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Crowley, S.

Publications and source records attributed to Crowley, S..

2 recordsLinked to original sources

The growth and pathogenesis of Citrobacter rodentium is compromised by disrupted mucin sugar pathways that accumulate N-acetylglucosamine 6-phosphate

Many enteric bacterial pathogens, including the attaching/effacing (A/E) Escherichia coli strains, cause acute gastroenteritis in humans. Considering the highly competitive nature of the mammalian gastrointestinal (GI) tract, these pathogens must rely on specific metabolic adaptations to establish successful infections. We hypothesized that A/E pathogens exploit host-derived nutrients within GI mucus, including the monosaccharides N-acetylglucosamine (GlcNAc) and N-acetylneuraminic acid (NeuNAc) to fuel their pathogenesis. Using Citrobacter rodentium, a murine-specific A/E pathogen, we disrupted both GlcNAc and NeuNAc catabolism by deleting nagA, which encodes the GlcNAc-6-phosphate (GlcNAc-6P) deacetylase that converts GlcNAc-6P into glucosamine-6-phosphate (GlcN-6P). The {Delta}nagA mutant displayed dramatically impaired colonization in C57BL/6J mice and accumulated significant levels of GlcNAc-6P, unlike the {Delta}mana strain, a mutant lacking all GlcNAc and NeuNAc transporters, suggesting that the attenuation was due to sugar-phosphate stress rather than nutrient deprivation alone. Supplementation with glucosamine (GlcN) restored growth, indicating that dysregulated GlcN-6P synthesis, rather than GlcNAc-6P toxicity, underlies the defect. Furthermore, {Delta}nagA exhibited increased susceptibility to several cell wall-dependent stress conditions, in concert with compromised peptidoglycan biosynthesis due to reduced UDP-GlcNAc synthesis. These findings reveal a previously unrecognized metabolic vulnerability in C. rodentium and suggest that targeting sugar-phosphate stress responses may provide a new therapeutic strategy against GI bacterial pathogens. ImportanceEnteric pathogens like Citrobacter rodentium can exploit sugars, including N-acetylglucosamine and N-acetylneuraminic acid, derived from intestinal mucus to grow and infect their hosts. This study shows that disruption of mucin-derived sugar catabolism impairs the fitness of C. rodentium in infecting the murine intestine by causing the accumulation of a toxic intermediate of mucin sugar metabolism. Rather than impaired nutrient acquisition, the bacteria are impaired due to the buildup of N-acetylglucosamine-6-phosphate, which depletes substrates for peptidoglycan synthesis. This metabolic bottleneck weakens the bacterial cell wall, making the pathogen more sensitive to environmental stress. These findings identify a conserved metabolic stress response that could be targeted to combat enteric pathogen infections.

microbiology↗

eDNA metabarcoding and whole genome sequencing detect European-American Eel hybrids in northeastern Canada

American and European Eels (Anguilla rostrata and Anguilla anguilla, respectively) are sister species of conservation concern, as they have declined in abundance in recent decades. Although there is evidence of gene flow between the two species, most previous hybrid detections have been found in Iceland. Here we expand upon existing reports of interspecific hybrids using a combination of an environmental DNA (eDNA) survey and whole genome sequencing of 347 eels from Newfoundland and Labrador. Metabarcoding of eDNA samples at multiple loci detected the presence of European Eel mitochondrial DNA (mtDNA) at eight locations primarily along the south coast of Newfoundland. Genome sequencing of eels collected in the region revealed three hybrid individuals with levels of European admixture consistent with one first generation hybrid and two North American backcrosses, all with European mtDNA. This work supports the presence of a previously unknown, seemingly localized region of hybrid occurrence in southern Newfoundland and expands our understanding of the relationship between these species across the North Atlantic.

genomics↗