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Bergner, T.

Publications and source records attributed to Bergner, T..

2 recordsLinked to original sources

Cryptosporidium sequentially remodels its single rhoptry into the host interface

The apicomplexan parasite Cryptosporidium is a leading cause of diarrheal disease in young children. Within the intestinal epithelium, Cryptosporidium establishes a unique intracellular niche in the apical brush border of enterocytes. A structurally complex interface between host and parasite acts as a holdfast and enables protein and metabolite transport. How the parasite invades its host cell and builds the interface is poorly understood. Here, we reveal parasite invasion with high temporal and spatial resolution using rigorous molecular markers. We find that sequential discharge of specialized secretory organelles anchors the parasite within the host prior to internalization. The single Cryptosporidium rhoptry persists beyond its initial pre-invasion discharge, acting as a conduit for the secretion of multiple waves of effector proteins. Ultimately, the rhoptry membrane gives rise to the feeder organelle that separates host from parasite cytoplasm. These findings lead us to propose a mechanistic model of Cryptosporidium invasion and intracellular parasitism.

microbiology↗

A short linear motif, conserved from yeast to human, binds to members of the Spa2/GIT1 family of cortical scaffold proteins

Tip growth is closely tied to fungal pathogenicity. Spa2, a multi-domain protein and member of the polarisome, orchestrates tip growth in yeast and other fungi. We identified a conserved short linear motif in the RabGAPs Msb3 and Msb4, and the MAP kinase kinase Ste7 and Mkk1, which mediates their interaction with Spa2. AlphaFold predictions suggest that these initially unstructured motifs adopt an alpha-helical conformation upon binding to the hydrophobic cleft of Spa2s N-terminal domain. Altering the predicted key contact residues in either Spa2 or the motif reduces complex stability. Such mutations also cause mis-localization of Msb3, Msb4, and Ste7 within the cell. Deleting the motif in Msb3 or Msb4 abolishes tip-directed growth of the yeast bud. Protein assemblies that spatially confine secretion to specific membrane regions are a common feature of eukaryotic cells. Accordingly, Spa2-motif complexes were predicted in orthologs and paralogs across selected Opisthokonta, including pathogenic fungi and humans. A search for functional motifs in conformationally flexible regions of all yeast proteins identified Dse3 as a novel Spa2-binding partner.

cell biology↗