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 PMID:37886910  

A new Caenorhabditis elegans model to study copper toxicity in Wilson disease.

Federico Catalano | Thomas J O'Brien | Aleksandra A Mekhova | Lucia Vittoria Sepe | Mariantonietta Elia | Rossella De Cegli | Ivan Gallotta | Pamela Santonicola | Giuseppina Zampi | Ekaterina Y Ilyechova | Aleksei A Romanov | Polina D Samuseva | Josephine Salzano | Raffaella Petruzzelli | Elena V Polishchuk | Alessia Indrieri | Byung-Eun Kim | André E X Brown | Ludmila V Puchkova | Elia Di Schiavi | Roman S Polishchuk
Traffic (Copenhagen, Denmark) | 2024

Wilson disease (WD) is caused by mutations in the ATP7B gene that encodes a copper (Cu) transporting ATPase whose trafficking from the Golgi to endo-lysosomal compartments drives sequestration of excess Cu and its further excretion from hepatocytes into the bile. Loss of ATP7B function leads to toxic Cu overload in the liver and subsequently in the brain, causing fatal hepatic and neurological abnormalities. The limitations of existing WD therapies call for the development of new therapeutic approaches, which require an amenable animal model system for screening and validation of drugs and molecular targets. To achieve this objective, we generated a mutant Caenorhabditis elegans strain with a substitution of a conserved histidine (H828Q) in the ATP7B ortholog cua-1 corresponding to the most common ATP7B variant (H1069Q) that causes WD. cua-1 mutant animals exhibited very poor resistance to Cu compared to the wild-type strain. This manifested in a strong delay in larval development, a shorter lifespan, impaired motility, oxidative stress pathway activation, and mitochondrial damage. In addition, morphological analysis revealed several neuronal abnormalities in cua-1 mutant animals exposed to Cu. Further investigation suggested that mutant CUA-1 is retained and degraded in the endoplasmic reticulum, similarly to human ATP7B-H1069Q. As a consequence, the mutant protein does not allow animals to counteract Cu toxicity. Notably, pharmacological correctors of ATP7B-H1069Q reduced Cu toxicity in cua-1 mutants indicating that similar pathogenic molecular pathways might be activated by the H/Q substitution and, therefore, targeted for rescue of ATP7B/CUA-1 function. Taken together, our findings suggest that the newly generated cua-1 mutant strain represents an excellent model for Cu toxicity studies in WD.

Pubmed ID: 37886910

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Associated grants

  • Agency: Medical Research Council, United Kingdom
    Id: MC-A658-5TY30
  • Agency: ODCDC CDC HHS, United States
    Id: P40 OD010440
  • Agency: NIH HHS, United States
    Id: P40 OD010440
  • Agency: Medical Research Council, United Kingdom
    Id: MC_UP_1102/6
  • Agency: NIDDK NIH HHS, United States
    Id: R01 DK129599
  • Agency: NIH HHS, United States
    Id: R01 DK129599

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Caenorhabditis Genetics Center (tool)

RRID:SCR_007341

Center that acquires, maintains, and distributes genetic stocks and information about stocks of the small free-living nematode Caenorhabditis elegans for use by investigators initiating or continuing research on this genetic model organism. A searchable strain database, general information about C. elegans, and links to key Web sites of use to scientists, including WormBase, WormAtlas, and WormBook are available.

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