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Characterization of a Radical SAM Oxygenase for the Ether Crosslinking in Darobactin Biosynthesis.

Publication ,  Journal Article
Nguyen, H; Made Kresna, ID; Böhringer, N; Ruel, J; Mora, EDL; Kramer, J-C; Lewis, K; Nicolet, Y; Schäberle, TF; Yokoyama, K
Published in: Journal of the American Chemical Society
October 2022

Darobactin A is a ribosomally synthesized, post-translationally modified peptide (RiPP) with potent and broad-spectrum anti-Gram-negative antibiotic activity. The structure of darobactin A is characterized by an ether and C-C crosslinking. However, the specific mechanism of the crosslink formation, especially the ether crosslink, remains elusive. Here, using in vitro enzyme assays, we demonstrate that both crosslinks are formed by the DarE radical S-adenosylmethionine (SAM) enzyme in an O2-dependent manner. The relevance of the observed activity to darobactin A biosynthesis was demonstrated by proteolytic transformation of the DarE product into darobactin A. Furthermore, DarE assays in the presence of 18O2 or [18O]water demonstrated that the oxygen of the ether crosslink originates from O2 and not from water. These results demonstrate that DarE is a radical SAM enzyme that uses oxygen as a co-substrate in its physiologically relevant function. Since radical SAM enzymes are generally considered to function under anaerobic environments, the discovery of a radical SAM oxygenase represents a significant change in the paradigm and suggests that these radical SAM enzymes function in aerobic cells. Also, the study revealed that DarE catalyzes the formation of three distinct modifications on DarA; ether and C-C crosslinks and α,β-desaturation. Based on these observations, possible mechanisms of the DarE-catalyzed reactions are discussed.

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Published In

Journal of the American Chemical Society

DOI

EISSN

1520-5126

ISSN

0002-7863

Publication Date

October 2022

Volume

144

Issue

41

Start / End Page

18876 / 18886

Related Subject Headings

  • Water
  • S-Adenosylmethionine
  • Peptides
  • Oxygenases
  • Oxygen
  • General Chemistry
  • Ethers
  • Ether
  • Anti-Bacterial Agents
  • 40 Engineering
 

Citation

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Nguyen, H., Made Kresna, I. D., Böhringer, N., Ruel, J., Mora, E. D. L., Kramer, J.-C., … Yokoyama, K. (2022). Characterization of a Radical SAM Oxygenase for the Ether Crosslinking in Darobactin Biosynthesis. Journal of the American Chemical Society, 144(41), 18876–18886. https://doi.org/10.1021/jacs.2c05565
Nguyen, Hai, I Dewa Made Kresna, Nils Böhringer, Jeremie Ruel, Eugenio de la Mora, Jil-Christine Kramer, Kim Lewis, Yvain Nicolet, Till F. Schäberle, and Kenichi Yokoyama. “Characterization of a Radical SAM Oxygenase for the Ether Crosslinking in Darobactin Biosynthesis.Journal of the American Chemical Society 144, no. 41 (October 2022): 18876–86. https://doi.org/10.1021/jacs.2c05565.
Nguyen H, Made Kresna ID, Böhringer N, Ruel J, Mora EDL, Kramer J-C, et al. Characterization of a Radical SAM Oxygenase for the Ether Crosslinking in Darobactin Biosynthesis. Journal of the American Chemical Society. 2022 Oct;144(41):18876–86.
Nguyen, Hai, et al. “Characterization of a Radical SAM Oxygenase for the Ether Crosslinking in Darobactin Biosynthesis.Journal of the American Chemical Society, vol. 144, no. 41, Oct. 2022, pp. 18876–86. Epmc, doi:10.1021/jacs.2c05565.
Nguyen H, Made Kresna ID, Böhringer N, Ruel J, Mora EDL, Kramer J-C, Lewis K, Nicolet Y, Schäberle TF, Yokoyama K. Characterization of a Radical SAM Oxygenase for the Ether Crosslinking in Darobactin Biosynthesis. Journal of the American Chemical Society. 2022 Oct;144(41):18876–18886.
Journal cover image

Published In

Journal of the American Chemical Society

DOI

EISSN

1520-5126

ISSN

0002-7863

Publication Date

October 2022

Volume

144

Issue

41

Start / End Page

18876 / 18886

Related Subject Headings

  • Water
  • S-Adenosylmethionine
  • Peptides
  • Oxygenases
  • Oxygen
  • General Chemistry
  • Ethers
  • Ether
  • Anti-Bacterial Agents
  • 40 Engineering