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Caccia, N.

Publications and source records attributed to Caccia, N..

2 recordsLinked to original sources

Spatially localized expression of glutamate decarboxylase gadB in Escherichia coli O157:H7 microcolonies in hydrogel matrix

Functional diversity within isogenic spatially organized bacterial populations has been shown to trigger emergent community properties such as stress tolerance. Taking advantage of confocal laser scanning microscopy combined with a transcriptional fluorescent fusion reporting at single cell scale the expression of the glutamic acid decarboxylase gadB in E. coli O157:H7, it was possible to visualize for the first-time spatial patterns of bacterial gene expression in microcolonies grown in a gelled matrix. The gadB gene is involved in E. coli tolerance to acidic conditions and its strong over-expression was observed locally on the periphery of embedded microcolonies grown in acidic hydrogels. This spatialization of gadB expression did not correlate with live/dead populations that appeared randomly distributed in the colonies. While the planktonic population of the pathogens was eradicated by an exposition to a pH of 2 (HCl) for 4h, mimicking a stomachal acidic stress, bacteria grown in gel-microcolonies were poorly affected by this treatment, in particular in conditions where gadB was spatially overexpressed. Consequences of these results for food safety are further discussed.

microbiology↗

Fine tuning the mechanism of Antigen 43 self-association to modulate aggregation levels of Escherichia coli pathogens

Bacterial aggregates and biofilms allow bacteria to colonise a diverse array of surfaces that can ultimately lead to infections, where the protection they afford permits bacteria to resist anti-microbials and host immune factors. Despite these advantages there is a trade-off, whereby bacterial spread is reduced. As such, biofilm development needs to be regulated appropriately to suit the required niche. Here we investigate members from one of largest groups of bacterial adhesins, the autotransporters, for their critical role in the formation of bacterial aggregates and biofilms. We describe the structural and functional characterisation of autotransporter Ag43 homologues from diverse pathogenic Escherichia strains. We reveal a common mode of trans-association that leads to cell clumping and show that subtle variations in these interactions governs their aggregation kinetics. Our in depth investigation reveals an underlying molecular basis for the tuning of bacterial aggregation.

biochemistry↗