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Protein misfolding and clearance in the pathogenesis of a new infantile onset ataxia caused by mutations in PRDX3

Peroxiredoxin 3 (PRDX3) encodes a mitochondrial antioxidant protein, which is essential for the control of reactive oxygen species homeostasis. So far, PRDX3 mutations are involved in mild-to-moderate progressive juvenile onset cerebellar ataxia. We aimed to unravel the molecular bases underlying th...

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Autores principales: Martínez-Rubio, Dolores, Rodríguez-Prieto, Ángela, Sancho, Paula, Navarro-González, Carmen, Gorría-Redondo, Nerea, Miquel-Leal, Javier, Marco-Marín, Clara, Jenkins, Alison, Soriano-Navarro, Mario, Hernández, Alberto, Pérez-Dueñas, Belén, Fazzari, Pietro, Aguilera-Albesa, Sergio, Espinós, Carmen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9652108/
https://www.ncbi.nlm.nih.gov/pubmed/35766882
http://dx.doi.org/10.1093/hmg/ddac146
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author Martínez-Rubio, Dolores
Rodríguez-Prieto, Ángela
Sancho, Paula
Navarro-González, Carmen
Gorría-Redondo, Nerea
Miquel-Leal, Javier
Marco-Marín, Clara
Jenkins, Alison
Soriano-Navarro, Mario
Hernández, Alberto
Pérez-Dueñas, Belén
Fazzari, Pietro
Aguilera-Albesa, Sergio
Espinós, Carmen
author_facet Martínez-Rubio, Dolores
Rodríguez-Prieto, Ángela
Sancho, Paula
Navarro-González, Carmen
Gorría-Redondo, Nerea
Miquel-Leal, Javier
Marco-Marín, Clara
Jenkins, Alison
Soriano-Navarro, Mario
Hernández, Alberto
Pérez-Dueñas, Belén
Fazzari, Pietro
Aguilera-Albesa, Sergio
Espinós, Carmen
author_sort Martínez-Rubio, Dolores
collection PubMed
description Peroxiredoxin 3 (PRDX3) encodes a mitochondrial antioxidant protein, which is essential for the control of reactive oxygen species homeostasis. So far, PRDX3 mutations are involved in mild-to-moderate progressive juvenile onset cerebellar ataxia. We aimed to unravel the molecular bases underlying the disease in an infant suffering from cerebellar ataxia that started at 19 months old and presented severe cerebellar atrophy and peripheral neuropathy early in the course of disease. By whole exome sequencing, we identified a novel homozygous mutation, PRDX3 p.D163E, which impaired the mitochondrial ROS defense system. In mouse primary cortical neurons, the exogenous expression of PRDX3 p.D163E was reduced and triggered alterations in neurite morphology and in mitochondria. Mitochondrial computational parameters showed that p.D163E led to serious mitochondrial alterations. In transfected HeLa cells expressing the mutation, mitochondria accumulation was detected by correlative light electron microscopy. Mitochondrial morphology showed severe changes, including extremely damaged outer and inner membranes with a notable cristae disorganization. Moreover, spherical structures compatible with lipid droplets were identified, which can be associated with a generalized response to stress and can be involved in the removal of unfolded proteins. In the patient’s fibroblasts, PRDX3 expression was nearly absent. The biochemical analysis suggested that the mutation p.D163E would result in an unstable structure tending to form aggregates that trigger unfolded protein responses via mitochondria and endoplasmic reticulum. Altogether, our findings broaden the clinical spectrum of the recently described PRDX3-associated neurodegeneration and provide new insight into the pathological mechanisms underlying this new form of cerebellar ataxia.
