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Wirshing, A. C.

Publications and source records attributed to Wirshing, A. C..

2 recordsLinked to original sources

A genetic strategy to allow detection of F-actin by phalloidin staining in diverse fungi

Actin is highly conserved across eukaryotes. This versatile protein builds cytoskeletal networks central to diverse cellular processes, including cell division and cell motility. The most potent and broadly used reagents to detect polymerized actin distribution in fixed cells are fluorescently conjugated derivatives of the basidiomycete-derived toxin, phalloidin. However, despite its conservation, actin in many ascomycete fungi fails to bind phalloidin. Here we trace the failure to bind phalloidin to a single amino acid change in a phalloidin-binding residue in actin. Reverting this change in the fungus Aureobasidium pullulans by introducing the point mutation act1V75I at the native ACT1 locus confers phalloidin binding without disrupting actin function. We describe a simple genetic technique to introduce this point mutation that may be effective in other fungal systems. This strategy should enable characterization of F-actin in a wider range of fungi. SUMMARYA single point mutation, act1V75I, enables phalloidin staining in ascomycete fungi

cell biology↗

Mechanisms of nuclear segregation in a multinucleate multibudding yeast

Budding yeasts present an especially challenging geometry for segregation of chromosomes, which must be delivered across the narrow mother-bud neck into the bud. Studies in the model yeast Saccharomyces cerevisiae have revealed an elaborate set of mechanisms that selectively orient one mitotic spindle pole towards the bud and then drive spindle elongation along the mother-bud axis, ensuring nuclear segregation between mother and bud. It is unclear how these pathways might be adapted to yield similar precision in more complex cell geometries. Here we provide the first description of the dynamics of mitosis in a multi-nucleate, multibudding yeast, Aureobasidium pullulans, and identify many unexpected differences from uninucleate yeasts. Mitotic spindles do not orient along the mother-bud axis prior to anaphase, and accurate nuclear segregation often occurs after spindle disassembly. Cortical Num1-dynein forces pull highly mobile nuclei into buds, and once a nucleus enters a bud, it discourages others from entering, ensuring that most daughters inherit only one nucleus.

cell biology↗