Rational Engineering of a Pseudaminic Acid Synthase Enzyme Enables Access to a 3‐Fluoro Sugar with Motility Inhibition in Bacterial Pathogens

J James M. Jeffries (York Structural Biology Lab Department of Chemistry University of York York YO10 5DD UK) A Abigail J. Walklett (York Structural Biology Lab Department of Chemistry University of York York YO10 5DD UK) N Natasha E. Hatton B Bartosz Kowalski (York Structural Biology Lab Department of Chemistry University of York York YO10 5DD UK) T Tessa Keenan (York Structural Biology Lab Department of Chemistry University of York York YO10 5DD UK) L Lickson Munjoma (Division of Microbiology and Infection College of Life Sciences University of Leicester Leicester LE1 7RH UK) R Richard Haigh (Division of Microbiology and Infection College of Life Sciences University of Leicester Leicester LE1 7RH UK) C Christopher D. Bayliss G Gavin H. Thomas M Martin A. Fascione

Abstract

Abstract We report the rational engineering of a pseudaminic acid synthase (PseI), which enables the first synthesis of a 3‐fluorinated pseudaminic acid sugar (3‐( eq )‐ F ‐Pse5Ac7Ac), potentially establishing a new class of metabolic inhibitors targeting bacterial glycosylation. Pseudaminic acids are ⍺‐keto acid sugars essential for O ‐glycosylation of flagellin in pathogens such as Campylobacter jejuni , where they are critical for motility and virulence. By introducing rational mutations in the PseI active site, we achieve enhanced turnover with unnatural 3‐fluoro‐phosphoenolpyruvate, facilitating a scalable chemoenzymatic synthesis of the fluorinated sugar. Subsequent treatment of C. jejuni with 3‐( eq )‐ F ‐Pse5Ac7Ac resulted in a significant, time‐dependent reduction in motility, and in vitro studies demonstrated bacterial CMP‐pseudaminic acid synthetase enzymes (PseF) can process the fluoro sugar to afford CMP‐3‐( eq )‐ F ‐Pse5Ac7Ac, potentially implicating the fluorinated pseudaminic acid or its glycosyltransferase CMP‐donor as an anti‐motilin in vivo. This study demonstrates, for the first time, that fluorinated pseudaminic acids can impair bacterial motility, paving the way for anti‐virulence strategies in pathogenic bacteria. This anti‐motilin approach offers a promising alternative to traditional antibiotics, addressing the urgent need for novel strategies to combat antimicrobial resistance, and could be extended to other bacterial ⍺‐keto acid sugars.

Article Details

Volume / Issue Vol. 64, Issue 50
Published December 08, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (10)

J

James M. Jeffries

York Structural Biology Lab Department of Chemistry University of York York YO10 5DD UK

A

Abigail J. Walklett

York Structural Biology Lab Department of Chemistry University of York York YO10 5DD UK

N

Natasha E. Hatton

B

Bartosz Kowalski

York Structural Biology Lab Department of Chemistry University of York York YO10 5DD UK

T

Tessa Keenan

York Structural Biology Lab Department of Chemistry University of York York YO10 5DD UK

L

Lickson Munjoma

Division of Microbiology and Infection College of Life Sciences University of Leicester Leicester LE1 7RH UK

R

Richard Haigh

Division of Microbiology and Infection College of Life Sciences University of Leicester Leicester LE1 7RH UK

C

Christopher D. Bayliss

G

Gavin H. Thomas

M

Martin A. Fascione