Small-molecule Inhibition of Choline Catabolism in Pseudomonas Aeruginosa and Other Aerobic Choline-catabolizing Bacteria
Overview
Microbiology
Authors
Affiliations
Choline is abundant in association with eukaryotes and plays roles in osmoprotection, thermoprotection, and membrane biosynthesis in many bacteria. Aerobic catabolism of choline is widespread among soil proteobacteria, particularly those associated with eukaryotes. Catabolism of choline as a carbon, nitrogen, and/or energy source may play important roles in association with eukaryotes, including pathogenesis, symbioses, and nutrient cycling. We sought to generate choline analogues to study bacterial choline catabolism in vitro and in situ. Here we report the characterization of a choline analogue, propargylcholine, which inhibits choline catabolism at the level of Dgc enzyme-catalyzed dimethylglycine demethylation in Pseudomonas aeruginosa. We used genetic analyses and 13C nuclear magnetic resonance to demonstrate that propargylcholine is catabolized to its inhibitory form, propargylmethylglycine. Chemically synthesized propargylmethylglycine was also an inhibitor of growth on choline. Bioinformatic analysis suggests that there are genes encoding DgcA homologues in a variety of proteobacteria. We examined the broader utility of propargylcholine and propargylmethylglycine by assessing growth of other members of the proteobacteria that are known to grow on choline and possess putative DgcA homologues. Propargylcholine showed utility as a growth inhibitor in P. aeruginosa but did not inhibit growth in other proteobacteria tested. In contrast, propargylmethylglycine was able to inhibit choline-dependent growth in all tested proteobacteria, including Pseudomonas mendocina, Pseudomonas fluorescens, Pseudomonas putida, Burkholderia cepacia, Burkholderia ambifaria, and Sinorhizobium meliloti. We predict that chemical inhibitors of choline catabolism will be useful for studying this pathway in clinical and environmental isolates and could be a useful tool to study proteobacterial choline catabolism in situ.
A fast lasso-based method for inferring higher-order interactions.
Elmes K, Heywood A, Huang Z, Gavryushkin A PLoS Comput Biol. 2022; 18(12):e1010730.
PMID: 36580499 PMC: 9833600. DOI: 10.1371/journal.pcbi.1010730.
Metabolic labeling of glycerophospholipids via clickable analogs derivatized at the lipid headgroup.
Ancajas C, Ricks T, Best M Chem Phys Lipids. 2020; 232:104971.
PMID: 32898510 PMC: 7606648. DOI: 10.1016/j.chemphyslip.2020.104971.
Bioorthogonal click chemistry for fluorescence imaging of choline phospholipids in plants.
Paper J, Mukherjee T, Schrick K Plant Methods. 2018; 14:31.
PMID: 29692861 PMC: 5905148. DOI: 10.1186/s13007-018-0299-2.
Transcriptional Responses of Pseudomonas aeruginosa to Potable Water and Freshwater.
English E, Schutz K, Willsey G, Wargo M Appl Environ Microbiol. 2018; 84(6).
PMID: 29305509 PMC: 5835727. DOI: 10.1128/AEM.02350-17.
Nock A, Wargo M J Bacteriol. 2016; 198(18):2503-14.
PMID: 27381916 PMC: 4999938. DOI: 10.1128/JB.00372-16.