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

Author:

Martínez-Rubio Dolores12,Rodríguez-Prieto Ángela3,Sancho Paula1,Navarro-González Carmen3,Gorría-Redondo Nerea45,Miquel-Leal Javier3,Marco-Marín Clara6,Jenkins Alison1,Soriano-Navarro Mario7,Hernández Alberto8,Pérez-Dueñas Belén9,Fazzari Pietro3,Aguilera-Albesa Sergio45,Espinós Carmen121011ORCID

Affiliation:

1. Rare Neurodegenerative Diseases Laboratory, Centro de Investigación Príncipe Felipe (CIPF) , Valencia 46012 , Spain

2. Joint Unit CIPF-IIS La Fe Rare Diseases , Valencia 46012 , Spain

3. Cortical Circuits in Health and Disease Laboratory, Centro de Investigación Príncipe Felipe (CIPF) , Valencia 46012 , Spain

4. Pediatric Neurology Unit , Department of Pediatrics, , Navarrabiomed, Pamplona 31008 , Spain

5. Complejo Hospitalario de Navarra , Department of Pediatrics, , Navarrabiomed, Pamplona 31008 , Spain

6. Structural Enzymopathology Unit, Instituto de Biomedicina de Valencia (IBV), Consejo Superior de Investigaciones Científicas (CSIC), CIBER de Enfermedades Raras (CIBERER-ISCIII) , Valencia 46010 , Spain

7. Electron Microscopy Core Facility, Centro de Investigación Príncipe Felipe (CIPF) , Valencia 46012 , Spain

8. Service of Advanced Light Microscopy, Centro de Investigación Príncipe Felipe (CIPF) , Valencia 46012 , Spain

9. Department of Pediatric Neurology, Hospital Universitari Vall d'Hebron, Vall d'Hebron Institut de Recerca , Barcelona 08035 , Spain

10. Biotechnology Department , Faculty of Veterinary and Experimental Sciences, , Valencia 46001 , Spain

11. Universidad Católica de Valencia San Vicente Mártir , Faculty of Veterinary and Experimental Sciences, , Valencia 46001 , Spain

Abstract

Abstract 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.

Funder

European Regional Development Fund

Spanish Ministry of Economy and Competitiveness

Fundació la Marató de TV3

Generalitat Valenciana

Spanish Ministry of Science and Innovation

Publisher

Oxford University Press (OUP)

Subject

Genetics (clinical),Genetics,Molecular Biology,General Medicine

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