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Journal article

A Genome-Scale Metabolic Model of Methanoperedens nitroreducens: Assessing Bioenergetics and Thermodynamic Feasibility

From

University of Queensland1

Novo Nordisk Foundation Center for Biosustainability, Technical University of Denmark2

Quantitative Modeling of Cell Metabolism, Novo Nordisk Foundation Center for Biosustainability, Technical University of Denmark3

Department of Biotechnology and Biomedicine, Technical University of Denmark4

Section for Synthetic Biology, Department of Biotechnology and Biomedicine, Technical University of Denmark5

DTU Computer Bioscience, Section for Synthetic Biology, Department of Biotechnology and Biomedicine, Technical University of Denmark6

Computer Aided Biotechnology, Section for Synthetic Biology, Department of Biotechnology and Biomedicine, Technical University of Denmark7

DTU Microbes Initiative, Centers, Technical University of Denmark8

Methane is an abundant low-carbon fuel that provides a valuable energy resource, but it is also a potent greenhouse gas. Therefore, anaerobic oxidation of methane (AOM) is an essential process with central features in controlling the carbon cycle. Candidatus 'Methanoperedens nitroreducens' (M. nitroreducens) is a recently discovered methanotrophic archaeon capable of performing AOM via a reverse methanogenesis pathway utilizing nitrate as the terminal electron acceptor.

Recently, reverse methanogenic pathways and energy metabolism among anaerobic methane-oxidizing archaea (ANME) have gained significant interest. However, the energetics and the mechanism for electron transport in nitrate-dependent AOM performed by M. nitroreducens is unclear. This paper presents a genome-scale metabolic model of M. nitroreducens, iMN22HE, which contains 813 reactions and 684 metabolites.

The model describes its cellular metabolism and can quantitatively predict its growth phenotypes. The essentiality of the cytoplasmic heterodisulfide reductase HdrABC in the reverse methanogenesis pathway is examined by modeling the electron transfer direction and the specific energy-coupling mechanism.

Furthermore, based on better understanding electron transport by modeling, a new energy transfer mechanism is suggested. The new mechanism involves reactions capable of driving the endergonic reactions in nitrate-dependent AOM, including the step reactions in reverse canonical methanogenesis and the novel electron-confurcating reaction HdrABC.

The genome metabolic model not only provides an in silico tool for understanding the fundamental metabolism of ANME but also helps to better understand the reverse methanogenesis energetics and its thermodynamic feasibility.

Language: English
Publisher: MDPI AG
Year: 2022
Pages: 314
ISSN: 22181989
Types: Journal article
DOI: 10.3390/metabo12040314
ORCIDs: Muriel, Jorge Carrasco and Sonnenschein, Nikolaus

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