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Biomedical subjects

M Leppert

Publications and source records attributed to M Leppert.

At least 109 records · Page 6Linked to original sources

Tyrosine hydroxylase gene not linked to manic-depression in seven of eight pedigrees.

We ascertained 8 multigenerational pedigrees afflicted with multiple cases of bipolar and recurrent major depressive disorder. Alterations in dopaminergic and noradrenergic neurotransmission have been implicated in the pathogenesis of this disease, and tyrosine hydroxylase (TH) is the rate-limiting enzyme in the synthesis of these two catecholamines. As TH mutations could underlie susceptibility to manic-depression, we carried out a linkage analysis between this disease in 8 families and two RFLP probes that map to the TH gene region on the short arm of chromosome 11. Evidence of linkage was not found in 7 of 8 kindreds.

Bipolar Disorder↗

Evidence of genetic heterogeneity in five kindreds with familial hypertrophic cardiomyopathy.

BACKGROUND: Recently, two families with hypertrophic cardiomyopathy have been shown to have mutations in the cardiac beta-myosin heavy chain gene (beta-MHC) located on the long arm of chromosome 14. METHODS AND RESULTS: We have performed linkage analysis of five newly ascertained pedigrees with more than 50 chromosomal markers detecting polymorphisms. Our findings confirm the linkage to beta-MHC gene locus on chromosome 14 in one family (LOD score, 4.50) and suggest linkage to the same gene in another kindred. Chromosome 14 markers were not linked to the disease gene in the other three kindreds, however, and a test for genetic heterogeneity was statistically significant. Moreover, markers for the beta-MHC gene identified affected individuals who were recombinants with respect to this gene and the disease phenotype in these three kindreds. CONCLUSIONS: These results provide conclusive evidence that hypertrophic cardiomyopathy in separate families is caused by mutations in disease genes at two or more locations in the genome.

Adolescent↗

Linkage of atypical myotonia congenita to a sodium channel locus.

We performed linkage analysis in a pedigree segregating an allele for autosomal dominant, painful myotonia that is potassium sensitive and responsive to acetazolamide. This allele was tightly linked to a skeletal-muscle, sodium channel locus which is now a candidate for the site of the mutational defect in acetazolamide-responsive myotonia congenita. Since this sodium channel locus is completely linked to the disease allele in all hyperkalemic periodic paralysis and paramyotonia congenita pedigrees studied, the molecular alteration causing acetazolamide-responsive myotonia congenita is likely an allelic defect in this human, skeletal-muscle, sodium channel gene.

Chromosome Mapping↗

Discordance of the T-cell receptor alpha-chain gene in familial multiple sclerosis.

We studied restriction fragment length polymorphisms of the T-cell receptor alpha-chain (TCR alpha) gene in DNA obtained from 99 individuals of 14 multiplex families with multiple sclerosis (MS). Thirty-four family members had definite MS and two had probable MS. Six normal family members had abnormal cranial MRIs. Linkage analysis utilized constructed haplotypes of EcoRV, Sst I, and Taq I polymorphisms. With penetrance values from 0.1 to 0.7, and scoring the normal individuals with abnormal MRIs as either unknown or affected, LOD scores were between -3.16 and -7.95 for the autosomal dominant model. For the autosomal recessive model with a penetrance range from 0.1 to 1, the LOD scores ranged from -6.77 to -23.08. These findings do not support a direct role of TCR alpha in the inheritance of MS.

Adult↗

Linkage of a cardiac arrhythmia, the long QT syndrome, and the Harvey ras-1 gene.

Genetic factors contribute to heart disease. In this study, linkage analyses have been performed in a family that is predisposed to sudden death from cardiac arrhythmias, the long QT syndrome (LQT). A DNA marker at the Harvey ras-1 locus (H-ras-1) was linked to LQT with a logarithm of the likelihood ratio for linkage (lod score) of 16.44 at theta = 0, which confirms the genetic basis of this trait and localizes this gene to the short arm of chromosome 11. As no recombination was observed between LQT and H-ras-1, and there is a physiological rationale for its involvement in this disease, ras becomes a candidate for the disease locus.

Chromosome Mapping↗

Discordance of T-cell receptor beta-chain genes in familial multiple sclerosis.

