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Bidiuk, V. A.

Publications and source records attributed to Bidiuk, V. A..

2 recordsLinked to original sources

SCRAPPY - a single cell rapid assay of proteome perturbation in yeast uncovers a joint role of aromatic amino acids and oxidative stress in the toxicity of lipophilic nucleoside analogs

Assaying cellular responses to antimicrobial molecules is a path to understanding modes of action of potential drugs. This is often achieved via transcriptomics and proteomics, but simple and inexpensive methods for rapid characterization are lacking. To bridge this gap, we assayed changes in the abundance of a panel of 64 "sentinel" proteins fused to GFP in the yeast Saccharomyces cerevisiae using flow cytometry. This method produced expected patterns for classical antifungals and allowed inference of common mechanisms between known and novel compounds. Single-cell data also revealed diverging responses in mitochondrial protein abundance in response to thiazolidine antifungals, and perturbations of the cell cycle caused by various compounds. Finally, the method provided insight into the unknown mode of action of alkylated nucleosides, which can be used against fungi residing on works of art. These substances elevate levels of proteins involved in the biosynthesis of aromatic amino acids (AAA), as well as in oxidative stress. Furthermore, deficiencies of Trp and Tyr biosynthesis increased the efficacy of these compounds, while antioxidants reduced it. Most surprisingly, antioxidant effectiveness relied on AAA biosynthesis. Thus, our approach and its possible modifications for other microbes provides an easy and reliable platform for revealing modes of action of novel compounds.

microbiology↗

Systematic identification of yeast mutants with increased rates of cell death reveals rapid stochastic necrosis associated with cell division

Cell death plays a major role in development, pathology and aging and can be triggered by various types of acute stimuli which arrest cell growth. However, little is known about chronic cell death in the context of continuing cell division. Here, we performed a genome-wide search for mutants with this type of death in dividing bakers yeast by assaying staining with phloxine B, which accumulates in dead cells. This screen yielded 83 essential and 43 non-essential gene mutants. Three contrasting types of spatial distribution of dead cells in colonies were observed, which corresponded to gene ontology enrichment for (i) DNA replication and repair, RNA processing, chromatin organization, and nuclear transport; (ii) mitosis and cytokinesis; and (iii) vesicular transport and glycosylation/cell wall homeostasis. To study dynamics of cell death in these mutants, we developed methods for analyzing the death of newborn cells (DON) and cell death in real time using microfluidics-based microscopy. These revealed rapid stochastic necrosis during bud generation or cytokinesis without prior division arrest. Increased death during division was associated with common sensitivity to plasma membrane and cell-wall perturbing agents, and could be mitigated by neutral pH stabilization of the medium. This suggests a common downstream type of cell death caused by a wide range of genetic perturbations.

cell biology↗