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Characterizing Histone Post-translational Modification Alterations in Yeast Neurodegenerative Proteinopathy Models
Published on: March 24, 2019
Yeast as a Model to Find New Drugs and Drug Targets for VPS13-Dependent Neurodegenerative Diseases
Joanna Kaminska1, Piotr Soczewka1, Weronika Rzepnikowska2
1Institute of Biochemistry and Biophysics Polish Academy of Sciences, 02-106 Warsaw, Poland.
Abstract:
Mutations in human VPS13A-D genes result in rare neurological diseases, including chorea-acanthocytosis. The pathogenesis of these diseases is poorly understood, and no effective treatment is available. As VPS13 genes are evolutionarily conserved, the effects of the pathogenic mutations could be studied in model organisms, including yeast, where one VPS13 gene is present. In this review, we summarize advancements obtained using yeast. In recent studies, vps13Δ and vps13-I2749 yeast mutants, which are models of chorea-acanthocytosis, were used to screen for multicopy and chemical suppressors. Two of the suppressors, a fragment of the MYO3 and RCN2 genes, act by downregulating calcineurin activity. In addition, vps13Δ suppression was achieved by using calcineurin inhibitors. The other group of multicopy suppressors were genes: FET4, encoding iron transporter, and CTR1, CTR3 and CCC2, encoding copper transporters. Mechanisms of their suppression rely on causing an increase in the intracellular iron content. Moreover, among the identified chemical suppressors were copper ionophores, which require a functional iron uptake system for activity, and flavonoids, which bind iron. These findings point at areas for further investigation in a higher eukaryotic model of VPS13-related diseases and to new therapeutic targets: calcium signalling and copper and iron homeostasis. Furthermore, the identified drugs are interesting candidates for drug repurposing for these diseases.
Insights
Yeast models of chorea-acanthocytosis revealed that calcineurin signaling and iron/copper homeostasis are key to VPS13-related diseases. Identified drugs targeting these pathways offer potential therapeutic strategies.
Area of Science:
- Genetics
- Neurobiology
- Cell Biology
Background:
- Mutations in human VPS13A-D genes cause rare neurological disorders like chorea-acanthocytosis.
- The pathogenesis and treatment of these diseases remain poorly understood.
- Yeast, possessing a single VPS13 gene, serves as a valuable model organism for studying these mutations due to evolutionary conservation.
Purpose of the Study:
- To review advancements in understanding VPS13-related diseases using yeast models.
- To identify genetic and chemical suppressors of VPS13 mutations in yeast.
- To explore potential therapeutic targets and drug repurposing opportunities.
Main Methods:
- Utilizing yeast mutants (vps13Δ and vps13-I2749) as models for chorea-acanthocytosis.
- Screening for multicopy and chemical suppressors of VPS13 deficiency.
- Investigating the mechanisms of suppression involving calcineurin activity, iron, and copper transport.
Main Results:
- MYO3, RCN2, and calcineurin inhibitors were identified as suppressors by downregulating calcineurin activity.
- FET4, CTR1, CTR3, and CCC2 genes, involved in iron and copper transport, suppressed vps13Δ by increasing intracellular iron.
- Chemical suppressors included copper ionophores and iron-binding flavonoids.
Conclusions:
- Calcineurin signaling and copper/iron homeostasis are critical in VPS13-related diseases.
- Further investigation in higher eukaryotic models is warranted.
- Identified drugs and pathways represent promising therapeutic targets for drug repurposing.

