Paroxysmal non-kinesigenic dyskinesia is caused by mutations of the MR-1 mitochondrial targeting sequence

Daniele Ghezzi1, Carlo Viscomi, Alessandra Ferlini

  • 1Pierfranco and Luisa Mariani Center for the Study of Children's Mitochondrial Disorders, National Neurological Institute Carlo Besta, Milan, Italy.

Human Molecular Genetics
|January 7, 2009
PubMed

Insights

Paroxysmal non-kinesigenic dyskinesia (PNKD) is linked to mutations in the MR-1 gene. The disease mechanism involves a faulty mitochondrial targeting sequence, not the mature protein itself.

Area of Science:

  • Neurogenetics
  • Molecular Biology
  • Cell Biology

Background:

  • Paroxysmal non-kinesigenic dyskinesia (PNKD) is an inherited movement disorder.
  • The MR-1 gene, responsible for PNKD, has three splice variants: MR-1L, MR-1M, and MR-1S.
  • Previous studies identified two mutations (A7V, A9V) in the N-terminal region of MR-1.

Observation:

  • A third mutation (A33P) was identified in a new PNKD patient within the same N-terminal region.
  • MR-1M localizes to the Golgi, ER, and plasma membrane, while MR-1L and MR-1S are mitochondrial proteins.
  • A 39-amino acid N-terminal mitochondrial targeting sequence (MTS) facilitates import of MR-1L and MR-1S into mitochondria.

Findings:

  • The MTS, containing all identified PNKD mutations, is cleaved during protein maturation.
  • Mature MR-1S and MR-1L proteins in PNKD patients are identical to those in healthy individuals.
  • No differences in import efficiency or maturation were observed between wild-type and mutant MR-1 variants.

Implications:

  • PNKD pathogenesis may stem from a detrimental effect of the MTS itself.
  • This suggests a novel disease mechanism for PNKD, distinct from previously assumed protein dysfunction.
  • Understanding the MTS's role could lead to new therapeutic strategies for PNKD.

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