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result(s) for
"Gardner, McKinlay"
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Deletion at ITPR1 Underlies Ataxia in Mice and Spinocerebellar Ataxia 15 in Humans
2007
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 (Itpr1(Delta18/Delta18)), 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.
Journal Article
The genetics of recurrent hydatidiform moles: new insights and lessons from a comprehensive analysis of 113 patients
2018
Hydatidiform mole is an aberrant human pregnancy characterized by early embryonic arrest and excessive trophoblastic proliferation. Recurrent hydatidiform moles are defined by the occurrence of at least two hydatidiform moles in the same patient. Fifty to eighty percent of patients with recurrent hydatidiform moles have biallelic pathogenic variants in NLRP7 or KHDC3L. However, in the remaining patients, the genotypic types of the moles are unknown. We characterized 80 new hydatidiform mole tissues, 57 of which were from patients with no mutations in the known genes, and we reviewed the genotypes of a total of 123 molar tissues. We also reviewed mutation analysis in 113 patients with recurrent hydatidiform moles. While all hydatidiform moles from patients with biallelic NLRP7 or KHDC3L mutations are diploid biparental, we demonstrate that those from patients without mutations are highly heterogeneous and only a small minority of them are diploid biparental (8%). The other mechanisms that were found to recur in patients without mutations are diploid androgenetic monospermic (24%) and triploid dispermic (32%); the remaining hydatidiform moles were misdiagnosed as moles due to errors in the analyses and/or their unusual mechanisms. We compared three parameters of genetic susceptibility in patients with and without mutations and show that patients without mutations are mostly from non-familial cases, have fewer reproductive losses, and more live births. Our data demonstrate that patients with recurrent hydatidiform moles and no mutations in the known genes are, in general, different from those with mutations; they have a milder genetic susceptibility and/or a multifactorial etiology underlying their recurrent hydatidiform moles. Categorizing these patients according to the genotypic types of their recurrent hydatidiform moles may facilitate the identification of novel genes for this entity.
Journal Article
Penetrance and expressivity of the R858H CACNA1C variant in a five‐generation pedigree segregating an arrhythmogenic channelopathy
2019
Background Isolated cardiac arrhythmia due to a variant in CACNA1C is of recent knowledge. Most reports have been of singleton cases or of quite small families, and estimates of penetrance and expressivity have been difficult to obtain. We here describe a large pedigree, from which such estimates have been calculated. Methods We studied a five‐generation family, in which a CACNA1C variant c.2573G>A p.Arg858His co‐segregates with syncope and cardiac arrest, documenting electrocardiographic data and cardiac symptomatology. The reported patients/families from the literature with CACNA1C gene variants were reviewed, and genotype–phenotype correlations are drawn. Results The range of phenotype in the studied family is wide, from no apparent effect, through an asymptomatic QT interval prolongation on electrocardiography, to episodes of presyncope and syncope, ventricular fibrillation, and sudden death. QT prolongation showed inconsistent correlation with functional cardiology. Based upon analysis of 28 heterozygous family members, estimates of penetrance and expressivity are derived. Conclusions These estimates of penetrance and expressivity, for this specific variant, may be useful in clinical practice. Review of the literature indicates that individual CACNA1C variants have their own particular genotype–phenotype correlations. We suggest that, at least in respect of the particular variant reported here, “arrhythmogenic channelopathy” may be a more fitting nomenclature than long QT syndrome. Of the numerous genes associated with Long QT Syndrome, the calcium channel gene CACNA1C is one of the more recently recognized. Several families have been reported over the past decade, often having presented due to sudden cardiac death, but the numbers in each have been insufficient to derive valid figures for the degree of associated risk in heterozygous family members. We here describe a large kindred, in which a CACNA1C R858H mutation has been segregating for 5 generations, and from which we derive useful estimates of penetrance and expressivity. As this Figure shows (diagonal numbers above subject symbols), QT intervals, in msec, are often normal or only slight long.