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spelling pubmed-96521082022-11-14 Protein misfolding and clearance in the pathogenesis of a new infantile onset ataxia caused by mutations in PRDX3 Martínez-Rubio, Dolores Rodríguez-Prieto, Ángela Sancho, Paula Navarro-González, Carmen Gorría-Redondo, Nerea Miquel-Leal, Javier Marco-Marín, Clara Jenkins, Alison Soriano-Navarro, Mario Hernández, Alberto Pérez-Dueñas, Belén Fazzari, Pietro Aguilera-Albesa, Sergio Espinós, Carmen Hum Mol Genet Original Article Peroxiredoxin 3 (PRDX3) encodes a mitochondrial antioxidant protein, which is essential for the control of reactive oxygen species homeostasis. So far, PRDX3 mutations are involved in mild-to-moderate progressive juvenile onset cerebellar ataxia. We aimed to unravel the molecular bases underlying the disease in an infant suffering from cerebellar ataxia that started at 19 months old and presented severe cerebellar atrophy and peripheral neuropathy early in the course of disease. By whole exome sequencing, we identified a novel homozygous mutation, PRDX3 p.D163E, which impaired the mitochondrial ROS defense system. In mouse primary cortical neurons, the exogenous expression of PRDX3 p.D163E was reduced and triggered alterations in neurite morphology and in mitochondria. Mitochondrial computational parameters showed that p.D163E led to serious mitochondrial alterations. In transfected HeLa cells expressing the mutation, mitochondria accumulation was detected by correlative light electron microscopy. Mitochondrial morphology showed severe changes, including extremely damaged outer and inner membranes with a notable cristae disorganization. Moreover, spherical structures compatible with lipid droplets were identified, which can be associated with a generalized response to stress and can be involved in the removal of unfolded proteins. In the patient’s fibroblasts, PRDX3 expression was nearly absent. The biochemical analysis suggested that the mutation p.D163E would result in an unstable structure tending to form aggregates that trigger unfolded protein responses via mitochondria and endoplasmic reticulum. Altogether, our findings broaden the clinical spectrum of the recently described PRDX3-associated neurodegeneration and provide new insight into the pathological mechanisms underlying this new form of cerebellar ataxia. Oxford University Press 2022-06-29 /pmc/articles/PMC9652108/ /pubmed/35766882 http://dx.doi.org/10.1093/hmg/ddac146 Text en © The Author(s) 2022. Published by Oxford University Press. All rights reserved. For Permissions, please email: journals.permissions@oup.com https://creativecommons.org/licenses/by-nc/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (https://creativecommons.org/licenses/by-nc/4.0/), which permits non-commercial re-use, distribution, and reproduction in any medium, provided the original work is properly cited. For commercial re-use, please contact journals.permissions@oup.com
spellingShingle Original Article
Martínez-Rubio, Dolores
Rodríguez-Prieto, Ángela
Sancho, Paula
Navarro-González, Carmen
Gorría-Redondo, Nerea
Miquel-Leal, Javier
Marco-Marín, Clara
Jenkins, Alison
Soriano-Navarro, Mario
Hernández, Alberto
Pérez-Dueñas, Belén
Fazzari, Pietro
Aguilera-Albesa, Sergio
Espinós, Carmen
Protein misfolding and clearance in the pathogenesis of a new infantile onset ataxia caused by mutations in PRDX3
title Protein misfolding and clearance in the pathogenesis of a new infantile onset ataxia caused by mutations in PRDX3
title_full Protein misfolding and clearance in the pathogenesis of a new infantile onset ataxia caused by mutations in PRDX3
title_fullStr Protein misfolding and clearance in the pathogenesis of a new infantile onset ataxia caused by mutations in PRDX3
title_full_unstemmed Protein misfolding and clearance in the pathogenesis of a new infantile onset ataxia caused by mutations in PRDX3
title_short Protein misfolding and clearance in the pathogenesis of a new infantile onset ataxia caused by mutations in PRDX3
title_sort protein misfolding and clearance in the pathogenesis of a new infantile onset ataxia caused by mutations in prdx3
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9652108/
https://www.ncbi.nlm.nih.gov/pubmed/35766882
http://dx.doi.org/10.1093/hmg/ddac146
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