4.7 Article

Heterozygous PNPT1 Variants Cause Spinocerebellar Ataxia Type 25

期刊

ANNALS OF NEUROLOGY
卷 92, 期 1, 页码 122-137

出版社

WILEY
DOI: 10.1002/ana.26366

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资金

  1. program Investissements d'avenir [ANR-10-IAIHU-06, ANR-11-INBS-0011]
  2. 6th PCRD (EUROSCA)
  3. 7th PCRD (Neuromics) et H2020 (SOLVE-RD)
  4. Agence Nationale de la Recherche (ANR SPATAX-QUEST)
  5. Association Connaitre les Syndromes Cerebelleux
  6. Fondation Maladies Rares
  7. NHMRC [GNT2001513]
  8. Independent Research Institute Infrastructure Support Scheme
  9. Victorian State Government Operational Infrastructure Program
  10. Austin Health Adult Undiagnosed Diseases Program - Austin Health
  11. Victorian Medical Research Acceleration Fund
  12. Australian National Health and Medical Research Council (NHMRC) [1102971]
  13. Australian Research Training Program Scholarship
  14. Australian Postgraduate Award
  15. Edith Moffat fund
  16. NHMRC Early Career Fellowship
  17. Melbourne Children's Clinician Scientist Fellowship
  18. NHMRC Early Career Fellowship [1157776]
  19. Vincent Chiodo Foundation
  20. Italian Ministry for Education, University and Research (Ministero dell'Istruzione, dell'Universita e della Ricerca-MIUR) [D15D18000410001]
  21. NHMRC EL1 Investigator Grant [1194364]
  22. National Health and Medical Research Council of Australia [1157776, 1194364] Funding Source: NHMRC
  23. Agence Nationale de la Recherche (ANR) [ANR-11-INBS-0011] Funding Source: Agence Nationale de la Recherche (ANR)

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This study identifies PNPT1 as a new causal gene for SCA25 and highlights the biological links between alterations of mtRNA trafficking, interferonopathies and ataxia.
Objective Dominant spinocerebellar ataxias (SCA) are characterized by genetic heterogeneity. Some mapped and named loci remain without a causal gene identified. Here we applied next generation sequencing (NGS) to uncover the genetic etiology of the SCA25 locus. Methods Whole-exome and whole-genome sequencing were performed in families linked to SCA25, including the French family in which the SCA25 locus was originally mapped. Whole exome sequence data were interrogated in a cohort of 796 ataxia patients of unknown etiology. Results The SCA25 phenotype spans a slowly evolving sensory and cerebellar ataxia, in most cases attributed to ganglionopathy. A pathogenic variant causing exon skipping was identified in the gene encoding Polyribonucleotide Nucleotidyltransferase PNPase 1 (PNPT1) located in the SCA25 linkage interval. A second splice variant in PNPT1 was detected in a large Australian family with a dominant ataxia also mapping to SCA25. An additional nonsense variant was detected in an unrelated individual with ataxia. Both nonsense and splice heterozygous variants result in premature stop codons, all located in the S1-domain of PNPase. In addition, an elevated type I interferon response was observed in blood from all affected heterozygous carriers tested. PNPase notably prevents the abnormal accumulation of double-stranded mtRNAs in the mitochondria and leakage into the cytoplasm, associated with triggering a type I interferon response. Interpretation This study identifies PNPT1 as a new SCA gene, responsible for SCA25, and highlights biological links between alterations of mtRNA trafficking, interferonopathies and ataxia. ANN NEUROL 2022

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