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Neuronal Ablation of CoA Synthase Causes Motor Deficits, Iron Dyshomeostasis, and Mitochondrial Dysfunctions in a CoPAN Mouse Model

COASY protein-associated neurodegeneration (CoPAN) is a rare but devastating genetic autosomal recessive disorder of inborn error of CoA metabolism, which shares with pantothenate kinase-associated neurodegeneration (PKAN) similar features, such as dystonia, parkinsonian traits, cognitive impairment...

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Autores principales: Di Meo, Ivano, Cavestro, Chiara, Pedretti, Silvia, Fu, Tingting, Ligorio, Simona, Manocchio, Antonello, Lavermicocca, Lucrezia, Santambrogio, Paolo, Ripamonti, Maddalena, Levi, Sonia, Ayciriex, Sophie, Mitro, Nico, Tiranti, Valeria
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7766928/
https://www.ncbi.nlm.nih.gov/pubmed/33352696
http://dx.doi.org/10.3390/ijms21249707
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author Di Meo, Ivano
Cavestro, Chiara
Pedretti, Silvia
Fu, Tingting
Ligorio, Simona
Manocchio, Antonello
Lavermicocca, Lucrezia
Santambrogio, Paolo
Ripamonti, Maddalena
Levi, Sonia
Ayciriex, Sophie
Mitro, Nico
Tiranti, Valeria
author_facet Di Meo, Ivano
Cavestro, Chiara
Pedretti, Silvia
Fu, Tingting
Ligorio, Simona
Manocchio, Antonello
Lavermicocca, Lucrezia
Santambrogio, Paolo
Ripamonti, Maddalena
Levi, Sonia
Ayciriex, Sophie
Mitro, Nico
Tiranti, Valeria
author_sort Di Meo, Ivano
collection PubMed
description COASY protein-associated neurodegeneration (CoPAN) is a rare but devastating genetic autosomal recessive disorder of inborn error of CoA metabolism, which shares with pantothenate kinase-associated neurodegeneration (PKAN) similar features, such as dystonia, parkinsonian traits, cognitive impairment, axonal neuropathy, and brain iron accumulation. These two disorders are part of the big group of neurodegenerations with brain iron accumulation (NBIA) for which no effective treatment is available at the moment. To date, the lack of a mammalian model, fully recapitulating the human disorder, has prevented the elucidation of pathogenesis and the development of therapeutic approaches. To gain new insights into the mechanisms linking CoA metabolism, iron dyshomeostasis, and neurodegeneration, we generated and characterized the first CoPAN disease mammalian model. Since CoA is a crucial metabolite, constitutive ablation of the Coasy gene is incompatible with life. On the contrary, a conditional neuronal-specific Coasy knock-out mouse model consistently developed a severe early onset neurological phenotype characterized by sensorimotor defects and dystonia-like movements, leading to premature death. For the first time, we highlighted defective brain iron homeostasis, elevation of iron, calcium, and magnesium, together with mitochondrial dysfunction. Surprisingly, total brain CoA levels were unchanged, and no signs of neurodegeneration were present.
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spelling pubmed-77669282020-12-28 Neuronal Ablation of CoA Synthase Causes Motor Deficits, Iron Dyshomeostasis, and Mitochondrial Dysfunctions in a CoPAN Mouse Model Di Meo, Ivano Cavestro, Chiara Pedretti, Silvia Fu, Tingting Ligorio, Simona Manocchio, Antonello Lavermicocca, Lucrezia Santambrogio, Paolo Ripamonti, Maddalena Levi, Sonia Ayciriex, Sophie Mitro, Nico Tiranti, Valeria Int J Mol Sci Article COASY protein-associated neurodegeneration (CoPAN) is a rare but devastating genetic autosomal recessive disorder of inborn error of CoA metabolism, which shares with pantothenate kinase-associated neurodegeneration (PKAN) similar features, such as dystonia, parkinsonian traits, cognitive impairment, axonal neuropathy, and brain iron accumulation. These two disorders are part of the big group of neurodegenerations with brain iron accumulation (NBIA) for which no effective treatment is available at the moment. To date, the lack of a mammalian model, fully recapitulating the human disorder, has prevented the elucidation of pathogenesis and the development of therapeutic approaches. To gain new insights into the mechanisms linking CoA metabolism, iron dyshomeostasis, and neurodegeneration, we generated and characterized the first CoPAN disease mammalian model. Since CoA is a crucial metabolite, constitutive ablation of the Coasy gene is incompatible with life. On the contrary, a conditional neuronal-specific Coasy knock-out mouse model consistently developed a severe early onset neurological phenotype characterized by sensorimotor defects and dystonia-like movements, leading to premature death. For the first time, we highlighted defective brain iron homeostasis, elevation of iron, calcium, and magnesium, together with mitochondrial dysfunction. Surprisingly, total brain CoA levels were unchanged, and no signs of neurodegeneration were present. MDPI 2020-12-19 /pmc/articles/PMC7766928/ /pubmed/33352696 http://dx.doi.org/10.3390/ijms21249707 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Di Meo, Ivano
Cavestro, Chiara
Pedretti, Silvia
Fu, Tingting
Ligorio, Simona
Manocchio, Antonello
Lavermicocca, Lucrezia
Santambrogio, Paolo
Ripamonti, Maddalena
Levi, Sonia
Ayciriex, Sophie
Mitro, Nico
Tiranti, Valeria
Neuronal Ablation of CoA Synthase Causes Motor Deficits, Iron Dyshomeostasis, and Mitochondrial Dysfunctions in a CoPAN Mouse Model
title Neuronal Ablation of CoA Synthase Causes Motor Deficits, Iron Dyshomeostasis, and Mitochondrial Dysfunctions in a CoPAN Mouse Model
title_full Neuronal Ablation of CoA Synthase Causes Motor Deficits, Iron Dyshomeostasis, and Mitochondrial Dysfunctions in a CoPAN Mouse Model
title_fullStr Neuronal Ablation of CoA Synthase Causes Motor Deficits, Iron Dyshomeostasis, and Mitochondrial Dysfunctions in a CoPAN Mouse Model
title_full_unstemmed Neuronal Ablation of CoA Synthase Causes Motor Deficits, Iron Dyshomeostasis, and Mitochondrial Dysfunctions in a CoPAN Mouse Model
title_short Neuronal Ablation of CoA Synthase Causes Motor Deficits, Iron Dyshomeostasis, and Mitochondrial Dysfunctions in a CoPAN Mouse Model
title_sort neuronal ablation of coa synthase causes motor deficits, iron dyshomeostasis, and mitochondrial dysfunctions in a copan mouse model
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7766928/
https://www.ncbi.nlm.nih.gov/pubmed/33352696
http://dx.doi.org/10.3390/ijms21249707
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