Journal Article
Development of a Multiplex Ligation-Dependent Probe Amplification Assay for Diagnosis and Estimation of the Frequency of Spinocerebellar Ataxia Type 15
by
Schoumans, Jacqueline
,
Zhu, Danqing
,
Nicholson, Garth A
in
Australia - epidemiology
,
Binding sites
,
Design
2009
Background: Spinocerebellar ataxia type 15 (SCA15) is a slowly progressive neurodegenerative disorder characterized by cerebellar ataxia. Mutation of the ITPR1 gene (inositol 1,4,5-triphosphate receptor, type 1) has been identified recently as the underlying cause, and in most cases the molecular defect is a multiexon deletion. To date, 5 different SCA15 families have been identified with ITPR1 gene deletion. Methods: We have designed a synthetic, dual-color multiplex ligation-dependent probe amplification (MLPA) assay that measures copy number with high precision in selected exons across the entire length of ITPR1 and the proximal region of the neighboring gene, SUMF1 (sulfatase modifying factor 1). We screened 189 idiopathic ataxic patients with this MLPA assay. Results: We identified ITPR1 deletion of exons 1–10 in the previously reported AUS1 family (4 members) and deletion of exons 1–38 in a new family (2 members). In addition to the multiexon deletions, apparent single-exon deletions identified in 2 other patients were subsequently shown to be due to single-nucleotide changes at the ligation sites. Conclusions: The frequency of ITPR1 deletions is 2.7% in known familial cases. This finding suggests that SCA15 is one of the “less common” SCAs. Although the deletions in the 5 families identified worldwide thus far have been of differing sizes, all share deletion of exons 1–10. This region may be important, both in terms of the underlying pathogenetic mechanism and as a pragmatic target for an accurate, robust, and cost-effective diagnostic analysis.
Journal Article
Paternally Inherited Inactivating Mutations of the GNAS1 Gene in Progressive Osseous Heteroplasia
by
de Beur, Suzanne Jan
,
Xu, Meiqi
,
Li, Ming
in
Albright's hereditary osteodystrophy
,
Base Sequence
,
Biological and medical sciences
2002
The rare disease progressive osseous heteroplasia (POH) is characterized by disabling skeletal-muscle and connective-tissue ossification that begins in childhood. It has been proposed that POH might have a common basis with another rare disease associated with extensive heterotopic ossification, Albright's hereditary osteodystrophy (AHO). Since heterozygous inactivating mutations in the
GNAS1
gene are known to cause AHO,
GNAS1
mutations were sought in subjects with POH. Heterozygous inactivating
GNAS1
mutations were found in 13 of 18 probands with POH, all of whom inherited the defective allele exclusively from their fathers — a finding consistent with paternal imprinting.
Bone formation is a highly regulated process that generally restricts ossification to the skeleton, yet the molecular control of bone-cell differentiation is not well understood. Progressive osseous heteroplasia (POH; number 166350 in
Mendelian Inheritance in Man
[MIM], a catalogue of inherited diseases
1
) is a rare disorder characterized by dermal ossification during childhood (Figure 1A), with progressive and extensive formation of heterotopic bone within deeper tissues (Figure 1B and Figure 1C).
2
–
6
POH first appears during infancy with the eruption of islands of heterotopic bone in the reticular dermis and subcutaneous fat. Over time, these ossified areas coalesce into plaques that may . . .
Journal Article
Autosomal Recessive Spastic Ataxia of Charlevoix‐Saguenay in Two Half‐Siblings
2026
Autosomal recessive spastic ataxia of Charlevoix‐Saguenay (ARSACS) is caused by biallelic pathogenic variants in the SACS gene. We report the clinical, radiologic and neurophysiologic features of a pair of half‐siblings who presented with progressive cerebellar ataxia, peripheral neuropathy and upper motor neuron signs. After significant diagnostic delay, genetic testing revealed both harboured a shared, paternally inherited microdeletion encompassing the SACS gene, and each harboured a different single nucleotide variant in SACS, each likely maternally inherited. Recognition of the clinical and radiologic phenotype of ARSACS may facilitate early diagnosis of this disorder even in the face of uncommon inheritance patterns.
Journal Article
TRPV4 related skeletal dysplasias: a phenotypic spectrum highlighted byclinical, radiographic, and molecular studies in 21 new families
by
Aftimos, Salim
,
Savarirayan, Ravi
,
Zacharin, Margaret
in
Adult
,
Autosomal Dominant Brachyolmia (ADBO)
,
Bone Diseases, Developmental - classification
2011
Background
The
TRPV4
gene encodes a calcium-permeable ion-channel that is widely expressed, responds to many different stimuli and participates in an extraordinarily wide range of physiologic processes. Autosomal dominant brachyolmia, spondylometaphyseal dysplasia Kozlowski type (SMDK) and metatropic dysplasia (MD) are currently considered three distinct skeletal dysplasias with some shared clinical features, including short stature, platyspondyly, and progressive scoliosis. Recently,
TRPV4
mutations have been found in patients diagnosed with these skeletal phenotypes.
