Dominantly acting variants in ATP6V1C1 and ATP6V1B2 cause a multisystem phenotypic spectrum by altering lysosomal and/or autophagosome function

The vacuolar H+-ATPase (V-ATPase) is a functionally conserved multimeric complex localized at the membranes of many organelles where its proton-pumping action is required for proper lumen acidification. The V-ATPase complex is composed of several subunits, some of which have been linked to human dis...

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Veröffentlicht in:HGG advances 2024-10, Vol.5 (4), p.100349, Article 100349
Hauptverfasser: Carpentieri, Giovanna, Cecchetti, Serena, Bocchinfuso, Gianfranco, Radio, Francesca Clementina, Leoni, Chiara, Onesimo, Roberta, Calligari, Paolo, Pietrantoni, Agostina, Ciolfi, Andrea, Ferilli, Marco, Calderan, Cristina, Cappuccio, Gerarda, Martinelli, Simone, Messina, Elena, Caputo, Viviana, Hüffmeier, Ulrike, Mignot, Cyril, Auvin, Stéphane, Capri, Yline, Lourenco, Charles Marques, Russell, Bianca E., Neustad, Ahna, Brunetti Pierri, Nicola, Keren, Boris, Reis, André, Cohen, Julie S., Heidlebaugh, Alexis, Smith, Clay, Thiel, Christian T., Salviati, Leonardo, Zampino, Giuseppe, Campeau, Philippe M., Stella, Lorenzo, Tartaglia, Marco, Flex, Elisabetta
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Zusammenfassung:The vacuolar H+-ATPase (V-ATPase) is a functionally conserved multimeric complex localized at the membranes of many organelles where its proton-pumping action is required for proper lumen acidification. The V-ATPase complex is composed of several subunits, some of which have been linked to human disease. We and others previously reported pathogenic dominantly acting variants in ATP6V1B2, the gene encoding the V1B2 subunit, as underlying a clinically variable phenotypic spectrum including dominant deafness-onychodystrophy (DDOD) syndrome, Zimmermann-Laband syndrome (ZLS), and deafness, onychodystrophy, osteodystrophy, intellectual disability, and seizures (DOORS) syndrome. Here, we report on an individual with features fitting DOORS syndrome caused by dysregulated ATP6V1C1 function, expand the clinical features associated with ATP6V1B2 pathogenic variants, and provide evidence that these ATP6V1C1/ATP6V1B2 amino acid substitutions result in a gain-of-function mechanism upregulating V-ATPase function that drives increased lysosomal acidification. We demonstrate a disruptive effect of these ATP6V1B2/ATP6V1C1 variants on lysosomal morphology, localization, and function, resulting in a defective autophagic flux and accumulation of lysosomal substrates. We also show that the upregulated V-ATPase function affects cilium biogenesis, further documenting pleiotropy. This work identifies ATP6V1C1 as a new gene associated with a neurodevelopmental phenotype resembling DOORS syndrome, documents the occurrence of a phenotypic continuum between ZLS, and DDOD and DOORS syndromes, and classify these conditions as lysosomal disorders. V-ATPase is a multimeric complex localized at the membranes of organelles where its proton-pumping action is required for lumen acidification. We report that increased ATP6V1C1 function causes DOORS syndrome and show a phenotypic continuum between ZLS, DDOD syndrome, and DOORS syndrome due to activating ATP6V1B2 variants, classifying them as lysosomal disorders.
ISSN:2666-2477
2666-2477
DOI:10.1016/j.xhgg.2024.100349