Restriction fragment length polymorphisms of the T-cell receptor beta-chain gene were studied in DNA obtained from 96 individuals from 14 multiplex families with multiple sclerosis (MS). Thirty-four family members had definite MS and two had probable MS. Five normal family members had abnormal findings on cranial magnetic resonance imaging (MRI) scans. Linkage analysis was performed using the BglII and the KpnI polymorphisms. With penetrance values from 0.1 to 0.7, and altering the scoring of the normal individuals with abnormal findings on MRI scans from "unknown" to "affected," log of the odds scores between -4.59 to -12.76 were found for the autosomal dominant model. For the autosomal recessive model with a penetrance range from 0.1 to 1.0, the LOD scores ranged from -8.20 to -32.98. These findings do not support a direct role of T-cell receptor beta-chain gene in the inheritance of MS.

Alleles↗

Mapping of the MYC gene to band 8q24.12----q24.13 by R-banding and distal to fra(8)(q24.11), FRA8E, by fluorescence in situ hybridization.

The MYC gene was mapped to R-banded human prometaphase chromosomes and to chromosomes expressing fra(8)(q24.11) by fluorescence in situ hybridization. By high-resolution banding analysis, the fluorescent signals were localized to R-positive band q24.12----q24.13 of the long arm of chromosome 8. Furthermore, the signals were localized near the middle part, q24.12----q24.13, of the distal portion of fra(8)(q24.11) expression. Thus, the precise localization of MYC was to the subband 8q24.12----q24.13.

Chromosome Banding↗

Analysis in a large hyperkalemic periodic paralysis pedigree supports tight linkage to a sodium channel locus.

Hyperkalemic periodic paralysis (HYPP) is an autosomal dominant muscle disease with electrophysiological abnormalities suggesting a defect in a voltage-gated sodium channel (NaCh) gene. A human NaCh gene was recently shown to cosegregate with the disease allele in a family with HYPP. Using an independent clone, we have demonstrated close genetic linkage between an NaCh gene and the HYPP locus in another family. With physiological data demonstrating abnormal NaCh function in HYPP patients, the absence of any obligate recombinations in the two families strengthens the argument that this NaCh gene is the site of the defect in this disorder.

Adult↗

Paramyotonia congenita and hyperkalemic periodic paralysis map to the same sodium-channel gene locus.

Paramyotonia congenita (PC), an autosomal dominant muscle disease, shares some clinical and electrophysiological similarities with another myotonic muscle disorder, hyperkalemic periodic paralysis (HYPP). However, clinical and electrophysiologic differences allow differentiation of the two disorders. The HYPP locus was recently shown to be linked to a skeletal muscle sodium-channel gene probe. We now report that PC maps to the same locus (LOD score 4.4, theta = 0 at assumed penetrance of .95). These linkage results, coupled with physiological data demonstrating abnormal sodium-channel function in patients with PC, implicate a sodium-channel gene as an important candidate for the site of mutation responsible for PC. Furthermore, this is strong evidence for the hypothesis that PC and HYPP are allelic disorders.

DNA Probes↗

Consistent linkage of the long-QT syndrome to the Harvey ras-1 locus on chromosome 11.

The long-QT syndrome (LQT; Ward-Romano syndrome) is a cardiac disorder that is inherited as an autosomal dominant trait. Affected family members suffer from recurrent syncope and sudden death due to ventricular arrhythmias. Recently, we identified a DNA marker on the short arm of chromosome 11 (the Harvey ras-1 locus [H-ras-1]) that was completely linked to the LQT locus in one large family. In the study presented here, we performed linkage investigations on six new and unrelated families with LQT. The LQT locus was again completely linked to the H-ras-1 locus in all families examined, with a combined lod score of 5.25 at a recombination fraction of 0. This work confirms our previous assignment of the LQT locus to chromosome 11p and supports the hypothesis that LQT is genetically homogeneous. As no obligate recombinants were identified in either this or our previous study, the H-ras-1 protooncogene remains a candidate for the LQT disease gene. Identification of LQT families with locus homogeneity is an important step in the development of a refined genetic map of this locus and will help determine whether the H-ras-1 marker would be of general use for presymptomatic diagnosis of this potentially fatal, but treatable, disorder.

Chromosome Mapping↗

Multiple mutations in highly conserved residues are found in mildly affected cystic fibrosis patients.

We have identified three different point mutations in the coding region of the cystic fibrosis transmembrane conductance regulator (CFTR) gene. Each mutation segregates with the disease in two- or three-generation pedigrees and is not found on the normal chromosome of any documented cystic fibrosis carrier. One of the mutations is found in two independent families that contain at least one individual with a mild course of disease. All of these alterations replace charged amino acids with less polar residues and are found in the putative transmembrane sections of the molecule. The mutated amino acids are found to be conserved in both rodents and amphibians and lie in a region of CFTR that is believed to form a channel in the membrane. Although these alterations are rare, they provide important clues to functionally important regions of the molecule.

Adenosine Triphosphate↗