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Biomedical subjects

M G Mattei

Publications and source records attributed to M G Mattei.

At least 163 records · Page 9Linked to original sources

Cloning and chromosome localization of the mouse Ews gene.

The human EWS gene encodes a putative RNA binding protein. As a result of acquired chromosome rearrangement, the N-terminal portion of the EWS protein is fused to the DNA binding domain of either FLI-1 or ERG in the Ewing family of tumors and to the DNA binding domain of ATF1 in malignant melanoma of soft parts. We have determined the cDNA sequence of the mouse Ews gene. Its nucleotide sequence and its translation product demonstrate 93 and 98% homology with the human EWS cDNA and protein, respectively. The murine Ews locus lies within a conserved synteny segment between human chromosome 22q12 and mouse chromosome 11A1-A3.

Amino Acid Sequence↗

Fibulin-2 (FBLN2): human cDNA sequence, mRNA expression, and mapping of the gene on human and mouse chromosomes.

Fibulin-2 is a new extracellular matrix protein that we recently identified by characterizing mouse cDNA clones. Fibulin-2 mRNA is prominently expressed in mouse heart tissue and is present in low amounts in other tissues. In this study, we isolated and sequenced a 4.1-kb human fibulin-2 cDNA, which encoded a mature protein of 1157 amino acids preceded by a 27-residue signal sequence. The predicted polypeptide contains three consecutive anaphylatoxin-related segments (domain I) in its central region followed by 10 EGF-like repeats (domain II), 9 of which have a consensus sequence for calcium binding. The 408-residue N-terminal region consists of two separate subdomains, a cysteine-rich segment of 150 residues (Na subdomain) and a cysteine-free segment with a stretch of acidic amino acids (Nb subdomain). The 115-residue C-terminal segment (domain III) is similar to the C variant of fibulin-1. The amino acid sequences of the human and mouse fibulin-2 share approximately 90% identity in domains Na, I, II, and III but only 62% identity in domain Nb. The human cDNA lacks an EGF-like repeat, which is alternatively spliced in the mouse cDNA clones, and a potential cell-binding Arg-Gly-Asp sequence found in the Nb domain of the mouse counterpart. Northern blot analysis of mRNA from various human tissues reveals an abundant 4.5-kb transcript in heart, placenta, and ovary tissue. The expression pattern differs from that of fibulin-1. The fibulin-2 gene was localized by in situ hybridization to the p24-p25 region of human chromosome 3 and to the band D-E of mouse chromosome 6.

Amino Acid Sequence↗

The fibulin-1 gene (FBLN1) is located on human chromosome 22 and on mouse chromosome 15.

Fibulin-1 is a calcium-binding glycoprotein present in the extracellular matrix and in the serum. The gene coding for fibulin-1 (FBLN1) was located by in situ hybridization of 3H-labeled cDNA probes to human and mouse metaphase chromosomes. The gene was assigned to the q13.2-q13.3 region of human chromosome 22 and to the E-F band of mouse chromosome 15. This finding extends the evolutionary conservation between human chromosome 22 and mouse chromosome 15.

Animals↗

Chromosomal localization of murine ryanodine receptor genes RYR1, RYR2, and RYR3 by in situ hybridization.

In situ hybridization experiments were performed using complementary DNA probes to determine the location on murine chromosomes of the three genes of the ryanodine receptor/Ca2+ channel family: RYR1, RYR2, and RYR3. The skeletal ryanodine receptor, or type 1 (Ryr1), maps to bands 7A2-7A3; the cardiac ryanodine receptor, or type 2 (Ryr2), to 13A1-13A2; and type 3 (Ryr3) to 2E5-2F3.

Animals↗

Molecular cloning, cDNA analysis, and localization of a monomer of the N-acetylglucosamine-specific receptor of the thyroid, NAGR1, to chromosome 19p13.3-13.2.

We have proposed that the GlcNAc thyroid receptor triggers selective recycling of immature GlcNAc-bearing thyroglobulin molecules through the Golgi back to the apical membrane for further processing until maturation is achieved. This process, which we call "receptor-mediated exocytosis," prevents lysosomal degradation of thyroid prohormones. In the present study, we report cloning of the cDNA encoding the (or one of the) monomer(s) constituting the human GlcNAc thyroid receptor. This novel gene, called NAGR1, was assigned by in situ hybridization to subbands p13.3-p13.2 of chromosome 19. Northern blot analysis showed that the mRNA encoding NAGR1 was present as a single transcript of 2.1 kb in the thyroid, but not in the heart, brain, placenta, lung, liver, skeletal muscle, kidney, and pancreas. The deduced amino acid sequence comprised a 51-kDa type I membrane protein with a single spanning region and a short intracytoplasmic domain. Sequence analysis showed that NAGR1 is a glycine-, tryptophan-, and methionine-rich protein with no cysteine residues or glycosylation site. No sequence homology with any known cDNA or protein was noted. The extracellular domain is composed of 420 amino acids and contains a region of 204 residues showing 15 repeats of 4 amino acids, each 1 having an acidic amino acid presumably involved in calcium coordination. The intracellular domain contained what appeared to be a tyrosine internalization signal. The usefulness of this clone in glycobiology, cell biology, and thyroid pathology studies is discussed.

