Two RFLPs near HOX2@/NGFR at locus D17S444E.
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Biomedical subjects
Publications and source records attributed to K K Kidd.
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Family, twin, and adoption studies suggest that genetic factors play an important role in the etiology of schizophrenia. Detection of single gene(s) involved in a higher susceptibility to a hereditary disease is possible with linkage analysis. The effects of serotonin2-receptor antagonists on symptoms of schizophrenia suggest that a mutation in the gene coding for this receptor subtype might be involved in the pathophysiology of this disease. Recently a copy DNA encoding the serotonin 5-HT2 receptor has been isolated and with a human 5-HT2 receptor copy DNA probe the HTR2 locus has been mapped to chromosome 13. Using multipoint linkage analysis between schizophrenia and genetic markers spanning the region of the HTR2 locus, we were able to exclude linkage between this candidate gene and schizophrenia in a Swedish kindred. Given this result, we conclude that the serotonin 5-HT2 receptor gene itself is not a major susceptibility gene for schizophrenia in this family.
The gene responsible for multiple endocrine neoplasia type 2A (MEN 2A) has been localized to the pericentromeric region of chromosome 10. Several markers that fail to recombine with MEN2A have been identified, including D10Z1, D10S94, D10S97, and D10S102. Meiotic mapping in the MEN2A region is limited by the paucity of critical crossovers identified and by the dramatically reduced rates of recombination in males. Additional approaches to mapping loci in the pericentromeric region of chromosome 10 are required. We have undertaken the generation of a detailed physical map by radiation hybrid mapping. Here we report the development of a radiation hybrid panel and its use in the mapping of new DNA markers in pericentromeric chromosome 10. The radiation-reduced hybrids used for mapping studies all retain small subchromosomal fragments that include both D10S94 and D10Z1. One hybrid was selected as the source of DNA for cloning. One hundred five human recombinant clones were isolated from a lambda library made with pp11A DNA. We have completed regional mapping of 22 of those clones using our radiation hybrid mapping panel. Seven markers have been identified and, when taken together with previously meiotically mapped markers, define eight radiation hybrid map intervals between D10S34 and RBP3. The identical order is found for a number of these using either the radiation hybrid mapping panel or the meiotic mapping panel. We believe that this combination cloning and mapping approach will facilitate the precise positioning of new markers in pericentromeric chromosome 10 and will help in refining further the localization of MEN2A.
Familial multiple endocrine neoplasia type 2A (MEN 2A) is a dominantly inherited cancer syndrome characterized by tumors in tissues derived from the neural crest. The disease manifests as medullary carcinoma of the thyroid, pheochromocytoma, and hyperparathyroidism. The MEN2A locus has been mapped near the centromere of chromosome 10 by linkage analysis. Statistical analyses have not resolved the location of MEN2A among several close markers. We have used our family material to refine the positions of 36 identified and confirmed crossovers among the markers most closely linked to MEN2A. This high-resolution meiotic mapping panel will help order loci in this pericentromeric region and narrow the region in which MEN2A maps.
Dopaminergic pathophysiology is important in several psychiatric illnesses. The recently cloned D4 dopamine receptor gene (DRD4) shows considerable homology to the D2 and D3 dopamine receptors (DRD2 and DRD3); pharmacologically, its affinity for the atypical antipsychotic clozapine is much higher than that of these other dopamine receptors. Probe pB28 for this locus recognizes an informative HincII polymorphism. We typed this polymorphism on several large reference families (a total of about 271 individuals) to place DRD4 in the genetic linkage map. Pairwise linkage analysis (using ILINK) provided evidence for close linkage to the distal 11p loci tyrosine hydroxylase (TH) and the Harvey ras oncogene (HRAS). We used our version of LINKMAP adapted to run under distributed parallel processing (Linda-LINKMAP) for an analysis moving DRD4 across a fixed map with HRAS set 3.8 cM distal to TH. This localized DRD4 close to HRAS, with no crossovers observed between those loci and a maximum lod score of 19.9 (2 cM distal to HRAS). The one LOD unit support interval extends from about 1 cM proximal to HRAS to 8 cM distal to HRAS. Crossovers identified in one kindred place DRD4 distal to TH, providing further evidence for its location close to HRAS, making DRD4 one of the most telomeric of 11p markers. (This also places DRD4 in band 11p15.5.)
This paper describes the Centre d'Etude du Polymorphisme Humain (CEPH) consortium linkage map of chromosome 2. The map contains 36 loci defined by genotyping generated from the CEPH family DNAs. A total of 73 different markers were typed by 14 contributing laboratories; of these, 36 loci are ordered on the map with likelihood support of at least 1000:1. Markers are placed along the length of the chromosome but no markers were available to anchor the map at either telomere or the centromere. Multilocus linkage analysis has produced male, female, and sex-averaged maps extending for 261, 430, and 328 cM, respectively. The sex-averaged map contains five intervals greater than 15 cM and the mean genetic distance between the 36 uniquely placed loci is 9.1 cM.
Population genetic studies, in Australian, Assamese, Cambodian, Chinese, Caucasian and Melanesian populations, were performed with several highly polymorphic DNA loci. Results showed that the Caucasian and Chinese had the highest level of heterozygosity. The size range of the majority of the polymorphic DNA fragments of a locus was the same in the different populations. The distinguishing feature of each ethnic group was the relative frequency of a particular set or group of alleles. For example, alleles greater than 9.0 kb in size, in D14S13, or from 4.5 to 4.7 kb, in D18S27, were less than half as frequent in Caucasians than in the other populations. Overall, there were groups of alleles, at one or more loci, whose frequencies were different among some of the ethnic groups and therefore could be used to differentiate one group from the other.
