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R Allikmets

Publications and source records attributed to R Allikmets.

52 records · Page 3Linked to original sources

Germline and somatic mutations in the tyrosine kinase domain of the MET proto-oncogene in papillary renal carcinomas.

Hereditary papillary renal carcinoma (HPRC) is a recently recognized form of inherited kidney cancer characterized by a predisposition to develop multiple, bilateral papillary renal tumours. The pattern of inheritance of HPRC is consistent with autosomal dominant transmission with reduced penetrance. HPRC is histologically and genetically distinct from two other causes of inherited renal carcinoma, von Hippel-Lindau disease (VHL) and the chromosome translocation (3;8). Malignant papillary renal carcinomas are characterized by trisomy of chromosomes 7, 16 and 17, and in men, by loss of the Y chromosome. Inherited and sporadic clear cell renal carcinomas are characterized by inactivation of both copies of the VHL gene by mutation, and/or by hypermethylation. We found that the HPRC gene was located at chromosome 7q31.1-34 in a 27-centimorgan (cM) interval between D7S496 and D7S1837. We identified missense mutations located in the tyrosine kinase domain of the MET gene in the germline of affected members of HPRC families and in a subset of sporadic papillary renal carcinomas. Three mutations in the MET gene are located in codons that are homologous to those in c-kit and RET, proto-oncogenes that are targets of naturally-occurring mutations. The results suggest that missense mutations located in the MET proto-oncogene lead to constitutive activation of the MET protein and papillary renal carcinomas.

Adult↗

Homologues of the human multidrug resistance genes MRP and MDR contribute to heavy metal resistance in the soil nematode Caenorhabditis elegans.

Acquired resistance of mammalian cells to multiple chemotherapeutic drugs can result from enhanced expression of the multidrug resistance-associated protein (MRP), which belongs to the ABC transporter superfamily. ABC transporters play a role in the protection of organisms against exogenous toxins by cellular detoxification processes. We have identified four MRP homologues in the soil nematode Caenorhabditis elegans, and we have studied one member, mrp-1, in detail. Using an mrp::lacZ gene fusion, mrp-l expression was found in cells of the pharynx, the pharynx-intestinal valve and the anterior intestinal cells, the rectum-intestinal valve and the epithelial cells of the vulva. Targeted inactivation of mrp-l resulted in increased sensitivity to the heavy metal ions cadmium and arsenite, to which wild-type worms are highly tolerant. The most pronounced effect of the mrp-1 mutation is on the ability of animals to recover from temporary exposure to high concentrations of heavy metals. Nematodes were found to be hypersensitive to heavy metals when both the MRP homologue, mrp-1, and a member of the P-glycoprotein (Pgp) gene family, pgp-1, were deleted. We conclude that nematodes have multiple proteins, homologues of mammalian proteins involved in the cellular resistance to chemotherapeutic drugs, that protect them against heavy metals.

ATP-Binding Cassette Transporters↗

Genetic restriction of HIV-1 infection and progression to AIDS by a deletion allele of the CKR5 structural gene. Hemophilia Growth and Development Study, Multicenter AIDS Cohort Study, Multicenter Hemophilia Cohort Study, San Francisco City Cohort, ALIVE Study.

The chemokine receptor 5 (CKR5) protein serves as a secondary receptor on CD4(+) T lymphocytes for certain strains of human immunodeficiency virus-type 1 (HIV-1). The CKR5 structural gene was mapped to human chromosome 3p21, and a 32-base pair deletion allele (CKR5Delta32) was identified that is present at a frequency of approximately0.10 in the Caucasian population of the United States. An examination of 1955 patients included among six well-characterized acquired immunodeficiency syndrome (AIDS) cohort studies revealed that 17 deletion homozygotes occurred exclusively among 612 exposed HIV-1 antibody-negative individuals (2.8 percent) and not at all in 1343 HIV-1-infected individuals. The frequency of CKR5 deletion heterozygotes was significantly elevated in groups of individuals that had survived HIV-1 infection for more than 10 years, and, in some risk groups, twice as frequent as their occurrence in rapid progressors to AIDS. Survival analysis clearly shows that disease progression is slower in CKR5 deletion heterozygotes than in individuals homozygous for the normal CKR5 gene. The CKR5Delta32 deletion may act as a recessive restriction gene against HIV-1 infection and may exert a dominant phenotype of delaying progression to AIDS among infected individuals.

