Juan Manuel Chao de la Barca1, Gilles Simard2, Emmanuelle Sarzi3, Tanguy Chaumette4, Guillaume Rousseau5, Stéphanie Chupin1, Cédric Gadras5, Lydie Tessier5, Marc Ferré4, Arnaud Chevrollier4, Valérie Desquiret-Dumas1, Naïg Gueguen1, Stéphanie Leruez6, Christophe Verny7, Dan Miléa8, Dominique Bonneau1, Patrizia Amati-Bonneau1, Vincent Procaccio1, Christian Hamel3, Guy Lenaers4, Pascal Reynier1, Delphine Prunier-Mirebeau1. 1. Pôle de Recherche et d'Enseignement en Médecine Mitochondriale (PREMMi), Institut MITOVASC, Université d'Angers, Angers, France 2Département de Biochimie et Génétique, Centre Hospitalier Universitaire, Angers, France. 2. Département de Biochimie et Génétique, Centre Hospitalier Universitaire, Angers, France 3Institut National de la Santé et de la Recherche Médicale (INSERM), U1063, Université d'Angers, Angers, France. 3. Institut National de la Santé et de la Recherche Médicale (INSERM), U1051, Institut des Neurosciences de Montpellier, Montpellier, France. 4. Pôle de Recherche et d'Enseignement en Médecine Mitochondriale (PREMMi), Institut MITOVASC, Université d'Angers, Angers, France. 5. Département de Biochimie et Génétique, Centre Hospitalier Universitaire, Angers, France. 6. Pôle de Recherche et d'Enseignement en Médecine Mitochondriale (PREMMi), Institut MITOVASC, Université d'Angers, Angers, France 5Département d'Ophtalmologie, Centre Hospitalier Universitaire, Angers, France. 7. Pôle de Recherche et d'Enseignement en Médecine Mitochondriale (PREMMi), Institut MITOVASC, Université d'Angers, Angers, France 6Département de Neurologie, Centre Hospitalier Universitaire, Angers, France. 8. Pôle de Recherche et d'Enseignement en Médecine Mitochondriale (PREMMi), Institut MITOVASC, Université d'Angers, Angers, France 5Département d'Ophtalmologie, Centre Hospitalier Universitaire, Angers, France 7Singapore Eye Research Institute, Singapore National Eye Centre, Duke-NUS, Singapore.
Abstract
Purpose: Dominant optic atrophy (MIM No. 165500) is a blinding condition related to mutations in OPA1, a gene encoding a large GTPase involved in mitochondrial inner membrane dynamics. Although several mouse models mimicking the disease have been developed, the pathophysiological mechanisms responsible for retinal ganglion cell degeneration remain poorly understood. Methods: Using a targeted metabolomic approach, we measured the concentrations of 188 metabolites in nine tissues, that is, brain, three types of skeletal muscle, heart, liver, retina, optic nerve, and plasma in symptomatic 11-month-old Opa1delTTAG/+ mice. Results: Significant metabolic signatures were found only in the optic nerve and plasma of female mice. The optic nerve signature was characterized by altered concentrations of phospholipids, amino acids, acylcarnitines, and carnosine, whereas the plasma signature showed decreased concentrations of amino acids and sarcosine associated with increased concentrations of several phospholipids. In contrast, the investigation of 3-month-old presymptomatic Opa1delTTAG/+ mice showed no specific plasma signature but revealed a significant optic nerve signature in both sexes, although with a sex effect. The Opa1delTTAG/+ versus wild-type optic nerve signature was characterized by the decreased concentrations of 10 sphingomyelins and 10 lysophosphatidylcholines, suggestive of myelin sheath alteration, and by alteration in the concentrations of metabolites involved in neuroprotection, such as dimethylarginine, carnitine, spermine, spermidine, carnosine, and glutamate, suggesting a concomitant axonal metabolic dysfunction. Conclusions: Our comprehensive metabolomic investigations revealed in symptomatic as well as in presymptomatic Opa1delTTAG/+ mice, a specific sensitiveness of the optic nerve to Opa1 insufficiency, opening new routes for protective therapeutic strategies.
Purpose: Dominant optic atrophy (MIM No. 165500) is a blinding condition related to mutations in OPA1, a gene encoding a large GTPase involved in mitochondrial inner membrane dynamics. Although several mouse models mimicking the disease have been developed, the pathophysiological mechanisms responsible for retinal ganglion cell degeneration remain poorly understood. Methods: Using a targeted metabolomic approach, we measured the concentrations of 188 metabolites in nine tissues, that is, brain, three types of skeletal muscle, heart, liver, retina, optic nerve, and plasma in symptomatic 11-month-old Opa1delTTAG/+ mice. Results: Significant metabolic signatures were found only in the optic nerve and plasma of female mice. The optic nerve signature was characterized by altered concentrations of phospholipids, amino acids, acylcarnitines, and carnosine, whereas the plasma signature showed decreased concentrations of amino acids and sarcosine associated with increased concentrations of several phospholipids. In contrast, the investigation of 3-month-old presymptomatic Opa1delTTAG/+ mice showed no specific plasma signature but revealed a significant optic nerve signature in both sexes, although with a sex effect. The Opa1delTTAG/+ versus wild-type optic nerve signature was characterized by the decreased concentrations of 10 sphingomyelins and 10 lysophosphatidylcholines, suggestive of myelin sheath alteration, and by alteration in the concentrations of metabolites involved in neuroprotection, such as dimethylarginine, carnitine, spermine, spermidine, carnosine, and glutamate, suggesting a concomitant axonal metabolic dysfunction. Conclusions: Our comprehensive metabolomic investigations revealed in symptomatic as well as in presymptomatic Opa1delTTAG/+ mice, a specific sensitiveness of the optic nerve to Opa1insufficiency, opening new routes for protective therapeutic strategies.
Authors: Juan Manuel Chao de la Barca; Macarena S Arrázola; Cinzia Bocca; Laetitia Arnauné-Pelloquin; Olga Iuliano; Guillaume Tcherkez; Guy Lenaers; Gilles Simard; Pascale Belenguer; Pascal Reynier Journal: Sci Rep Date: 2019-04-15 Impact factor: 4.379
Authors: Laura Bouche; Rima Kamel; Sophie Tamareille; Gabriel Garcia; Camille Villedieu; Bruno Pillot; Naïg Gueguen; Ahmad Chehaitly; Juan Manuel Chao de la Barca; Justine Beaumont; Delphine Baetz; Michel Ovize; Hiromi Sesaki; Daniel Henrion; Pascal Reynier; Guy Lenaers; Fabrice Prunier; Delphine Mirebeau-Prunier Journal: PLoS One Date: 2021-03-25 Impact factor: 3.240
Authors: Juan Manuel Chao de la Barca; Mario Fogazza; Michela Rugolo; Stéphanie Chupin; Valentina Del Dotto; Anna Maria Ghelli; Valerio Carelli; Gilles Simard; Vincent Procaccio; Dominique Bonneau; Guy Lenaers; Pascal Reynier; Claudia Zanna Journal: Hum Mol Genet Date: 2020-05-28 Impact factor: 6.150