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Druseikis, M. E.

Publications and source records attributed to Druseikis, M. E..

2 recordsLinked to original sources

Checks and balances of the RTG pathway under arginine deprivation and canavanine exposure in Saccharomyces cerevisiae

Decades of research in Saccharomyces cerevisiae underlie the current dogma of mitochondrial retrograde (RTG) signaling: Rtg2-dependent translocation of the heterodimer Rtg1/Rtg3 from the cytoplasm to the nucleus induces the transcription of RTG-target genes under glutamate starvation or loss of respiration. We previously found that RTG mutants show severe growth inhibition from arginine deprivation and are highly sensitive to canavanine when grown on glucose. Here, we show that on solid media, RTG mutants are also sensitive to thialysine, a toxic lysine analog, although lysine deprivation causes a milder growth defect. Growth on an alternative carbon source restores RTG mutants ability to grow without arginine or lysine and improves their tolerance of toxic analogs; deletion of MIG1 affords a similar rescue on glucose and improves canavanine tolerance, except for in rtg2{Delta}. It is well known that the target of rapamycin (TOR) signaling pathway inhibits the RTG pathway. Batch growth experiments with or without TOR inhibition reveal phenotypic and regulatory differences between RTG mutants. rtg1{Delta} can sustain simultaneous canavanine exposure and TOR inhibition via rapamycin, but rtg2{Delta} and rtg3{Delta} cannot. Surprisingly, our data show that under fermentative lifestyle and arginine deprivation, both RTG signaling and TOR activity are required. This expands the universe of TOR and RTG signaling, suggesting bilateral communication rather than unidirectional RTG regulation by TOR. To the best of our knowledge, this work shows for the first time that Rtg3 activity can be separate from its role as a heterodimer with Rtg1. This work also strongly suggests a specific role for Rtg2 in canavanine tolerance.

microbiology↗

Synthetic lethality between toxic amino acids, retrograde target genes and chaperones in Saccharomyces cerevisiae

The toxicity of non-proteinogenic amino acids has been known for decades. Numerous reports describe their antimicrobial/anticancer potential. However, these molecules are often toxic to the host as well, therefore a synthetic lethality approach can be beneficial. Here we investigated the potential synthetic lethality between toxic amino acids, the retrograde pathway, and molecular chaperones. In Saccharomyces cerevisiae, mitochondrial retrograde (RTG) pathway activation induces transcription of RTG-target genes, which replenishes alpha- ketoglutarate and glutamate; both metabolites are required for arginine and lysine biosynthesis. We previously reported that tolerance of canavanine, a toxic arginine derivative, requires an intact RTG pathway, and low-dose canavanine exposure reduces the expression of RTG-target genes. At higher concentrations, canavanine causes protein misfolding. Here we show that in WT, low-dose thialysine exposure, a toxic lysine analog, has a similar effect as canavanine on RTG-target gene expression. To study if single amino acid deficiency and mild protein misfolding stress elicit a similar effect on RTG-target genes, we compared expression of heat shock protein (HSP) mutants grown without arginine or lysine to WT. Arginine deprivation induces RTG-target gene expression in sse2{Delta}, hsp78{Delta}, and mdj1{Delta}, but CIT2 and DLD3 are reduced in cpr7{Delta}. Lysine deprivation has the opposite effect on RTG-target gene expression in HSP mutants. Interestingly, exposure of HSP mutants to canavanine and thialysine reversed the trend of RTG-target gene expression in several cases. The RTG-target expression pattern in HSP mutants had a predictive value in canavanine sensitivity - the mutant with the lowest expression was the most sensitive - but this was not the case for thialysine. Some, but not all, mutants in RTG-target genes are sensitive to canavanine and thialysine; additional mutation in a certain HSP can exacerbate this sensitivity. Overall, we show that inhibiting molecular chaperones, RTG-target genes, or both can sensitize cells to low doses of toxic amino acids.

genetics↗