Acquired Immunodeficiency Syndrome↗

Mapping of 22 Notl linking clones on human chromosome 3 by polymerase chain reaction and somatic cell hybrid panels.

Twenty-two human chromosome 3 derived and partially sequenced Notl linking clones were mapped using two somatic cell hybrid panels. Somatic cell hybrid mapping was performed by Southern hybridization and/or by polymerase chain reaction (PCR), using 300-500 bp CpG-rich sequences surrounding Notl sites. Thus, 22 new Notl site-tagged (sequence tagged sites) STSs were created, distributed over the entire human chromosome 3. The majority of these linking clones tag known or unknown expressed sequences (genes). Together with other physical and genetic mapping methods, localization of Notl linking clones facilitates the construction of a long-range physical map and, at the same time, a transcriptional map of human chromosome 3.

Animals↗

Characterization of the human ABC superfamily: isolation and mapping of 21 new genes using the expressed sequence tags database.

As an approach to characterizing all human ATP-binding cassette (ABC) superfamily genes, a search of the human expressed sequence tag (EST) database was performed using sequences from known ABC genes. A total of 105 clones, containing sequences of potential ABC genes, were identified, representing 21 distinct genes. This brings the total number of characterized human ABC genes from 12 to 33. The new ABC genes were mapped by PCR on somatic cell and radiation hybrid panels and yeast artificial chromosomes (YACs). The genes are located on human chromosomes 1, 2, 3, 4, 6, 7, 10, 12, 13, 14, 16, 17 and X; at locations distinct from previously mapped members of the superfamily. The characterized genes display extensive diversity in sequence and expression pattern and this information was utilized to determine potential structural, functional and evolutionary relationships to previously characterized members of the ABC superfamily.

ATP-Binding Cassette Transporters↗

Characterization and mapping of three new mammalian ATP-binding transporter genes from an EST database.

Analysis of the human expressed sequence tag (EST) database identified four clones that contain sequences of previously uncharacterized genes, members of the ATP-binding cassette (ABC) superfamily. Two new ABC genes (EST20237, 31252) are located at Chromosome (Chr) 1q42 and 1q25 respectively in humans, as determined by FISH; at locations distinct from previously mapped genes of this superfamily. Two additional clones, EST 600 and EST 1596, were found to represent different ATP-binding domains of the same gene, ABC2. This gene was localized to 9q34 in humans by FISH and to the proximal region of Chr 2 in mice by linkage analysis. All genes display extensive diversity in sequence and expression pattern. We present several approaches to characterizing EST clones and demonstrate that the analysis of EST clones from different tissues is a powerful approach to identify new members of important gene families. Some drawbacks of using EST databases, including chimerism of cDNA clones, are discussed.

ATP-Binding Cassette Transporters↗

A group of NotI jumping and linking clones cover 2.5 Mb in the 3p21-p22 region suspected to contain a tumor suppressor gene.

The chromosomal region 3p21.2-p22 has been shown to be involved in the development of several forms of solid tumors. Such deletions, translocations, and rearrangements presumably result in the disturbance or loss of a critical gene function. Pulsed-field gel electrophoresis (PFGE), using NotI linking clones as a probe represent a powerful tool for analyzing such rearrangements. A NotI linking clone, AP20 (D3S1641), was localized by in situ hybridization to 3p21.3-p22. Two NotI jumping clones adjacent to this clone were isolated, clone J32-612 covering 0.5 Mb and clone J31-611 covering approximately 1 Mb. Clone J31-611 crosses the border of the deletion present in hybrid cell line MCH939.2, which contains a deleted 3p21 region. For these jumping clones, corresponding NotI linking clones, NLJ3 (D3S1642) and NL3-003, were isolated. Altogether, linking and jumping clones from the AP20 locus hybridize to NotI fragments totaling 2.5 Mb in length. These NotI-containing clones detect expressed sequences in several human tissues. Clone NLJ3 possesses homology to the human platelet-derived endothelial cell growth factor gene and may represent a new member of this gene family. Another clone (AP20) revealed 66% sequence similarity to rat skeletal muscle voltage-sensitive sodium channel subtype 2. Therefore, this group of clones will be useful not only for analyzing rearrangements in tumors, but also for the isolation of new genes from the 3p21.3-p22 region.

