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Biomedical subjects

I M MacDonald

Publications and source records attributed to I M MacDonald.

At least 19 recordsLinked to original sources

Autosomal dominant Stargardt-like macular dystrophy: founder effect and reassessment of genetic heterogeneity.

OBJECTIVES: To characterize a disease-associated haplotype in 7 families with autosomal dominant Stargardt-like macular dystrophy and to determine whether these families share a common ancestor. METHODS: Twenty-five polymorphic DNA markers spanning known dominant Stargardt-like gene loci were used to determine the haplotype associated with disease. In addition, an extensive genealogical investigation searching for a common ancestor shared by all of the 7 families was performed. RESULTS: We clinically evaluated 171 patients and genotyped 145 samples. The same DNA haplotype on chromosome 6q16 was shared by all evaluated affected members within the 7 families. In addition, we were able to genealogically join all of the families into one larger family consisting of 31 branches and 2314 individuals. Twenty-seven branches have known living descendants, with 7 branches having affected family members. In addition, we refined the critical region for the gene to approximately 1000 kilobases (kb) and eliminated part or all of 9 candidate disease-causing genes. CONCLUSIONS: Our study indicates that most reported cases of autosomal dominant Stargardt-like macular dystrophy in North America are part of a single larger family associated with a gene locus on chromosome 6q16. Furthermore, the DNA haplotype associated with disease is useful in excluding individuals with phenotypically similar retinal conditions. CLINICAL RELEVANCE: The disease-associated haplotype allows for more accurate genetic counseling to be given to individuals with a Stargardt-like phenotype inherited in an autosomal dominant pattern.

Chromosome Mapping↗

Leber hereditary optic neuropathy, progressive visual loss, and multiple-sclerosis-like symptoms.

PURPOSE: To report a case of Leber hereditary optic neuropathy with multiple-sclerosis-like symptoms. METHODS: Observational case report. A 34-year-old man was found to have Leber hereditary optic neuropathy and a mutation at position 11778 of the mitochondrial genome. The progression of vision loss and onset of weakness in the right leg warranted neuroimaging. RESULTS: Magnetic resonance imaging documented multiple lesions in the brain and spinal cord. CONCLUSION: Although rarely reported, progression of optic neuropathy over months has been previously documented in Leber hereditary optic neuropathy. The emergence of multiple sclerosis-like symptoms and signs in our patient may be part of the spectrum of Leber hereditary optic neuropathy or a coincidental occurrence.

Adult↗

A 5-bp deletion in ELOVL4 is associated with two related forms of autosomal dominant macular dystrophy.

Stargardt-like macular dystrophy (STGD3, MIM 600110) and autosomal dominant macular dystrophy (adMD) are inherited forms of macular degeneration characterized by decreased visual acuity, macular atrophy and extensive fundus flecks. Genetic mapping data suggest that mutations in a single gene may be responsible for both conditions, already known to bear clinical resemblance. Here we limit the minimum genetic region for STGD3 and adMD to a 0.6-cM interval by recombination breakpoint mapping and identify a single 5-bp deletion within the protein-coding region of a new retinal photoreceptor-specific gene, ELOVL4, in all affected members of STGD3 and adMD families. Bioinformatic analysis of ELOVL4 revealed that it has homology to a group of yeast proteins that function in the biosynthesis of very long chain fatty acids. Our results are therefore the first to implicate the biosynthesis of fatty acids in the pathogenesis of inherited macular degeneration.

Amino Acid Sequence↗

Autosomal dominant Stargardt-like macular dystrophy segregating in a large Canadian family.

BACKGROUND: Inherited macular dystrophies account for a major fraction of the cases of retinal degenerative disease that lead to permanent blindness. We describe the clinical and genetic findings in a Canadian family with a form of macular dystrophy resembling autosomal dominant Stargardt-like macular dystrophy. METHODS: Standard ophthalmologic examinations were performed in members of a single five-generation Alberta family. Tests of visual acuity and colour vision, fundus photography, fluorescein angiography and electroretinography were performed in 15 affected people. Blood was collected from 24 family members, and DNA was extracted for genotyping. Genetic linkage analysis was performed using polymorphic short tandem repeat microsatellite markers located on chromosome 6q, a region containing loci for several macular disorders. RESULTS: Affected family members display clinical characteristics resembling autosomal dominant Stargardt-like macular dystrophy, previously assigned to chromosome 6q (STGD3). Linkage analysis generated a peak lod score of 5.50 at an estimated recombination fraction of 0.00 for marker locus D6S300. INTERPRETATION: The family described has an autosomal dominant macular dystrophy that resembles Stargardt-like macular dystrophy. The disease locus for this family maps to an interval on chromosome 6q that overlaps that for STGD3 and other retinal dystrophy loci. These findings provide further evidence that human chromosome 6q represents a "hot spot" for retinal disorders.

Adolescent↗

Going solo.

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Delivery of Health Care↗

Tele-ophthalmology via stereoscopic digital imaging: a pilot project.

