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Biomedical subjects

T B Friedman

Publications and source records attributed to T B Friedman.

At least 73 records · Page 4Linked to original sources

Waardenburg syndrome (WS): the analysis of a single family with a WS1 mutation showing linkage to RFLP markers on human chromosome 2q.

Waardenburg syndrome type I (WS1; MIM 19350) is caused by a pleiotropic, autosomal dominant mutation with variable penetrance and expressivity. Of individuals with this mutation, 20%-25% are hearing impaired. A multilocus linkage analysis of RFLP data from a single WS1 family with 11 affected individuals indicates that the WS1 mutation in this family is linked to the following four marker loci located on the long arm of chromosome 2: ALPP (alkaline phosphatase, placental), FN1 (fibronectin 1), D2S3 (a unique-copy DNA segment), and COL6A3 (collagen VI, alpha 3). For the RFLP marker loci, a multilocus linkage analysis using MLINK produced a peak lod (Z) of 3.23 for the following linkage relationships and recombination fractions (theta i): (ALPP----.000----FN1)----.122----D2S3----.267----CO L6A3. A similar analysis produced a Z of 6.67 for the following linkage relationships and theta i values among the markers and WS1: (FN1----.000----WS1----.000----ALPP)----.123----D2S 3----.246----COL6A3. The data confirm the conclusion of Foy et al. that at least some WS1 mutations map to chromosome 2q.

Chromosomes, Human, Pair 2↗

Molecular characterization of the Drosophila melanogaster urate oxidase gene, an ecdysone-repressible gene expressed only in the malpighian tubules.

The urate oxidase (UO) gene of Drosophila melanogaster is expressed during the third-instar larval and adult stages, exclusively within a subset of cells of the Malpighian tubules. The UO gene contains a 69-base-pair intron and encodes mature mRNAs of 1,224, 1,227, and 1,244 nucleotides, depending on the site of 3' endonucleolytic cleavage prior to polyadenylation. A direct repeat, 5'-AAGTGAGAGTGAT-3', is the proposed cis-regulatory element involved in 20-hydroxyecdysone repression of the UO gene. The deduced amino acid sequences of UO of D. melanogaster, rat, mouse, and pig and uricase II of soybean show 32 to 38% identity, with 22% of amino acid residues identical in all species. With use of P-element-mediated germ line transformation, 826 base pairs 5' and approximately 1,200 base pairs 3' of the D. melanogaster UO transcribed region contain all of the cis elements allowing for appropriate temporal regulation and Malpighian tubule-specific expression of the UO gene.

Amino Acid Sequence↗

Mouse and hamster mutants as models for Waardenburg syndromes in humans.

Four different Waardenburg syndromes have been defined based upon observed phenotypes. These syndromes are responsible for approximately 2% of subjects with profound congenital hearing loss. At present, Waardenburg syndromes have not been mapped to particular human chromosomes. One or more of the mouse mutant alleles, Ph (patch), s (piebald), Sp (splotch), and Mior (microphthalmia-Oak Ridge) and the hamster mutation Wh (anophthalmic white) may be homologous to mutations causing Waardenburg syndromes. In heterozygotes, phenotypic effects of these four mouse mutations and the hamster mutation are similar to the phenotypes produced by different Waardenburg syndrome mutations. The chromosomal locations and syntenic relationships associated with three of the four mouse mutant genes have been used to predict human chromosomal locations for Waardenburg syndromes: (1) on chromosome 2q near FN1 (fibronectin 1), (2) on chromosome 3p near the proto-oncogene RAF1 or 3q near RHO (rhodopsin), and (3) on chromosome 4p near the proto-oncogene KIT. Waardenburg syndromes show extensive intrafamilial phenotypic variability. Results of our studies with the hamster mutation Wh suggest that this variability may be explained in part by modifier genes segregating within families.

Adult↗

Cloning of a Drosophila melanogaster adenine phosphoribosyltransferase structural gene and deduced amino acid sequence of the enzyme.