Base Sequence↗

Evolution of ATP-binding cassette transporter genes.

The transport of molecules across lipid membranes is an essential function of all living organisms. One of the families of genes that have evolved to carry out this function is that which encodes the ATP-binding cassette proteins. These molecules use active transport to pump specific molecules across membranes, and the genes that encode them are found in abundance in the genomes of both prokaryotes and eukaryotes. By using gene disruption techniques and by studying homologous genes in model organisms, significant progress has been made during the last few years in evaluating the physiological functions of ABC proteins in higher eukaryotes.

ATP-Binding Cassette Transporters↗

Construction of representative NotI linking libraries specific for the total human genome and for human chromosome 3.

NotI linking clones represent valuable tools for both physical and genetic mapping. Using procedures that we have previously described, several chromosome 3-specific NotI linking libraries have been constructed. Here, we describe the construction of six independent NotI linking libraries specific for the total human genome. These libraries were made using three different vectors and two combinations of restriction enzymes. Altogether, these six libraries contain more than 1 million recombinant phages. Considering that the human genome contains about 3000-5000 NotI sites, it is likely that all clonable NotI sites are present in these libraries. Two of the six libraries were transferred into plasmid form. At the same time, a chromosome 3-specific EcoRI-NotI library (NRL1) was constructed. This library considerably increases the representation of cloned NotI sites in combination with previously constructed libraries that were made using BamHI-NotI digestion. All libraries are available on request.

Blotting, Southern↗

Mapping and sequencing of two yeast genes belonging to the ATP-binding cassette superfamily.

ATP-binding cassette (ABC) transporters share significant sequence identity within their ATP-binding domains. Degenerate oligonucleotides based on highly conserved portions of the ATP-binding domain genes were used to clone portions of two members of the ABC gene superfamily from Saccharomyces cerevisiae DNA. These genes were designated MDL1 and MDL2 (for multidrug resistance-like). Each MDL gene is predicted to encode a single set of transmembrane domains and a single ATP-binding domain, thus the MDL gene products are 'half-molecule' ABC proteins. The two genes were mapped to precise regions on chromosomes XII and XVI and show a considerable similarity to the mammalian P-glycoprotein/multidrug resistance (MDR) and peptide transporter (TAP) genes. Preliminary analysis of null mutants constructed by gene replacement has indicated that the MDL genes are not essential for viability of yeast. The sequences have been deposited in the GenBank data library under Accession Numbers L16958 (Locus YSCBCSA) and L16959 (Locus YSCBCSB).

ATP Binding Cassette Transporter, Subfamily B, Mem↗

Cloning and organization of the abc and mdl genes of Escherichia coli: relationship to eukaryotic multidrug resistance.

Using degenerate oligodeoxyribonucleotides from conserved regions of the gene family encoding ATP-binding domain of the active transporter, two new Escherichia coli genes were identified. The first of the genes, named mdl (multidrug resistance-like), is located at min 10.2 of the E. coli chromosome and encodes two ATP-binding motifs and two hydrophobic (transmembrane) domains. The ATP-binding domains of mdl show 35-38% amino acid (aa) identity with members of the eukaryotic P-glycoprotein/multidrug resistance family. To date, 25 members of the ATP-transporter/permease gene family have been characterized in E. coli. Comparison of the ATP-binding domains from this family indicates that mdl is part of a distinct subfamily of sequences that includes hlyB, msbA, and cvaB. Gene-disruption studies revealed that mdl is not essential for cell growth. The second open reading frame, named abc (ATP-binding cassette), is located at min 4.9 of the chromosome, encodes a single ATP-binding domain, and is most homologous to ftsE, a cell division control gene of E. coli. The abc gene product also shows aa sequence homology to several E. coli permeases.

