Bifunctional architecture enables substrate catalysis and channeling in Paracoccus TMAO demethylase

Substrate channeling enhances efficiency and prevents toxicity by directing unstable intermediates between active sites. Trimethylamine N-oxide demethylase (TDM) degrades trimethylamine N-oxide (TMAO) to dimethylamine and formaldehyde (HCHO), but the fate of HCHO has remained unclear. We report cryo-EM structures of TDM in apo, substrate-, and product-bound states that reveal a previously unknown channeling pathway. Combined structural, biochemical, and target molecular dynamics analyses show that HCHO is generated in a catalytic core and guided through a tunnel to a remote tetrahydrofolate (THF)-binding site, where it forms methylene-THF. Thus, TDM emerges as a bifunctional enzyme that unites TMAO demethylation with one-carbon transfer, providing a mechanistic explanation for its role in metabolic efficiency and detoxification.

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Journal
eLife
Published
2026-09-28
DOI
https://doi.org/10.7554/elife.109964.4
Primary Topic
Epigenetics and DNA Methylation
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article
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article

Bifunctional architecture enables substrate catalysis and channeling in Paracoccus TMAO demethylase

Shiwangi Maurya, KanagaVijayan Dhanabalan, Trung Thanh Thach, Gurunath Ramanathan et al.
eLife
Epigenetics and DNA Methylation
article

Bifunctional architecture enables substrate catalysis and channeling in Paracoccus TMAO demethylase

Shiwangi Maurya, KanagaVijayan Dhanabalan, Trung Thanh Thach, Gurunath Ramanathan, Subramanian Ramaswamy, Senwei Quan, Jane Allison, Yu Han-Hallett
article en

Abstract

Substrate channeling enhances efficiency and prevents toxicity by directing unstable intermediates between active sites. Trimethylamine N-oxide demethylase (TDM) degrades trimethylamine N-oxide (TMAO) to dimethylamine and formaldehyde (HCHO), but the fate of HCHO has remained unclear. We report cryo-EM structures of TDM in apo, substrate-, and product-bound states that reveal a previously unknown channeling pathway. Combined structural, biochemical, and target molecular dynamics analyses show that HCHO is generated in a catalytic core and guided through a tunnel to a remote tetrahydrofolate (THF)-binding site, where it forms methylene-THF. Thus, TDM emerges as a bifunctional enzyme that unites TMAO demethylation with one-carbon transfer, providing a mechanistic explanation for its role in metabolic efficiency and detoxification.

eLifeVol. 15
University of Auckland (NZ), Purdue University West Lafayette (US), Indian Institute of Technology Kanpur (IN)
Openalex Percentile: Top 19%
Epigenetics and DNA Methylation
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Bifunctional architecture enables substrate catalysis and channeling in Paracoccus TMAO demethylase — Shiwangi Maurya, KanagaVijayan Dhanabalan, et al. · eLife (2026) | TGRS Research Map | TGRS