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Bosman, W.

Publications and source records attributed to Bosman, W..

2 recordsLinked to original sources

A bare host cell membrane with minimal glycocalyx is an optimal surface for targeting by virulence-primed Salmonella Typhimurium

Gut pathogens such as Salmonella enterica serovar Typhimurium target intestinal epithelial cells for adhesion and type-3-secretion-system-dependent invasion, while also invading multiple other cell types as the infection progresses. Mechanistic studies have uncovered virulence factors involved in this process, but host cell determinants affecting Salmonella cell surface targeting remain less deeply explored. Furthermore, cell surface protein expression and glycosylation patterns differ dramatically between epithelial and blood-derived cell types, and even across maturation states of the same cell type. Here, we explored bottom-up reconstruction of the host cell surface, using simplistic suspension-growing K562 cells, to determine the contribution of individual cell surface constituents during Salmonella targeting. Combined with flow cytometry and a stringently tunable gene expression system, this model enabled high-throughput analysis and combined genetic manipulations in both pathogen and host cells. Transcriptomic and proteomic data along with lectin characterization revealed minimal K562 surface glycosylation at baseline. Chemical manipulations substantiated the role of cell membrane cholesterol in promoting Salmonella targeting, whereas ectopic expression of glycoproteins such as transmembrane mucins introduced a size-dependent steric barrier towards invading bacteria. Strikingly, even established glycoprotein receptors for Salmonella adhesins hampered rather than promoted invasion, suggesting that adhesins are required to overcome cellular glycocalyces in vivo, while a bare host cell membrane would be the pathogens preferred interaction surface.

microbiology↗

IntAct: a non-disruptive internal tagging strategy to study actin isoform organization and function

Actin plays a central role in many cell biological processes including division and motility. Mammals have six, highly conserved actin isoforms with nonredundant biological functions, yet the molecular basis of isoform specificity remains elusive due to a lack of tools. Here, we describe the development of IntAct, an internal tagging strategy to study actin isoform function in fixed and living cells. We first identified a residue pair in {beta}-actin that permits non-disruptive tag integration. Next, we used knock-in cell lines to demonstrate that the expression and filament incorporation of IntAct {beta}-actin is indistinguishable from wildtype. Furthermore, IntAct {beta}-actin remains associated with actin-binding proteins profilin, cofilin and formin family members DIAPH1 and FMNL2 and can be targeted in living cells. To demonstrate the usability of IntAct for actin isoform investigations, we also generated IntAct {gamma}-actin cells and show that actin isoform specific distribution remains unaltered in human cells. Moreover, introduction of tagged actin variants in yeast demonstrated an expected variant-dependent incorporation into patches and filaments. Together, our data indicate that IntAct is a versatile tool to study actin isoform localization, dynamics and molecular interactions.

cell biology↗