Methods and Results
We critically analysed the clinical and radiographic data on 26 subjects from 21 families, all of whom had a clinical diagnosis of one of the conditions described above: 15 with MD; 9 with SMDK; and 2 with brachyolmia. We sequenced
TRPV4
and identified 9 different mutations in 22 patients, 4 previously described, and 5 novel. There were 4 mutation-negative cases: one with MD and one with SMDK, both displaying atypical clinical and radiographic features for these diagnoses; and two with brachyolmia, who had isolated spine changes and no metaphyseal involvement.
Conclusions
Our data suggest the
TRPV4
skeletal dysplasias represent a continuum of severity with areas of phenotypic overlap, even within the same family. We propose that AD brachyolmia lies at the mildest end of this spectrum and, since all cases described with this diagnosis and
TRPV4
mutations display metaphyseal changes, we suggest that it is not a distinct entity but represents the mildest phenotypic expression of SMDK.
Journal Article
High frequency hearing loss correlated with mutations in the GJB2 gene
by
Kelly, Therese
,
Wilcox, Leah J
,
Kamarinos, Maria
in
Audiometry
,
Australia
,
Biological and medical sciences
2000
Genetic hearing impairment affects approximately 1/2000 live births. Mutations in one gene, GJB2, coding for connexin 26 cause 10%-20% of all genetic sensorineural hearing loss. Mutation analysis in the GJB2 gene and audiology were performed on 106 families presenting with at least one child with congenital hearing loss. The families were recruited from a hospital-based multidisciplinary clinic, which functions to investigate the aetiology of sensorineural hearing loss in children and which serves an ethnically diverse population. In 74 families (80 children), the aetiology was consistent with non-syndromic recessive hearing loss. Six different connexin 26 mutations, including one novel mutation, were identified. We show that GJB2 mutations cause a range of phenotypes from mild to profound hearing impairment and that loss of hearing in the high frequency range (4000-8000 Hz) is a characteristic feature in children with molecularly diagnosed connexin 26 hearing impairment. We also demonstrate that this type of audiology and high frequency hearing loss is found in a similar-sized group of deaf children in whom a mutation could only be found in one of the connexin 26 alleles, suggesting connexin 26 involvement in the aetiology of hearing loss in these cases. In our study of the M34T mutation, only compound heterozygotes exhibited hearing loss, suggesting autosomal recessive inheritance.
Journal Article
Periventricular Heterotopia in Common Microdeletion Syndromes
2010
Periventricular heterotopia (PH) is a brain malformation characterised by heterotopic nodules of neurons lining the walls of the cerebral ventricles. Mutations in FLNA account for 20–24% of instances but a majority have no identifiable genetic aetiology. Often the co-occurrence of PH with a chromosomal anomaly is used to infer a new locus for a Mendelian form of PH. This study reports four PH patients with three different microdeletion syndromes, each characterised by high-resolution genomic microarray. In three patients the deletions at 1p36 and 22q11 are conventional in size, whilst a fourth child had a deletion at 7q11.23 that was larger in extent than is typically seen in Williams syndrome. Although some instances of PH associated with chromosomal deletions could be attributed to the unmasking of a recessive allele or be indicative of more prevalent subclinical migrational anomalies, the rarity of PH in these three microdeletion syndromes and the description of other non-recurrent chromosomal defects do suggest that PH may be a manifestation of multiple different forms of chromosomal imbalance. In many, but possibly not all, instances the co-occurrence of PH with a chromosomal deletion is not necessarily indicative of uncharacterised underlying monogenic loci for this particular neuronal migrational anomaly.
Journal Article
Diagnostic Genetics at a Distance: Von Hippel-Lindau Disease and a Novel Mutation
by
Love, Donald R.
,
Prosser, Debra O.
,
Gardner, R. J. McKinlay
in
Brain cancer
,
Deoxyribonucleic acid
,
Diagnosis
2013
Genetic testing at a distance is commonplace where members of a family with a segregating germline mutation are geographically separated. For the most part, this challenge is addressed through the intervention of health professionals in taking and/or processing blood samples for subsequent couriering of DNA to a referral laboratory. In some circumstances, however, the collecting of pivotal clinical material may involve direct patient involvement. We describe such a situation where noninvasive saliva samples were provided by members of a family manifesting Von Hippel-Lindau (VHL) disease. The analysis identified a novel mutation in the VHL gene that was used to exclude other family members as being at risk of VHL disease.
Journal Article