4.6 Article

Flavonoids as Potential Drugs for VPS13-Dependent Rare Neurodegenerative Diseases

Journal

GENES
Volume 11, Issue 7, Pages -

Publisher

MDPI
DOI: 10.3390/genes11070828

Keywords

yeast model; neurodegenerative diseases; VPS13genes; drug repurposing; luteolin; tolcapone; FET4gene; iron; sphingolipid biosynthesis; csg2 Delta

Funding

  1. National Science Centre Poland [UMO-2015/19/B/NZ3/01515]
  2. Institute of Biochemistry and Biophysics Polish Academy of Sciences
  3. COST (European Cooperation in Science and Technology) [BM1307]
  4. Fundacao para a Ciencia e Tecnologia/Ministerio da Educacao e Ciencia [UID/Multi/04462/2019]
  5. FEDER under the PT2020 Partnership Agreement
  6. INTERFACE Programme, through the Innovation, Technology and Circular Economy Fund (FITEC)
  7. FCT [PTDC/BIA-MOL31104/2017]
  8. Fundação para a Ciência e a Tecnologia [UID/Multi/04462/2019] Funding Source: FCT

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Several rare neurodegenerative diseases, including chorea acanthocytosis, are caused by mutations in the VPS13A-Dgenes. Only symptomatic treatments for these diseases are available.Saccharomyces cerevisiaecontains a unique VPS13gene and the yeast vps13 Delta mutant has been proven as a suitable model for drug tests. A library of drugs and an in-house library of natural compounds and their derivatives were screened for molecules preventing the growth defect of vps13 Delta cells on medium with sodium dodecyl sulfate (SDS). Seven polyphenols, including the iron-binding flavone luteolin, were identified. The structure-activity relationship and molecular mechanisms underlying the action of luteolin were characterized. TheFET4gene, which encodes an iron transporter, was found to be a multicopy suppressor of vps13 Delta, pointing out the importance of iron in response to SDS stress. The growth defect of vps13 Delta in SDS-supplemented medium was also alleviated by the addition of iron salts. Suppression did not involve cell antioxidant responses, as chemical antioxidants were not active. Our findings support that luteolin and iron may target the same cellular process, possibly the synthesis of sphingolipids. Unveiling the mechanisms of action of chemical and genetic suppressors of vps13 Delta may help to better understand VPS13A-D-dependent pathogenesis and to develop novel therapeutic strategies.

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