ATP Binding Cassette Transporter, Subfamily B, Mem↗

Identification of P-glycoprotein/multidrug resistance genes from model organisms.

Using degenerate oligonucleotides from conserved portions of the ATP-binding domain of the active transporter genes, several new members of this gene superfamily have been cloned from Drosophila, Saccharomyces cerevisiae, and E. coli DNA. The Drosophila and E. coli genes contain two sets of transmembrane domains and two ATP-binding domains, whereas the yeast gene contains single transmembrane and ATP-binding domains. All three genes show a high degree of similarity to the mammalian P-glycoprotein/multidrug resistance (MDR) genes. The E. coli sequence is the only known transporter gene containing both ATP and transmembrane domains in a single open reading frame. While the function of these sequences has not been determined, they may prove to be useful for developing a model to study the function of P-glycoproteins.

Adenosine Triphosphate↗

Regulatory elements and transcriptional regulation by testosterone and retinoic acid of the rat nerve growth factor receptor promoter.

The low-affinity nerve growth factor receptor (LNGFR) is a membrane-associated glycoprotein which is thought to participate in some of the biological activities of nerve growth factor (NGF). Expression of the LNGFR gene is known to be regulated both during development and in response to various agents in cell culture. However, molecular mechanisms responsible for the regulation have not been described. We report here an analysis of a 4.8-kb sequence from the 5'-flanking region of the rat LNGFR gene. Several regulatory elements were identified in this region by transfection of plasmid constructs containing sequences from LNGFR fused to a bacterial cat reporter gene. The proximal part of the promoter region (0.4-kb) was shown to be sufficient to support cat expression in all cell types used. A silencer element located between -1.5 kb and -1.8 kb from the start of translation, as well as an enhancer element in more upstream regions of the promoter, were identified in the phaeochromocytoma cell line, PC12, and in the Sertoli cell line, TM4, that express the LNGFR gene. Treatment of TM4 cells with retinoic acid (RA) increases the level of LNGFR mRNA twofold, while testosterone treatment results in a tenfold decrease. Regions of the promoter responsive to testosterone and RA in TM4 cells were found at -610 to -860 bp and -1840 to -4800 bp upstream from the translation start codon, respectively. A RA-responsive element active in PC12 cells is located between bp -610 to -860 from the start codon.

Animals↗

Molecular genetics of age-related macular degeneration: current status.

Age-related macular degeneration (AMD), a multifactorial human disorder, is the most common cause of acquired visual impairment in people over the age 60. It is estimated to affect millions of individuals worldwide. Prevalence increases with age; among persons 75 years and older, mild, or early forms occur in nearly 30% and advanced forms in about 7% of the population. AMD has been associated both with environmental and genetic factors. However, the clinical heterogeneity, late age at onset, and complex etiology have confounded genetic studies of the disorder. Methods applicable to the study of single-gene and some complex disorders (i.e., linkage analysis, sib-pair analysis, transmission disequilibrium test, etc.) have had limited utility in elucidating the genetic components of the complex AMD trait. Recently, substantial progress has been made in determining the genetic basis of monogenic eye disorders. On a monthly basis mutations are identified in new genes responsible for some form of retinal degeneration. Most, if not all, of these genes become candidates for potential involvement in multifactorial disorders especially if the phenotypes of the early-onset Mendelian diseases they cause resemble later onset complex traits. Unfortunately, to date mutational analyses of the candidate genes in AMD patients to date have not yielded the highly anticipated information: statistically significant association of sequence variants with AMD. Whether this is due to the unsuccessful selection of the right candidate genes for the analysis, or the methods employed, or both, has to be elucidated. This review summarizes current knowledge of genetic research aimed at delineating the molecular genetic basis of age-related macular degeneration. Moreover, it attempts to offer some approaches for the future studies directed towards understanding the genetic components of this complex disorder.

Aging↗