Diabetic eye disease is present in remote communities across Canada. A pilot study was designed to assess the feasibility of stereoscopic digital imaging to identify levels of diabetic retinopathy via teleophthalmology. Diabetic patients were assessed for diabetic retinopathy by seven field stereoscopic digital imaging through a dilated pupil. Images were transferred by satellite to a tertiary eye center for review by a retinal specialist. Images were viewed stereoscopically on a video monitor, with grading of all images using a modified Early Treatment Diabetic Retinopathy Study (ETDRS) classification. Patients found to have treatable diabetic retinopathy were transferred to a tertiary eye center for assessment and treatment by a retinal specialist. One hundred patients (199 eyes) had stereoscopic digital imaging of the retina. Microaneurysms were identified in 70 eyes, hard exudates in 31 eyes. Two eyes were identified with neovascularization of the disc (NVD) and 15 eyes with clinically significant macular edema (CSME). All eyes identified by stereoscopic digital imaging with treatable disease were confirmed by clinical examination with contact lens biomicroscopy. Stereoscopic digital imaging of the retina enables the identification of diabetic retinopathy. Further research is needed to delineate the sensitivity and specificity of stereoscopic digital imaging when compared to slide film and clinical examination.

Alberta↗

Summary of heritable ocular disorders and selected systemic conditions with eye findings.

A previously published table of ocular genetic disorders and inherited systemic conditions with eye findings has been updated with a comprehensive review of world literature. This tabulation of conditions is designed to provide a useful desk reference for practitioners and medical scientists. The summary will serve again as a benchmark of the significant advances that have occurred in the past few years.

Eye Diseases↗

Isolated sulfite oxidase deficiency: review of two cases in one family.

OBJECTIVE: The authors describe two cases of isolated sulfite oxidase deficiency found in one family. This is a rare autosomal-recessive disorder presenting at birth with seizures, severe neurologic disease, and ectopia lentis. It can be easily missed with metabolic screening; however, the finding of lens subluxation stresses the importance of ophthalmic assessment in making the diagnosis. DESIGN: Two observational case reports. INTERVENTION/METHODS: Ophthalmic assessment, biochemical assay for specific urinary and plasma metabolites, magnetic resonance imaging, and gene sequencing were used to make the diagnosis of the disease in the proband. The diagnosis was subsequently recognized in a previously affected sibling after the postmortem neuropathology was reviewed. Mutation analysis was performed on cultured fibroblasts from the proband to identify and categorize the specific mutation responsible for the disease in the family. From this, future prenatal detection of sulfite oxidase deficiency is possible. MAIN OUTCOME MEASURES: The diagnosis of sulfite oxidase deficiency was established in this family, enabling appropriate genetic counseling and recurrence risk estimation. RESULTS: Point mutations were found in both alleles of the sulfite oxidase gene in the proband. The first is a 623C-->A mutation, which predicts an A208D substitution, and the second is a 1109C-->A, which predicts an S370Y substitution. Both residues A208D and S370Y are critical for sulfite oxidase activity. CONCLUSIONS: Isolated sulfite oxidase deficiency is a rare heritable disease for which mutation analysis can allow accurate prenatal screening. It often is difficult to diagnose by clinical presentation alone, but the critical finding of lens subluxation accompanying seizures and diffuse neurologic disease in an infant should alert the physician to the diagnosis.

Alleles↗

A practical diagnostic test for choroideremia.

OBJECTIVE: This study aimed to establish a practical diagnostic test for choroideremia (CHM) and to show its application in a family with the clinical diagnosis of choroideremia. DESIGN: Case series. PARTICIPANTS: Sixteen males from 13 families with clinically documented CHM and unaffected normal males were enrolled in this study. METHODS: Protein extracted from either leukocytes or Epstein-Barr virus-transformed lymphocytes was subjected to sodium dodecyl sulfate-polyacrylamide gel electrophoresis. Immunoblot analysis of the protein was performed with two monoclonal antibodies, one against the CHM gene product, Rab escort protein-1 (REP-1), and the other against the alpha-subunit of farnesyl transferase. DNA was extracted from peripheral leukocytes and subjected to polymerase chain reaction-single stranded conformation polymorphism analysis using primers for the exons of the CHM gene. Where altered mobility of the DNA fragments was detected, direct sequencing of that exon was compared with the published normal sequence. RESULTS: The authors detected REP-1 in protein samples extracted from lymphoblastoid cell lines from female carriers but not from CHM males. The authors also showed the absence of REP-1 in the peripheral leukocytes of males affected with CHM. In one male who lacked REP-1, direct sequencing of exon 7 showed a cytosine-to-thymine transition mutation (Arg293X) in the CHM gene. CONCLUSIONS: The clinical diagnosis of CHM can be confirmed simply by immunoblot analysis with anti-REP-1 antibody, showing the absence of REP-1 protein in peripheral blood samples. Because all known mutations in the CHM gene create stop codons that truncate the protein product and result in absence of REP-1, the authors predict that most patients with CHM can be diagnosed by this procedure.

Adaptor Proteins, Signal Transducing↗

Summary of ocular genetic disorders and inherited systemic conditions with eye findings.

Of the close to 10,000 known inherited disorders that affect humankind, a disproportionately high number affect the eye. The total number of genes responsible for the normal structure, function, and differentiation of the eye is unknown, but the list of these genes is rapidly and constantly growing. The objective of this paper is to provide a current list of mapped and/or cloned human eye genes that are responsible for inherited diseases of the eye. The ophthalmologist should be aware of recent advances in molecular technology which have resulted in significant progress towards the identification of these genes. The implications of this new knowledge will be discussed herein.

Chromosome Mapping↗