Deletion at ITPR1 Underlies Ataxia in Mice and Spinocerebellar Ataxia 15 in Humans
Open Access
- 22 June 2007
- journal article
- research article
- Published by Public Library of Science (PLoS) in PLoS Genetics
- Vol. 3 (6) , e108
- https://doi.org/10.1371/journal.pgen.0030108
Abstract
We observed a severe autosomal recessive movement disorder in mice used within our laboratory. We pursued a series of experiments to define the genetic lesion underlying this disorder and to identify a cognate disease in humans with mutation at the same locus. Through linkage and sequence analysis we show here that this disorder is caused by a homozygous in-frame 18-bp deletion in Itpr1 (Itpr1Δ18/Δ18), encoding inositol 1,4,5-triphosphate receptor 1. A previously reported spontaneous Itpr1 mutation in mice causes a phenotype identical to that observed here. In both models in-frame deletion within Itpr1 leads to a decrease in the normally high level of Itpr1 expression in cerebellar Purkinje cells. Spinocerebellar ataxia 15 (SCA15), a human autosomal dominant disorder, maps to the genomic region containing ITPR1; however, to date no causal mutations had been identified. Because ataxia is a prominent feature in Itpr1 mutant mice, we performed a series of experiments to test the hypothesis that mutation at ITPR1 may be the cause of SCA15. We show here that heterozygous deletion of the 5′ part of the ITPR1 gene, encompassing exons 1–10, 1–40, and 1–44 in three studied families, underlies SCA15 in humans. We have identified a spontaneous in-frame deletion mutation in the gene Itpr1 that causes a recessive movement disorder in mice. In an attempt to define whether any similar disease occurs in humans we performed a literature search for diseases linked to the human chromosomal region containing ITPR1. We identified the disease spinocerebellar ataxia 15 as linked to this region. High-density genomic analysis of affected members from three families revealed that disease in these patients was caused by deletion of a large portion of the region containing ITPR1. We show here that this mutation results in a dramatic reduction in ITPR1 in cells from these patients. These data show convincingly that ITPR1 deletion underlies spinocerebellar ataxia 15 in humans.Keywords
This publication has 15 references indexed in Scilit:
- The contactin 4 gene locus at 3p26 is a candidate gene of SCA16Neurology, 2006
- Discovery Genetics: Serendipity in Basic ResearchILAR Journal, 2005
- Molecular and functional analysis ofSUMF1 mutations in multiple sulfatase deficiencyHuman Mutation, 2004
- Spinocerebellar ataxia type 15 (sca15) maps to 3p24.2-3pter:Neurobiology of Disease, 2003
- The Multiple Sulfatase Deficiency Gene Encodes an Essential and Limiting Factor for the Activity of SulfatasesCell, 2003
- A new autosomal dominant pure cerebellar ataxiaNeurology, 2001
- Type 1 inositol 1,4,5-trisphosphate receptor knock-out mice: their phenotypes and their meaning in neuroscience and clinical practiceJournal of Molecular Medicine, 1999
- The Type 1 Inositol 1,4,5-Trisphosphate Receptor Gene Is Altered in theopisthotonosMouseJournal of Neuroscience, 1997
- Autosomal dominant cerebellar ataxia (SCA6) associated with small polyglutamine expansions in the α1A-voltage-dependent calcium channelNature Genetics, 1997
- Ataxia and epileptic seizures in mice lacking type 1 inositol 1,4,5-trisphosphate receptorNature, 1996