Acetylglucosamine↗

Cloning of two novel ABC transporters mapping on human chromosome 9.

The family of ATP binding cassette (ABC) transporters or traffic ATPases is composed of several membrane-associated proteins that transport a great variety of solutes across cellular membranes. Two novel mammalian members of the family, ABC1 and ABC2, have been identified by a PCR-based approach. They belong to a group of traffic ATPases encoded as a single multifunctional protein, such as CFTR, STE 6, and P-glycoproteins. Their peculiar structural features and close relationship to ABC transporters involved in nodulation suggest that ABC1 and ABC2 define a novel subgroup of mammalian traffic ATPases.

ATP Binding Cassette Transporter 1↗

Identification of a new collagen IV chain, alpha 6(IV), by cDNA isolation and assignment of the gene to chromosome Xq22, which is the same locus for COL4A5.

To date, five distinct alpha chains have been identified in basement membrane collagen IV. We have cloned a gene encoding a new alpha chain belonging to basement membrane collagen IV by cDNA isolation under low stringency conditions. Isolation of overlapping clones and the technique of 5' rapid amplification of cDNA ends enabled us to derive the primary structure of the entire polypeptide. The deduced collagen polypeptide contained 1678 amino acid residues, including a 21-residue signal peptide, a 24-residue amino-terminal NC domain, a central 1405-residue collagenous (COL1) domain, and a 228-residue carboxyl-terminal NC1 domain. We have designated this newly found alpha chain as the alpha 6(IV) chain. The gene was mapped to chromosome Xq22 by in situ hybridization of metaphase lymphocytes. This is the same region of chromosome X where the gene coding for the alpha 5(IV) collagen chain (COL4A5) resides. Mutations in COL4A5 have been characterized in more than 50 patients with Alport syndrome. However, some of the X-linked cases of Alport syndrome are not apparently caused by COL4A5 mutations. The gene we describe in this paper therefore seems to be a candidate for mutations in this group of Alport syndrome patients.

Amino Acid Sequence↗

Structural organization of the porcine and human genes coding for a Leydig cell-specific insulin-like peptide (LEY I-L) and chromosomal localization of the human gene (INSL3).

Leydig insulin-like protein (LEY I-L) is a member of the insulin-like hormone superfamily. The LEY I-L gene (designated INSL3) is expressed exclusively in prenatal and postnatal Leydig cells. We report here the cloning and nucleotide sequence of porcine and human LEY I-L genes including the 5' regions. Both genes consist of two exons and one intron. The organization of the LEY I-L gene is similar to that of insulin and relaxin. The transcription start site in the porcine and human LEY I-L gene is localized 13 and 14 bp upstream of the translation start site, respectively. Alignment of the 5' flanking regions of both genes reveals that the first 107 nucleotides upstream of the transcription start site exhibit an overall sequence similarity of 80%. This conserved region contains a consensus TATAA box, a CAAT-like element (GAAT), and a consensus SP1 sequence (GGGCGG) at equivalent positions in both genes and therefore may play a role in regulation of expression of the LEY I-L gene. The porcine and human genome contains a single copy of the LEY I-L gene. By in situ hybridization, the human gene was assigned to bands p13.2-p12 of the short arm of chromosome 19.

Amino Acid Sequence↗

Cloning of a parathyroid hormone/parathyroid hormone-related peptide receptor (PTHR) cDNA from a rat osteosarcoma (UMR 106) cell line: chromosomal assignment of the gene in the human, mouse, and rat genomes.

