Methionine synthesis and glycine betaine demethylation are intricately intertwined in cosmopolitan marine bacteria

M Michaela A. Mausz (School of Life Sciences, University of Warwick) A Andrew R. J. Murphy (School of Life Sciences, University of Warwick) M Maria del Mar Aguilo-Ferretjans (School of Life Sciences, University of Warwick) A Andrew Hitchcock (Molecular Microbiology—Biochemistry and Disease, School of Biosciences, University of Sheffield) M Mary Ann Moran (Department of Marine Sciences, University of Georgia) D David J. Scanlan (School of Life Sciences, University of Warwick) Y Yin Chen (School of Biosciences, University of Birmingham) I Ian D. E. A. Lidbury (Molecular Microbiology: Biochemistry to Disease, School of Biosciences, University of Sheffield)

Abstract

Across all domains of life, cobalamin-dependent methyltransferases have diversified to perform a range of crucial functions, such as methionine synthesis and the demethylation of various reduced nitrogen and sulfur compounds. These large modular enzymes typically possess three substrate-binding domains, two binding either the methyl donor or methyl acceptor, as well as a cobalamin-binding domain. Here, by challenging the current paradigm of glycine betaine (GBT) catabolism, we have identified a unique methyltransferase in aerobic environmental bacteria that has a dual function both as a methionine synthase and a GBT methyltransferase. Using the marine bacterium Ruegeria pomeroyi DSS-3 as a model, we demonstrate that a core cobalamin-binding domain (MtgC) and a bidirectional methyltransferase (MtgD) are essential for both methionine synthesis and GBT demethylation. MtgC is phylogenetically distinct from the cobalamin-binding domains of either the classical methionine synthase (MetH) or the GBT methyltransferases found in anaerobic bacteria and archaea. Across the global ocean, mtgC expression is frequently greater than previously known GBT catabolic pathways due to its occurrence in abundant cosmopolitan marine bacteria. Thus, we uncover a unique relationship between GBT catabolism and methionine synthesis in nature and identify a major route for N-osmolyte demethylation in the global ocean.

Article Details

Volume / Issue Vol. 122, Issue 38
Published September 23, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (8)

M

Michaela A. Mausz

School of Life Sciences, University of Warwick

A

Andrew R. J. Murphy

School of Life Sciences, University of Warwick

M

Maria del Mar Aguilo-Ferretjans

School of Life Sciences, University of Warwick

A

Andrew Hitchcock

Molecular Microbiology—Biochemistry and Disease, School of Biosciences, University of Sheffield

M

Mary Ann Moran

Department of Marine Sciences, University of Georgia

D

David J. Scanlan

School of Life Sciences, University of Warwick

Y

Yin Chen

School of Biosciences, University of Birmingham

I

Ian D. E. A. Lidbury

Molecular Microbiology: Biochemistry to Disease, School of Biosciences, University of Sheffield