ArticlePLoS genetics2020
Spontaneous mutations that confer resistance to 2-deoxyglucose act through Hxk2 and Snf1 pathways to regulate gene expression and HXT endocytosis.
Article in PLoS genetics, 2020. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 13 papers.
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Who cites it
13 citing papers in PubMed, 24 citations in OpenAlex.
- Development of a high-throughput label-free method for enrichment of antimetabolite-resistant yeast strains using pico-litre agarose beads.Applied microbiology and biotechnology · 2026Article
- Energetics of whole genome doubling and genomic instability.Cancer letters · 2025Review
- A genetic screen reveals a key role for Reg1 in 2-deoxyglucose sensing and yeast AMPK inhibition.PLoS genetics · 2025Article
- Metabolic engineering of Saccharomyces cerevisiae for efficient utilization of pectin-rich biomass.Journal of microbiology (Seoul, Korea) · 2025Review
- The role of hexokinases in epigenetic regulation: altered hexokinase expression and chromatin stability in yeast.Epigenetics & chromatin · 2024Article
- Aneuploidy Can Be an Evolutionary Diversion on the Path to Adaptation.Molecular biology and evolution · 2024Article
- Changing course: Glucose starvation drives nuclear accumulation of Hexokinase 2 in S. cerevisiae.PLoS genetics · 2023Article
- 2-deoxyglucose transiently inhibits yeast AMPK signaling and triggers glucose transporter endocytosis, potentiating the drug toxicity.PLoS genetics · 2022Article
- Novel mutation in hexokinase 2 confers resistance to 2-deoxyglucose by altering protein dynamics.PLoS computational biology · 2022Article
- Alpha-arrestins Aly1/Art6 and Aly2/Art3 regulate trafficking of the glycerophosphoinositol transporter Git1 and impact phospholipid homeostasis.Biology of the cell · 2022Article
- Drug resistance in diploid yeast is acquired through dominant alleles, haploinsufficiency, gene duplication and aneuploidy.PLoS genetics · 2021Article
- Article
- 'Sugarcoating' 2-deoxyglucose: mechanisms that suppress its toxic effects.Current genetics · 2021Review
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Authors and funding
6 authors at 1 institution in 1 country.
Funding
Abstract
Yeast and fast-growing human tumor cells share metabolic similarities in that both cells use fermentation of glucose for energy and both are highly sensitive to the glucose analog 2-deoxyglucose. Spontaneous mutations in S. cerevisiae that conferred resistance to 2-deoxyglucose were identified by whole genome sequencing. Missense alleles of the HXK2, REG1, GLC7 and SNF1 genes were shown to confer significant resistance to 2-deoxyglucose and all had the potential to alter the activity and or target selection of the Snf1 kinase signaling pathway. All three missense alleles in HXK2 resulted in significantly reduced catalytic activity. Addition of 2DG promotes endocytosis of the glucose transporter Hxt3. All but one of the 2DG-resistant strains reduced the 2DG-mediated hexose transporter endocytosis by increasing plasma membrane occupancy of the Hxt3 protein. Increased expression of the DOG (deoxyglucose) phosphatases has been associated with resistance to 2-deoxyglucose. Expression of both the DOG1 and DOG2 mRNA was elevated after treatment with 2-deoxyglucose but induction of these genes is not associated with 2DG-resistance. RNAseq analysis of the transcriptional response to 2DG showed large scale, genome-wide changes in mRNA abundance that were greatly reduced in the 2DG resistant strains. These findings suggest the common adaptive response to 2DG is to limit the magnitude of the response. Genetic studies of 2DG resistance using the dominant SNF1-G53R allele in cells that are genetically compromised in both the endocytosis and DOG pathways suggest that at least one more mechanism for conferring resistance to this glucose analog remains to be discovered.
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