Complementary DNAs spanning the entire coding region of the rat parathyroid hormone/parathyroid hormone-related peptide receptor (PTHR) were isolated from a rat osteosarcoma (UMR 106) cell-line cDNA library. The longest of these clones (rPTHrec4) was used to chromosomally assign the PTHR gene in the human, rat, and mouse genomes. By somatic cell hybrid analysis, the gene was localized to human chromosome 3 and rat chromosome 8; by in situ hybridization, the gene was mapped to human chromosome 3p21.1-p22 and to mouse chromosome 9 band F; and by interspecific backcross analysis, the Pthr gene segregated with the transferrin (Trf) gene in chromosome 9 band F. Mouse chromosome 9 and rat chromosome 8 are known to be highly homologous and to also show synteny conservation with human chromosome 3. These three chromosomes share the transferrin gene (TF), the myosin light polypeptide 3 gene (MYL3), and the acylpeptide hydrolase gene (APEH). Our results add a fourth gene, the PTHR gene, to the synteny group conserved in these chromosomes.

Animals↗

Chromosomal location of two human genes encoding tetrahydrobiopterin-metabolizing enzymes: 6-pyruvoyl-tetrahydropterin synthase maps to 11q22.3-q23.3, and pterin-4 alpha-carbinolamine dehydratase maps to 10q22.

Tetrahydrobiopterin (BH4) is the redox cofactor for the aromatic amino acid hydroxylases such as phenylalanine hydroxylase. At least five enzymes are known to be involved in BH4 biosynthesis and regeneration. A deficiency in several of the BH4 metabolic enzymes causes variant types of hyperphenylalaninemias in man. Recently, we cloned and expressed the human cDNAs for two of the BH4 enzymes, the 6-pyruvoyl-tetrahydropterin synthase and the pterin-4 alpha-carbinolamine dehydratase (gene symbols PTS and PCD/DCOH, respectively). In this report, we localized the two genes on the human chromosomes by in situ hybridization. The PTS gene was mapped to the chromosomal region 11q22.3-q23.3, and the PCD/DCOH gene was mapped to the 10q22 band of the genome.

Alcohol Oxidoreductases↗

Cloning of the cDNA encoding human tissue inhibitor of metalloproteinases-3 (TIMP-3) and mapping of the TIMP3 gene to chromosome 22.

The tissue inhibitors of metalloproteinases (TIMPs) are natural inhibitors of the matrix metalloproteinases, a group of zinc-binding endopeptidases involved in the degradation of the extracellular matrix. We have isolated overlapping cDNAs encoding a novel human TIMP, TIMP-3. The cDNAs contain a 591-bp-long open reading frame encoding 9 amino acid residues of the signal peptide and 188 residues of the mature TIMP-3 polypeptide. Both the nucleotide sequence and the conceptual translation product of the human TIMP3 cDNA have a high degree of similarity to ChIMP-3, a recently cloned metalloproteinase inhibitor in the chicken, and to the TIMP1 and TIMP2 gene products, including 12 conserved cysteinyl residues at the same relative positions. The TIMP3 gene is expressed in many tissues, with highest expression in the placenta. Upon hybridization with a panel of human-hamster somatic cell hybrid DNAs, the TIMP3 gene segregated with clones containing chromosome 22. Using in situ hybridization to human metaphase chromosomes, we have assigned the locus for the TIMP3 gene to the q12.1-q13.2 region of human chromosome 22.

Amino Acid Sequence↗

Gene encoding a novel murine tissue inhibitor of metalloproteinases (TIMP), TIMP-3, is expressed in developing mouse epithelia, cartilage, and muscle, and is located on mouse chromosome 10.

Remodeling of the extracellular matrix (ECM) is an essential component of normal development and is also involved in the pathogenesis of arthritis and the spread of cancer. The matrix metalloproteinases and their natural inhibitors, the tissue inhibitors of metalloproteinases (TIMPs), play an important role in this context. We have isolated mouse cDNA clones encoding a novel member of the TIMP family, designated TIMP-3. We have assigned the Timp-3 locus to the [C1-D1] region of mouse chromosome 10 using both genetic and cytogenetic methods. The conceptual translation product of the Timp-3 cDNA shows a high degree of similarity with ChIMP-3, a recently cloned chicken metalloproteinase inhibitor, as well as significant structural similarity with the amino acid sequences of the previously isolated members of this family, TIMP-1 and TIMP-2. The pattern of expression of Timp-3 in the developing mouse embryo is distinct from that previously reported for Timp-1. Timp-3 is expressed in cartilage and skeletal muscle, in myocardium, in the skin, oral and nasal epithelium, in the newborn mouse liver, in the epithelium of some tubular structures such as the developing bronchial tree, oesophagus, colon, urogenital sinus, bile duct, in the kidney, salivary glands, and in the choroid plexus of the brain. The patterns of Timp-3 expression in surface epithelia and in the epithelial lining of many tubular organs suggests that TIMP-3 may be involved in regulating ECM remodeling during the folding of epithelia and during the formation, branching, and expansion of epithelial tubes. In the mouse placenta, expression is seen in the trophoblast, raising the possibility that TIMP-3 may be involved in regulating trophoblastic invasion of the uterus. We propose a role for TIMP-3 in musculoskeletal and cardiac development, in the morphogenesis of certain epithelial structures, and placental implantation.

