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Biology subjects

Scheberl, A.

Publications and source records attributed to Scheberl, A..

2 recordsLinked to original sources

Beyond the Matrix: Rethinking Antibiotic Tolerance in CF Biofilms Using 3D Models

Chronic lung infections in cystic fibrosis (CF) patients are associated with Pseudomonas aeruginosa biofilms exhibiting high antibiotic tolerance with no clear explanation. We investigate the role of the biofilm matrix in this antibiotic tolerance using 3D biofilm models based on acetylated alginate and DNA, mimicking mucoid biofilms. Printed from these bioinks seeded with P. aeruginosa (PAO1), these models support robust microcolony formation as observed in vivo and enable high-throughput assessment of antibiotic diffusion and efficacy. Surprisingly, antibiotic diffusion is not significantly impeded by acetylation or DNA incorporation. Despite this, bacterial tolerance increases tremendously upon encapsulation in alginate. Acetylation further enhances tolerance, particularly to tobramycin, ciprofloxacin, and colistin. The addition of DNA mitigates this effect in a drug-specific manner. While mucoid biofilms, in contrast to the biofilm models, show significant retardation of antibiotic penetration, they also get saturated with all tested antibiotics within 20 h. This demonstrates that direct interaction with alginate or DNA does not explain the slow diffusion of antibiotics in mucoid P. aeruginosa biofilms. Our findings challenge the view that diffusion limitation or antibiotics binding by biofilm exopolysaccharides dominate biofilm resilience and highlight the need to target matrix-induced bacterial adaptation in the development of antibiofilm therapies.

microbiology↗

The native glycocalyx is an ordered, self-assembled hierarchical micro- and nanoarray lamellar structure conserved in evolution

The native ultrastructure of the glycocalyx remained unknown despite its functional importance in cellular recognition/adhesion and selective filtration. The major components of this universal extracellular coat, mucins, proteoglycans, glyconectins, and hyaluronan, share similar physicochemical properties of high molecular weight, glycan richness, and amply hydrated bottlebrush polymer morphologies with comparable intramolecular anionic charge distribution. The diversity of these glycoconjugate intermolecular binding under physiologically highly hydrated and specific ionic conditions keeps the native glycocalyx structure enabling it to function. Irrespective of the intricacy of the glycocalyx physiological milieu preservation and molecular organization, only a dehydrated non-native state presenting an artefactual unorganized fiber mesh was imaged. Using cryo-SEM after cryo-preservation with minimal sublimation to conserve water, ion distribution, and the native intermolecular interactions, we unveil well-organized lamellae of glycoconjugates self-assembled in hierarchical micro- and nanoarrays for the glycocalyx of human cell and self-assembled glyconectin glycocalyx from an evolutionary most distant sponge despite differences in sequence and composition. Our combined AFM binding strength measurements and cryo-SEM imply that evolutionarily preserved glycocalyx micro- and nano-morphologies are formed by thermodynamically driven self-assembly of glycoconjugates having similar physico-chemical properties. TeaserThe extracellular glycocalyx coat is a self-organizing ultrastructure in human and sponge cells.

cell biology↗