), which is essential for the subsequent binding of glutamate. During the catalysis of RhGmaS, the residue Arg312 participates in polarizing the γ-phosphate of ATP and in stabilizing the γ-glutamyl phosphate intermediate; Asp177 is responsible for the deprotonation of MMA, assisting the attack of MMA on γ-glutamyl phosphate to produce a tetrahedral intermediate; and Glu186 acts as a catalytic base to abstract a proton from the tetrahedral intermediate to finally generate glutamylmethylamide. Sequence analysis suggested that the catalytic mechanism of RhGmaS proposed in this study has universal significance in bacteria containing GmaS. Our results provide novel insights into MMA metabolism, contributing to a better understanding of MMA catabolism in global carbon and nitrogen cycles.
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spelling pubmed-79484472021-03-19 Crystal structures of γ-glutamylmethylamide synthetase provide insight into bacterial metabolism of oceanic monomethylamine Wang, Ning Chen, Xiu-Lan Gao, Chao Peng, Ming Wang, Peng Zhang, Na Li, Fuchuan Yang, Gui-Peng Shen, Qing-Tao Li, Shengying Chen, Yin Zhang, Yu-Zhong Li, Chun-Yang J Biol Chem Research Article Monomethylamine (MMA) is an important climate-active oceanic trace gas and ubiquitous in the oceans. γ-Glutamylmethylamide synthetase (GmaS) catalyzes the conversion of MMA to γ-glutamylmethylamide, the first step in MMA metabolism in many marine bacteria. The gmaS gene occurs in ∼23% of microbial genomes in the surface ocean and is a validated biomarker to detect MMA-utilizing bacteria. However, the catalytic mechanism of GmaS has not been studied because of the lack of structural information. Here, the GmaS from Rhodovulum sp. 12E13 (RhGmaS) was characterized, and the crystal structures of apo-RhGmaS and RhGmaS with different ligands in five states were solved. Based on structural and biochemical analyses, the catalytic mechanism of RhGmaS was explained. ATP is first bound in RhGmaS, leading to a conformational change of a flexible loop (Lys287-Ile305), which is essential for the subsequent binding of glutamate. During the catalysis of RhGmaS, the residue Arg312 participates in polarizing the γ-phosphate of ATP and in stabilizing the γ-glutamyl phosphate intermediate; Asp177 is responsible for the deprotonation of MMA, assisting the attack of MMA on γ-glutamyl phosphate to produce a tetrahedral intermediate; and Glu186 acts as a catalytic base to abstract a proton from the tetrahedral intermediate to finally generate glutamylmethylamide. Sequence analysis suggested that the catalytic mechanism of RhGmaS proposed in this study has universal significance in bacteria containing GmaS. Our results provide novel insights into MMA metabolism, contributing to a better understanding of MMA catabolism in global carbon and nitrogen cycles. American Society for Biochemistry and Molecular Biology 2020-11-21 /pmc/articles/PMC7948447/ /pubmed/33199371 http://dx.doi.org/10.1074/jbc.RA120.015952 Text en © 2020 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Article
Wang, Ning
Chen, Xiu-Lan
Gao, Chao
Peng, Ming
Wang, Peng
Zhang, Na
Li, Fuchuan
Yang, Gui-Peng
Shen, Qing-Tao
Li, Shengying
Chen, Yin
Zhang, Yu-Zhong
Li, Chun-Yang
Crystal structures of γ-glutamylmethylamide synthetase provide insight into bacterial metabolism of oceanic monomethylamine
title Crystal structures of γ-glutamylmethylamide synthetase provide insight into bacterial metabolism of oceanic monomethylamine
title_full Crystal structures of γ-glutamylmethylamide synthetase provide insight into bacterial metabolism of oceanic monomethylamine
title_fullStr Crystal structures of γ-glutamylmethylamide synthetase provide insight into bacterial metabolism of oceanic monomethylamine
title_full_unstemmed Crystal structures of γ-glutamylmethylamide synthetase provide insight into bacterial metabolism of oceanic monomethylamine
title_short Crystal structures of γ-glutamylmethylamide synthetase provide insight into bacterial metabolism of oceanic monomethylamine
title_sort crystal structures of γ-glutamylmethylamide synthetase provide insight into bacterial metabolism of oceanic monomethylamine
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7948447/
https://www.ncbi.nlm.nih.gov/pubmed/33199371
http://dx.doi.org/10.1074/jbc.RA120.015952
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