Amino Acid Sequence↗

Juxtaposition of N-myc and Ig kappa through a reciprocal t(6;12) translocation in a mouse plasmacytoma.

Nearly all mouse plasmacytomas (MPCs) carry an Ig/myc translocation. Any one of the three Ig loci may participate, while the myc contribution has been limited to c-myc, excluding other members of the myc gene family. The same is true for the other two known Ig/myc translocation-carrying tumors, Burkitt's lymphoma and rat immunocytoma. It is believed that the Ig/myc juxtaposition plays a decisive, rate limiting role in the genesis of the three tumors, acting through the constitutive activation of myc that makes it refractory to normal regulation. Here we describe the molecular analysis of a unique t(6;12)(CI;B) translocation that we previously identified in an exceptional MPC that expressed N-myc but not c-myc. We now show that the translocation led to the juxtaposition of N-myc and Ig kappa. This is the first case of an Ig/myc-carrying tumor that involves N-myc rather than c-myc. These findings suggest that the translocation may already have occurred at the pro- or pre-B cell stage at which N-myc is open for transcription. According to this interpretation, constitutive activation of N-myc would suppress the expression of c-myc, but would not interfere with the differentiation of the pro-B cell into a fully mature plasma cell. Its tumorigenic influence would become manifest only at the time when the cell would normally be programmed to leave the cycling compartment, in connection with its terminal differentiation.

Animals↗

Chromosomal localization of human RNA polymerase II subunit genes.

The eukaryotic DNA-dependent RNA polymerase II (or B) is composed of 10 to 14 polypeptides ranging from 220 to 10 kDa. To gain further insight into the molecular structure and function of these subunits, we have undertaken the molecular cloning of nucleotide sequences corresponding to the human enzyme. The cDNAs of five subunits (hRPB220, hRPB140, hRPB33, hRPB25, and hRPB14.5) have been isolated. Using in situ hybridization, we show that the genes of these subunits have distinct chromosomal locations (17p13, 4q12, 16q13-q21, 19p13.3, and 19q12, respectively). Thus, if assembly of active polymerase molecules requires coordinated expression from these independent genes, mechanisms that ensure tight coregulation of the corresponding promoters must exist.

Chromosome Banding↗

Human brain factor 1, a new member of the fork head gene family.

Analysis of cDNA clones that cross-hybridized with the fork head domain of the rat HNF-3 gene family revealed 10 cDNAs from human fetal brain and human testis cDNA libraries containing this highly conserved DNA-binding domain. Three of these cDNAs (HFK1, HFK2, and HFK3) were further analyzed. The cDNA HFK1 has a length of 2557 nucleotides and shows strong homology at the nucleotide level (91.2%) to brain factor 1 (BF-1) from rat. The HFK1 cDNA codes for a putative 476 amino acid protein. The homology to BF-1 from rat in the coding region at the amino acid level is 87.5%. The fork head homologous region includes 111 amino acids starting at amino acid 160 and has a 97.5% homology to BF-1. Southern hybridization revealed that HFK1 is highly conserved among mammalian species and possibly birds. Northern analysis with total RNA from human tissues and poly(A)-rich RNA from mouse revealed a 3.2-kb transcript that is present in human and mouse fetal brain and in adult mouse brain. In situ hybridization with sections of mouse embryo and human fetal brain reveals that HFK1 expression is restricted to the neuronal cells in the telencephalon, with strong expression being observed in the developing dentate gyrus and hippocampus. HFK1 was chromosomally localized by in situ hybridization to 14q12. The cDNA clones HFK2 and HFK3 were analyzed by restriction analysis and sequencing. HFK2 and HFK3 were found to be closely related but different from HFK1. Therefore, it would appear that HFK1, HFK2, HFK3, and BF-1 form a new fork head related subfamily.

Amino Acid Sequence↗

The human intercellular adhesion molecule 3 (ICAM3) gene is located in the 19p13.2-p13.3 region, close to the ICAM1 gene.

The chromosomal location of the intercellular adhesion molecule 3 (ICAM3) gene, coding for a lymphocyte function-associated antigen (LFA)-1 counterreceptor and selectively expressed by human leukocytes, was analyzed by in situ hybridization with the cDNA coding sequence as a probe. This sequence mapped to the p13.2-p13.3 region of chromosome 19, close to the ICAM1 gene chromosomal location.

Animals↗