Dual screen for gut metabolites suppressing enterobacterial growth and invasiveness reveals structure–activity relationships among anti-infective indoles

The antibiotic resistance crisis has made the characterization of new anti-infective molecules a pressing matter. Molecules that suppress bacterial growth and survival, virulence, or a combination of these traits all warrant further exploration. Naturally occurring microbe‒host ecosystems, such as the human gut, provide incompletely tapped resources in this regard. We developed a flexible platform to parallelly assess how gut metabolites affect the growth and epithelial cell invasion capacity of the enteropathogens Salmonella enterica Typhimurium (Salmonella) and Shigella flexneri. By screening a gut metabolite library, the assays identified multiple anti-infective compound classes and extended previously reported antibacterial activities, e.g., for medium-chain fatty acids, bile acids, purine nucleotides, and indoles. Importantly, a targeted follow-up screen combined with chemical biology iterations showed how the anti-infective activity of indole is impacted by its derivatization. Specifically, a methyl group at either of the carbons of the indole scaffold potentiated its concentration-dependent suppressive effect on type-III-secretion-system virulence protein expression, flagellar motility (for Salmonella), and enterobacterial growth. By contrast, N1-methylation markedly attenuated the activity of indole and its C-derivatized versions. This study, hence, offers assays for dual growth and virulence analysis of invasive enterobacteria exposed to anti-infective candidate molecules, and informs on the structure–activity relationships among indole metabolites.

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Publication Details

Journal
Gut Microbes
Published
2026-09-12
DOI
https://doi.org/10.1080/19490976.2026.2728235
Primary Topic
Bacterial Genetics and Biotechnology
Type
article
Field-Weighted Citation Impact
0.00

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article

Dual screen for gut metabolites suppressing enterobacterial growth and invasiveness reveals structure–activity relationships among anti-infective indoles

Jens Eriksson, André Mateus, Amanpreet Kaur, Maria Letizia Di Martino et al.
Gut Microbes
Bacterial Genetics and Biotechnology
article

Dual screen for gut metabolites suppressing enterobacterial growth and invasiveness reveals structure–activity relationships among anti-infective indoles

Jens Eriksson, André Mateus, Amanpreet Kaur, Maria Letizia Di Martino, Mikael E. Sellin, Daniel Globisch, Weifeng Lin, Shaochun Zhu, Alexandra Bergholtz, Anjeela Bhetwal
article en

Abstract

The antibiotic resistance crisis has made the characterization of new anti-infective molecules a pressing matter. Molecules that suppress bacterial growth and survival, virulence, or a combination of these traits all warrant further exploration. Naturally occurring microbe‒host ecosystems, such as the human gut, provide incompletely tapped resources in this regard. We developed a flexible platform to parallelly assess how gut metabolites affect the growth and epithelial cell invasion capacity of the enteropathogens Salmonella enterica Typhimurium (Salmonella) and Shigella flexneri. By screening a gut metabolite library, the assays identified multiple anti-infective compound classes and extended previously reported antibacterial activities, e.g., for medium-chain fatty acids, bile acids, purine nucleotides, and indoles. Importantly, a targeted follow-up screen combined with chemical biology iterations showed how the anti-infective activity of indole is impacted by its derivatization. Specifically, a methyl group at either of the carbons of the indole scaffold potentiated its concentration-dependent suppressive effect on type-III-secretion-system virulence protein expression, flagellar motility (for Salmonella), and enterobacterial growth. By contrast, N1-methylation markedly attenuated the activity of indole and its C-derivatized versions. This study, hence, offers assays for dual growth and virulence analysis of invasive enterobacteria exposed to anti-infective candidate molecules, and informs on the structure–activity relationships among indole metabolites.

Gut MicrobesVol. 18(1)
Uppsala University (SE), Science for Life Laboratory (SE), Umeå University (SE)
Stiftelsen för Strategisk Forskning, Cancerfonden, Vetenskapsrådet, Kempestiftelserna, Science for Life Laboratory
Life in Land
Openalex Percentile: Top 11%
Bacterial Genetics and Biotechnology
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