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Bergholtz, A.

Publications and source records attributed to Bergholtz, A..

3 recordsLinked to original sources

Dual Screen for Gut Metabolites Suppressing Enterobacterial Growth and Invasiveness Reveals Structure - Activity Relationships among Anti-Infective Indoles

The antibiotic resistance crisis makes characterization of new anti-infective molecules a pressing matter. Molecules that suppress bacterial growth and survival, virulence, or the 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 for e.g. medium chain fatty acids, bile acids, purine nucleotides, and indole. 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 the suppressive effect on type-III-secretion-system-mediated virulence, flagellar motility (for Salmonella), and growth, in a concentration-dependent manner. By contrast, N1-methylation markedly attenuated the activity of indole and its C-derivatized versions. The study, hence, offers assays for dual growth and virulence analysis of invasive enterobacteria exposed to anti-infective candidate molecules, and informs on structure-activity relationships among indole metabolites.

microbiology↗

Maturation of Human Intestinal Epithelial Cell Layers Fortifies the Apical Surface against Salmonella Attack

The active invasion of intestinal epithelial cells (IECs) represents a key event in the infection cycle of many gut pathogens. Studies of how Salmonella enterica Typhimurium (S.Tm) bacteria enter transformed cell lines have shaped the paradigm for swift type-three-secretion-system-1 (TTSS-1)-driven IEC invasion, fueled by expansive membrane ruffles. However, comparative studies suggest that non-transformed IECs in the intact gut context comprise a much more challenging target for the attack. The molecular and cellular features that explain these discrepancies remain undefined. By live-cell imaging in human enteroid-and colonoid-derived IEC layers, we demonstrate that the maturation state of gut epithelia dramatically impacts permissiveness to S.Tm invasion. IEC layers kept under immature progenitor-cell-promoting conditions are permissive to the bacterial invasion, whereas maturation towards an enterocyte/colonocyte fate reduces the frequency of S.Tm-induced epithelial entry structures, and lowers the invasion efficiency by up to tenfold. This phenotypic shift during IEC maturation couples to an altered expression of actin regulatory proteins implicated in the invasion process, and an increased dependence on the S.Tm TTSS-1 effector SipA for successful entry. In addition, IEC maturation involves upregulation of cell surface mucins, e.g. MUC13, and shifts in glycocalyx composition, as revealed by multiple lectin stainings. Enzymatic treatment of the apical surface with the StcE mucinase converts maturing IEC layers back to the S.Tm-invasion-permissive state of their immature counterparts. Taken together, these results showcase how the maturation state of human IECs dictates the susceptibility to invasion by a prototype enterobacterium.

cell biology↗

Determinants of the Divergent Salmonella and Shigella Epithelial Colonization Strategies Resolved in Human Enteroids and Colonoids

Despite close relatedness, the major enteropathogens Salmonella and Shigella differ in infectious dose, pathogenesis, and disease kinetics. The prototype strains Salmonella enterica serovar Typhimurium (Salmonella) and Shigella flexneri (Shigella) use Type-3-secretion-systems (T3SSs) to colonize intestinal epithelial cells (IECs), but have evolved partially unique sets of T3SS effectors and accessory virulence factors. A synthesis of how these differences impact the temporal progression of infection in non-transformed human epithelia is missing. Here, we followed Salmonella and Shigella infections of human enteroids and colonoids by time-lapse imaging to pinpoint virulence factor modules that shape the divergent epithelial colonization strategies. By an apical targeting module that integrates flagella and the SPI-4-encoded adhesin system with T3SS, Salmonella accomplishes appreciable numbers of apical invasion events, promptly terminated by IEC death, and thus fostering a polyclonal iterative epithelial colonization strategy. The lack of a corresponding module in Shigella makes this pathogen reliant on external factors such as preexisting damage for rare apical access to the intraepithelial environment. However, Shigella compensates for this ineptness by an intraepithelial expansion module, where tight coupling of OspC3-dependent temporal delay of cell death and IcsA-mediated lateral spread enables intraepithelial Shigella to outrun the IEC death response, fostering an essentially monoclonal colonization strategy.

microbiology↗