Identification of the lydiamycin biosynthetic gene cluster in a plant pathogen guides structural revision and identification of molecular target

J Jonathan J. Ford (Department of Molecular Microbiology, John Innes Centre) J Javier Santos-Aberturas (Department of Molecular Microbiology, John Innes Centre) E Edward S. Hems (Department of Molecular Microbiology, John Innes Centre) J Joseph W. Sallmen (Department of Molecular Microbiology, John Innes Centre) L Lena A. K. Bögeholz (Department of Physical Biochemistry, Max Planck Institute for Multidisciplinary Sciences) G Guy Polturak (Department of Biochemistry and Metabolism, John Innes Centre) A Anne Osbourn (Department of Biochemistry and Metabolism, John Innes Centre) J Joseph A. Wright (School of Chemistry, University of East Anglia) M Marina V. Rodnina D Danny Vereecke (School of Nursing, Howest University of Applied Sciences) I Isolde M. Francis (Department of Biology, California State University) A Andrew W. Truman

Abstract

The natural products actinonin and matlystatin feature an N -hydroxy-2-pentyl-succinamyl (HPS) chemophore that facilitates metal chelation and confers their metalloproteinase inhibitory activity. Actinonin is the most potent natural inhibitor of peptide deformylase (PDF) and exerts antimicrobial and herbicidal bioactivity by disrupting protein synthesis. Here, we used a genomics-led approach to identify candidate biosynthetic gene clusters (BGCs) hypothesized to produce HPS-containing natural products. We show that one of these BGCs is on the pathogenicity megaplasmid of the plant pathogen Rhodococcus fascians and produces lydiamycin A, a macrocyclic pentapeptide. The presence of genes predicted to make an HPS-like chemophore informed the structural recharacterization of lydiamycin via NMR and crystallography to show that it features a rare 2-pentyl-succinyl chemophore. We demonstrate that lydiamycin A inhibits bacterial PDF in vitro and show that a cluster-situated PDF gene confers resistance to lydiamycin A, representing an uncommon self-immunity mechanism associated with the production of a PDF inhibitor . In planta competition assays showed that lydiamycin enhances the fitness of R. fascians during plant colonization. This study highlights how a BGC can inform the structure, biochemical target, and ecological function of a natural product.

Article Details

Volume / Issue Vol. 122, Issue 21
Published May 27, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (12)

J

Jonathan J. Ford

Department of Molecular Microbiology, John Innes Centre

J

Javier Santos-Aberturas

Department of Molecular Microbiology, John Innes Centre

E

Edward S. Hems

Department of Molecular Microbiology, John Innes Centre

J

Joseph W. Sallmen

Department of Molecular Microbiology, John Innes Centre

L

Lena A. K. Bögeholz

Department of Physical Biochemistry, Max Planck Institute for Multidisciplinary Sciences

G

Guy Polturak

Department of Biochemistry and Metabolism, John Innes Centre

A

Anne Osbourn

Department of Biochemistry and Metabolism, John Innes Centre

J

Joseph A. Wright

School of Chemistry, University of East Anglia

M

Marina V. Rodnina

D

Danny Vereecke

School of Nursing, Howest University of Applied Sciences

I

Isolde M. Francis

Department of Biology, California State University

A

Andrew W. Truman