The Aprt locus of Drosophila melanogaster encodes the structural gene for adenine phosphoribosyltransferase (APRT). DNA cloned from microdissected salivary gland polytene chromosome region 62B7-12 was used in conjunction with chromosome walking and hybrid selection of mRNA to isolate the Aprt gene. Aprt lies at cytogenetic position 62B9 and is closely flanked by other genes of unknown function. Nucleotide sequencing shows that four APRT cDNAs have a common 5' terminus with an apparent cap consensus sequence but two different 3' sites of polyadenylation. The distribution of conserved amino acid sequences in APRT from vertebrates, insects and bacteria suggests that they may have shared a common ancestral gene for this ubiquitous enzyme.

Adenine Phosphoribosyltransferase↗

Cloning a cDNA for Drosophila melanogaster urate oxidase.

A cDNA library from third-instar larval Malpighian tubules of Drosophila melanogaster was constructed and screened for urate oxidase (UO) clones by hybridization selection. The coding sequence for UO was mapped by in situ hybridization to position 28C on the left arm of chromosome 2. The UO activity in Drosophila shows a complex developmental profile. A UO cDNA was used as a probe of Northern blots of poly(A) + RNA from various stages of development. The data show that there is a direct correlation between the transcriptional activity of the UO locus as evidenced by the quantitative changes of UO mRNA and the levels of UO activity and protein during development.

Animals↗

On the loss of uricolytic activity during primate evolution--I. Silencing of urate oxidase in a hominoid ancestor.

Urate oxidase activity is not detectable in liver homogenates from the gibbon, orangutan, chimpanzee, gorilla and human. Liver homogenates from five genera of Old World and two genera of New World monkeys have easily detectable levels of urate oxidase activity. There is no evidence for extant detectable intermediate steps in the loss of urate oxidase activity in the hominoids. Urate oxidase activity from Old World and New World monkeys is stable, a simple observation which debunks a long-standing myth. Urate oxidase activity was silenced in an ancestor to the five living genera of hominoids after divergence from the Old World monkeys.

Animals↗

Purine-resistant Drosophila melanogaster result from mutations in the adenine phosphoribosyltransferase structural gene.

Mutants of Drosophila melanogaster selected for resistance to purine killing are deficient in adenine phosphoribosyltransferase (APRT; E.C. 2.4.2.7) activity. Genetic mapping and complementation analysis demonstrate that purine resistance, deficiency of APRT activity, and differences in the isoelectric point of APRT result from alterations at a single locus, Aprt (map position, 3:3.03). The level of APRT activity shows gene dose dependence in Aprt heterozygotes and in flies that are haploid for different Aprt alleles. Drosophila APRT is a dimer composed of apparently identical 23,000-dalton subunits. These results suggest that Aprt contains the structural gene for APRT.

Adenine Phosphoribosyltransferase↗

Galactose metabolism in Dictyostelium discoideum. Regulation of galactose-1-phosphate-uridyl transferase during growth and development.

Dictyostelium discoideum is able to metabolize [1-14C]galactose to 14CO2 despite the observation that galactose is inhibitory with respect to growth. Galactose-1-phosphate uridyl transferase activity is present throughout growth and development and varies in activity only slightly during the entire life cycle of D. discoideum, in contrast to the rapid increase in UDP-glucose 4-epimerase activity during development. Therefore, in D. discoideum, these two enzymes of the Leloir pathway are independently regulated, unlike E. coli where these enzymes are coordinately controlled.

Dictyostelium↗

Galactose and glucose metabolism in galactokinase deficient, galactose-1-P-uridyl transferase deficient and normal human fibroblasts.

Despite the genetic interruption of the Leloir pathway both galactosemic patients and galactosemic fibroblasts can convert galactose to CO2 and TCA precipitable products, although at less than the normal rate. These observations stimulated investigations into the identity of the alternative metabolic routes which allows for galactose metabolism in the absence of in vitro galactose-1-P-uridyl transferase. Four lines of galactosemic cells, each without detectable gal-transferase, produced 14CO2 from [1-14C]-galactose (0.094 mumoles in 20 cc of medium) at approximately 39% +/- 16% the rate of transferase positive cells over a 48-hour period. However, galactokinase deficient fibroblasts produced 14CO2 and TCA precipitable products from [1-14C]-galactose or [U-14C]-galactose at only 3% to 9% the rate of normal fibroblasts. Therefore it seems likely that gal-transferase deficient fibroblasts must first synthesize galactose-1-P for further metabolism of galactose.

Adult↗