Within- and between-species variability was examined in a noncoding 238-bp segment of the HOX2 cluster. DNA of 4-26 individuals of four species (Pongo pygmaeus, Pan troglodytes, Gorilla gorilla, and Homo sapiens) was PCR amplified and electrophoresed in a denaturing gradient gel to screen for variability. Coupled amplification and sequencing was used to determine the complete sequence for each of the different alleles identified, one each in humans and orangutans, two in chimpanzees, and four in gorillas. Maximum-parsimony methods were used to construct a gene tree for these sequences. Alleles in all four species cluster into groups consisting of only one species (i.e., alleles within a species are monophyletic). The number of base-pair differences observed among alleles within P. troglodytes and within G. gorilla is larger than the number of base-pair substitutions that phylogenetically link Pan with Homo. Given these and other published data, it is premature to accept any particular phylogenetic tree that relates these three genera through two separate speciation events.
We have investigated the capability of PCR to amplify a specific locus from each template in a mixture of allelic DNAs. Modeling experiments employed a 300-bp HOX2B segment as target and utilized, as distinct template "alleles," genomic DNAs from 1 human and from 2 chimpanzees known to differ in sequence at the target. Two modes were used: (1) mixtures of PCR products that had been previously amplified individually from a single template and (2) PCR amplification en masse from composite human/chimpanzee genomic DNA templates. Products generated by either mode were separated by denaturing gradient gel electrophoresis (DGGE). Detection of a "trace" allele mixed with a "dominant" one was possible by simple ethidium bromide staining of the gel up to a sensitivity of 1 part in 20. A balanced mixture was represented by 5:5 and 4:3:3 mixtures of allelic PCR products or genomic templates; an uneven mixture of dominant and trace alleles, by 9:1 and 8:1:1 mixtures. For 5:5, two homoduplex bands and two heteroduplex bands of equal intensity were generated. For 9:1, the trace homoduplex disappears whereas the two heteroduplexes are easily visible. For 8:1:1, four heteroduplexes and one homoduplex were observed; homoduplexes and heteroduplexes formed from the trace alleles were not visible. These experiments demonstrate that PCR can amplify mixed allelic templates in direct proportion to the stoichiometric fraction of each template. Trace species are captured as heteroduplexes with the most abundant species and are clearly displaced on denaturing gradient gels from the dominant homoduplex species. Our analytical studies can be applied to analysis of sequence variants in DNA collected from cancerous or infected tissues.(ABSTRACT TRUNCATED AT 250 WORDS)
We have constructed a linkage map of eight RFLP markers located on chromosome 11q in the region of the dopamine D2 receptor gene (DRD2) recognized by probe hD2G1. Abnormalities in dopaminergic neurotransmission mediated by this receptor have been implicated in several psychiatric disorders. The map was generated using six large reference families (from 294 to 419 individuals per locus), which are largely independent of the CEPH families, primarily using the LINKMAP and ILINK programs of the LINKAGE package of Lathrop and Lalouel. The most likely order and recombination frequencies are: [sequence: see text] The relative order of D11S84-STMY, DRD2-D11S29, and D11S146-INT2 could not be resolved reliably. There were no significant sex differences in recombination frequency. We introduce here a version of LINKMAP adapted to run under distributed parallel processing (LINDA-LINKMAP). Using pairwise analyses, we have also placed D11S421 proximal to this group.
The carrier status of 39 at-risk individuals in 6 multiple endocrine neoplasia 2A families was determined using a DNA based test. We were able to calculate a virtual diagnosis (probability greater than 95%) for 77% of the individuals and a probable diagnosis (probability greater than 90%) for 90% of the individuals. This study points out some of the problems of specific pedigree structures that can affect the risk calculation. This study further shows that no single test based on either biochemistry, pathology, or genetics can consistently and unambiguously produce a presymptomatic diagnosis. We also describe two specific examples where DNA testing has helped to resolve clinical uncertainties in at-risk individuals.
The search for the gene that causes the multiple endocrine neoplasia type 2A (MEN 2A) syndrome is entering a new phase. Genetic linkage studies have localized the gene to the pericentromeric region of chromosome 10. The statistical portion of mapping the gene for MEN 2A is nearly complete and now classical molecular biological/gene mapping techniques will be employed. We have used fluorescence in situ hybridization to estimate the size of the MEN2A region to be about 2 to 5 mb, using some liberal assumptions; at worst the region should contain no more than about 10 mb of non-alphoid DNA. Our mapping panels (meiotic recombinant and radiation reduced hybrid) give consistent orders of markers in this small region. We describe our initial attempts to clone the region using yeast artificial chromosomes.
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Understanding the genetic and environmental contributions (and their interactions, which are likely to be complex) to the etiology of psychiatric disorders requires research designs incorporating many basic principles of genetics. Genetic variation is likely to contribute to psychiatric disorders and genetic heterogeneity is likely to exist for any single disorder, ie, completely different genetic variants may each be capable of increasing an individual's susceptibility to the disorder. Thus, it is important to define phenotypes that may more closely reflect each individual genetic variant rather than to rely solely on the psychiatric diagnosis. Research should be undertaken with the goal of testing specific hypotheses that can be excluded. Research designs can include studies of unrelated individuals, twins, separated relatives, nuclear families, or extended pedigrees. Not all hypotheses can be tested on one type of data, and appropriate analytic methods vary. Because genetic hypotheses cannot be tested on studies of unrelated individuals, it is important that data be collected on families instead of unrelated individual patients and/or controls. Studies should include traits that bridge the gap between the genotype and the diagnostic phenotype. Such studies should be multidisciplinary, and the best statistical-genetics methodology should be used for data analysis.
It is shown that matings between two affected individuals provide important information on the parameters of a single locus model with incomplete penetrance.