Retinoic acid-induced 1 gene haploinsufficiency alters lipid metabolism and causes autophagy defects in Smith-Magenis syndrome

Author:

Turco Elisa Maria,Giovenale Angela Maria Giada,Sireno Laura,Mazzoni Martina,Cammareri Alessandra,Marchioretti Caterina,Goracci Laura,Di Veroli Alessandra,Marchesan ElenaORCID,D’Andrea Daniel,Falconieri Antonella,Torres Barbara,Bernardini Laura,Magnifico Maria Chiara,Paone Alessio,Rinaldo SerenaORCID,Della Monica Matteo,D’Arrigo Stefano,Postorivo Diana,Nardone Anna Maria,Zampino Giuseppe,Onesimo Roberta,Leoni Chiara,Caicci Federico,Raimondo Domenico,Binda Elena,Trobiani Laura,De Jaco Antonella,Tata Ada MariaORCID,Ferrari DanielaORCID,Cutruzzolà FrancescaORCID,Mazzoccoli GianluigiORCID,Ziviani Elena,Pennuto MariaORCID,Vescovi Angelo Luigi,Rosati JessicaORCID

Abstract

AbstractSmith-Magenis syndrome (SMS) is a neurodevelopmental disorder characterized by cognitive and behavioral symptoms, obesity, and sleep disturbance, and no therapy has been developed to alleviate its symptoms or delay disease onset. SMS occurs due to haploinsufficiency of the retinoic acid-induced-1 (RAI1) gene caused by either chromosomal deletion (SMS-del) or RAI1 missense/nonsense mutation. The molecular mechanisms underlying SMS are unknown. Here, we generated and characterized primary cells derived from four SMS patients (two with SMS-del and two carrying RAI1 point mutations) and four control subjects to investigate the pathogenetic processes underlying SMS. By combining transcriptomic and lipidomic analyses, we found altered expression of lipid and lysosomal genes, deregulation of lipid metabolism, accumulation of lipid droplets, and blocked autophagic flux. We also found that SMS cells exhibited increased cell death associated with the mitochondrial pathology and the production of reactive oxygen species. Treatment with N-acetylcysteine reduced cell death and lipid accumulation, which suggests a causative link between metabolic dyshomeostasis and cell viability. Our results highlight the pathological processes in human SMS cells involving lipid metabolism, autophagy defects and mitochondrial dysfunction and suggest new potential therapeutic targets for patient treatment.

Funder

Fondazione Just Italia

Ministero della Salute

Fondation Jérôme Lejeune

Publisher

Springer Science and Business Media LLC

Subject

Cancer Research,Cell Biology,Cellular and Molecular Neuroscience,Immunology

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