Paroxysmal non-kinesigenic dyskinesia (PNKD) is an autosomal-dominant movement disorder characterized by attacks of dystonia, chorea and athetosis. Myofibrillogenesis regulator-1 (MR-1), the gene responsible for PNKD, is transcribed into three alternatively spliced forms: long (MR-1L), medium (MR-1M) and small (MR-1S). Two mutations, A7V and A9V, were previously discovered in the N-terminal region common to MR-1L and MR-1S. We now found a third mutation, A33P, in a new PNKD patient in the same region. Contrary to previous reports, we show here that the mutation-free MR-1M is localized in the Golgi apparatus, ER and plasma membrane, whereas both MR-1L and MR-1S isoforms are mitochondrial proteins, imported into the organelle thanks to a 39 amino acid-long, N-terminal mitochondrial targeting sequence (MTS). The MTS, which contains all three PNKD mutations, is then cleaved off the mature proteins before their insertion in the inner mitochondrial membrane. Therefore, mature MR-1S and MR-1L of PNKD patients are identical to those of normal subjects. We found no difference in import efficiency and protein maturation between wild-type and mutant MR-1 variants. These results indicate that PNKD is due to a novel disease mechanism based on a deleterious action of the MTS.
Download full-text PDF |
Source |
---|---|
http://dx.doi.org/10.1093/hmg/ddn441 | DOI Listing |
Tremor Other Hyperkinet Mov (N Y)
December 2024
Veracity Neuroscience LLC, Memphis, Tennessee, USA.
Background: mutations are associated with a diverse set of distinct neurological syndromes and intermediate phenotypes that may include extra-neural features. Overall, genotype-phenotype correlations are weak. There are no consensus treatments.
View Article and Find Full Text PDFMov Disord
December 2024
Suna and İnan Kıraç Foundation, Neurodegeneration Research Laboratory, KUTTAM, School of Medicine, Koç University, Istanbul, Turkey.
Background: ATX-FGF/SCA27A has been exclusively associated with heterozygous variants in the FGF14 gene, presenting with postural tremor, slowly progressive cerebellar ataxia, and psychiatric and behavioral disturbances.
Objectives: This study describes the first case of ATX-FGF/SCA27A linked to a biallelic frameshift variant in the FGF14 gene.
Methods: Whole-exome sequencing (WES) was conducted using the Illumina NovaSeq 6000 platform, and the identified variant was confirmed using Sanger sequencing.
Mov Disord
December 2024
Unit of Medical Genetics and Neurogenetics, Fondazione IRCCS Istituto Neurologico Carlo Besta, Milan, Italy.
eNeurologicalSci
September 2024
Department of Pediatrics and Child Health, Kurume University School of Medicine, 67 Asahi-machi, Kurume, Fukuoka 830-0011, Japan.
Familial paroxysmal non-kinesigenic dyskinesia, which is a major form of paroxysmal dyskinesias, is characterized by intermittent attacks that include one side, subsequently spreading to the other side, involving the limbs and face, and is triggered by caffeine, alcohol, emotional stress, fatigue, and sleep deprivation, but not by sudden movement. A 26-year-old man had experienced dystonic movements and a choreiform right arm spreading to his arms, legs, and face since the age of one year. Oral dyskinesias and, rarely, dysarthria were also observed.
View Article and Find Full Text PDFFront Vet Sci
July 2024
Vet Oracle Teleradiology, Bedford, United Kingdom.
Paroxysmal dyskinesias (PDs) are a group of involuntary, hyperkinetic movement disorders that recur episodically and may last seconds to hours. An important feature of PD is that there is no loss of consciousness during the episode. Using a clinical classification, three main types of PDs have been distinguished in canine PD: (1) paroxysmal kinesigenic dyskinesia (PKD) that commences after (sudden) movements, (2) paroxysmal non-kinesigenic dyskinesia (PNKD) not associated with exercise and can occur at rest, and (3) paroxysmal exertion-induced dyskinesia (PED) associated with fatigue.
View Article and Find Full Text PDFEnter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!