NPTX1 mutations trigger endoplasmic reticulum stress and cause autosomal dominant cerebellar ataxia

Author:

Coutelier Marie1,Jacoupy Maxime123,Janer Alexandre23,Renaud Flore45,Auger Nicolas15,Saripella Ganapathi-Varma6,Ancien François7,Pucci Fabrizio7,Rooman Marianne7,Gilis Dimitri7,Larivière Roxanne8,Sgarioto Nicolas8,Valter Rémi15,Guillot-Noel Léna15,Le Ber Isabelle1,Sayah Sabrina1,Charles Perrine9,Nümann Astrid10,Pauly Martje G1112,Helmchen Christoph11,Deininger Natalie13,Haack Tobias B1314,Brais Bernard8,Brice Alexis1,Trégouët David-Alexandre615,El Hachimi Khalid H15,Shoubridge Eric A23,Durr Alexandra1,Stevanin Giovanni15

Affiliation:

1. Sorbonne Université, Institut du Cerveau—Paris Brain Institute, ICM, INSERM, CNRS, APHP, Pitié-Salpêtrière University Hospital, 75013 Paris, France

2. Department of Human Genetics, McGill University, H3A 0C7 Montreal, Canada

3. Montreal Neurological Institute, McGill University, H3A 2B4 Montreal, Canada

4. CNRS UMR 9019, Gustave Roussy, Université Paris-Saclay, 94805 Villejuif, France

5. EPHE, PSL Research University, 75014 Paris, France

6. ICAN institute, Pitié-Salpêtrière University Hospital, INSERM, Sorbonne Université, 75013 Paris, France

7. Computational Biology and Bioinformatics, Université libre de Bruxelles, 1050 Bruxelles, Belgium

8. Department of Neurology and Neurosurgery, Montreal Neurological Institute, McGill University, H3A 2B4 Montreal, Canada

9. Department of Genetics, APHP, Pitié-Salpêtrière University Hospital, 75013 Paris, France

10. Department of Neurology, Charité University Hospital Berlin, 10117 Berlin, Germany

11. Department of Neurology, University Hospital Schleswig Holstein Campus Luebeck, 23562 Luebeck, Germany

12. Institute of Neurogenetics, University of Luebeck, 23562 Luebeck, Germany

13. Institute of Medical Genetics and Applied Genomics, University of Tübingen, 72076 Tuebingen, Germany

14. Centre for Rare Diseases, University of Tübingen, 72076 Tuebingen, Germany

15. Université de Bordeaux, INSERM U1219, Bordeaux Population Health Research Center, 33076 Bordeaux, France

Abstract

Abstract With more than forty causative genes identified so far, autosomal dominant cerebellar ataxias exhibit a remarkable genetic heterogeneity. Yet, half the patients are lacking a molecular diagnosis. In a large family with nine sampled affected members, we performed exome sequencing combined with whole-genome linkage analysis. We identified a missense variant in NPTX1, NM_002522.3: c.1165G>A: p.G389R, segregating with the phenotype. Further investigations with whole exome sequencing and an amplicon-based panel identified four additional unrelated families segregating the same variant, for whom a common founder effect could be excluded. A second missense variant, NM_002522.3: c.980A>G: p.E327G, was identified in a fifth familial case. The NPTX1-associated phenotype consists of a late-onset, slowly progressive, cerebellar ataxia, with downbeat nystagmus, cognitive impairment reminiscent of cerebellar cognitive affective syndrome, myoclonic tremor and mild cerebellar vermian atrophy on brain imaging. NPTX1 encodes the neuronal pentraxin 1, a secreted protein with various cellular and synaptic functions. Both variants affect conserved amino-acid residues and are extremely rare or absent from public databases. In COS7 cells, overexpression of both neuronal pentraxin 1 variants altered endoplasmic reticulum morphology and induced ATF6-mediated endoplasmic reticulum stress, associated with cytotoxicity. In addition, the p. E327G variant abolished neuronal pentraxin 1 secretion, as well as its capacity to form a high molecular weight complex with the wild-type protein. Co-immunoprecipitation experiments coupled with mass spectrometry analysis demonstrated abnormal interactions of this variant with the cytoskeleton. In agreement with these observations, in silico modelling of the neuronal pentraxin 1 complex evidenced a destabilizing effect for the p. E327G substitution, located at the interface between monomers. On the contrary, the p. G389 residue, located at the protein surface, had no predictable effect on the complex stability. Our results establish NPTX1 as a new causative gene in autosomal dominant cerebellar ataxias. We suggest that variants in NPTX1 can lead to cerebellar ataxia due to endoplasmic reticulum stress, mediated by ATF6, and associated to a destabilization of NP1 polymers in a dominant-negative manner for one of the variants.

Publisher

Oxford University Press (OUP)

Subject

Clinical Neurology

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