PubMed Health⌕ Search

SEARCH · PubMed Health

Results for “positional cloning”

Explore indexed PubMed citations for clinical trials, systematic reviews and public health research. Read source abstracts and follow each citation to its original PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 37 records · Page 2Linked to original sources

High-speed positional cloning based on restriction landmark genome scanning.

Restriction landmark genome scanning (RLGS) was developed as a method of genome analysis that is based on the concept that restriction enzyme sites can be used as landmarks. In this article, we demonstrate how this method can be used for the systematic, successful positional cloning of mouse mutant reeler gene. The major advantage of the RLGS method is that it allows the scanning of several thousand spots/loci throughout the genome with one RLGS profile. High-speed positional cloning based on the RLGS method includes (1) high-speed construction of a linkage map (RLGS spot mapping), (2) high-speed detection of RLGS spot markers tightly linked to the mutant phenotype (RLGS spot bombing method), and (3) construction of YAC contigs covering the region where tightly linked spot markers are located (RLGS-based YAC contig mapper). We introduced a series of these procedures by using them to positionally clone the reeler gene. High-speed construction of the whole genetic map and spots/loci (less than 1 cM) within the closest flanking markers is demonstrated. The RLGS-based YAC contig mapper also efficiently yielded the YAC physical contig map of the target region. Finally, we cloned the reeler gene, which is the causal gene for the perturbation of the three-dimensional brain architecture due to the abnormal migration of neuroblasts in reeler mouse. Since the RLGS method itself can be used for any organism, we conclude that the total RLGS-based positional cloning system can be used to identify any mutant gene of any organism.

Animals↗

[Positional cloning--current status and future directions].

Several strategies for isolating disease genes have been developed. In functional cloning, the gene is isolated based on information on the function of gene products (proteins). In contrast, positional cloning is based on the isolation of the disease gene, starting from the knowledge of its location on the genome. The flow chart of positional cloning was described as follows; 1) identification of the location of the disease gene by linkage analysis. 2) construction of the physical map spanning the region. 3) isolation of the candidate genes from the region. 4) identification of mutations in the candidate genes, which is specific to the disease. The current concept and strategies on the positional cloning is discussed.

Base Sequence↗

Positional cloning by linkage disequilibrium.

Recently, metric linkage disequilibrium (LD) maps that assign an LD unit (LDU) location for each marker have been developed (Maniatis et al. 2002). Here we present a multiple pairwise method for positional cloning by LD within a composite likelihood framework and investigate the operating characteristics of maps in physical units (kb) and LDU for two bodies of data (Daly et al. 2001; Jeffreys et al. 2001) on which current ideas of blocks are based. False-negative indications of a disease locus (type II error) were examined by selecting one single-nucleotide polymorphism (SNP) at a time as causal and taking its allelic count (0, 1, or 2, for the three genotypes) as a pseudophenotype, Y. By use of regression and correlation, association between every pseudophenotype and the allelic count of each SNP locus (X) was based on an adaptation of the Malecot model, which includes a parameter for location of the putative gene. By expressing locations in kb or LDU, greater power for localization was observed when the LDU map was fitted. The efficiency of the kb map, relative to the LDU map, to describe LD varied from a maximum of 0.87 to a minimum of 0.36, with a mean of 0.62. False-positive indications of a disease locus (type I error) were examined by simulating an unlinked causal SNP and the allele count was used as a pseudophenotype. The type I error was in good agreement with Wald's likelihood theorem for both metrics and all models that were tested. Unlike tests that select only the most significant marker, haplotype, or haploset, these methods are robust to large numbers of markers in a candidate region. Contrary to predictions from tagging SNPs that retain haplotype diversity, the sample with smaller size but greater SNP density gave less error. The locations of causal SNPs were estimated with the same precision in blocks and steps, suggesting that block definition may be less useful than anticipated for mapping a causal SNP. These results provide a guide to efficient positional cloning by SNPs and a benchmark against which the power of positional cloning by haplotype-based alternatives may be measured.

Alleles↗

Using microarrays to facilitate positional cloning: identification of tomosyn as an inhibitor of neurosecretion.

Forward genetic screens have been used as a powerful strategy to dissect complex biological pathways in many model systems. A significant limitation of this approach has been the time-consuming and costly process of positional cloning and molecular characterization of the mutations isolated in these screens. Here, the authors describe a strategy using microarray hybridizations to facilitate positional cloning. This method relies on the fact that premature stop codons (i.e., nonsense mutations) constitute a frequent class of mutations isolated in screens and that nonsense mutant messenger RNAs are efficiently degraded by the conserved nonsense-mediated decay pathway. They validate this strategy by identifying two previously uncharacterized mutations: (1) tom-1, a mutation found in a forward genetic screen for enhanced acetylcholine secretion in Caenorhabditis elegans, and (2) an apparently spontaneous mutation in the hif-1 transcription factor gene. They further demonstrate the broad applicability of this strategy using other known mutants in C. elegans,Arabidopsis, and mouse. Characterization of tom-1 mutants suggests that TOM-1, the C. elegans ortholog of mammalian tomosyn, functions as an endogenous inhibitor of neurotransmitter secretion. These results also suggest that microarray hybridizations have the potential to significantly reduce the time and effort required for positional cloning.

Journal Article↗

Search for neuroblastoma loci: characterization of tumor cell lines that could facilitate their positional cloning.

Specific chromosomal aberrations might indicate the position of genes responsible for a particular disease. Neuroblastoma is characterized by frequent deletions and/or rearrangements of the subtelomeric 1p region which, accordingly, is believed to host one or more oncosuppressor gene(s) directly or indirectly involved in the development of this and other tumors. Identification of these genes could be facilitated if cell lines with well characterized interstitial deletions or reciprocal translocations could be available for application of positional cloning strategies. In the present report we present additional and novel molecular data on three well established neuroblastoma cell lines (NLF, NMB and NGP). In one of these we have identified two sites that might be good candidates for hosting oncosuppressor genes; one of these is flanked by the D1S47 and ENO1 loci while the other is distal to the A12M2 locus.

Cloning, Molecular↗

RAPD-based screening of genomic libraries for positional cloning.

RAPD markers are frequently used for positional cloning. However, RAPD markers often contain repeated sequences which prevent genomic library screening by hybridisation. We have developed a simple RAPD analysis of genomic libraries based on the identification of cosmid pools and clones amplifying the RAPD marker of interest. Our method does not require the cloning or characterisation of the RAPD marker as it relies on the analysis of cosmid pools or clones using a simple RAPD protocol. We applied this strategy using four RAPD markers composed of single copy or repeated sequences linked to avirulence genes of the rice blast fungus Magnaporthe grisea . Cosmids containing these RAPD markers were easily and rapidly identified allowing the construction of physical contigs at these loci.

Ascomycota↗

[Positional cloning of the putative gene responsible for transient abnormal myelopoiesis and that for multiple cartilaginous exostoses].

Positional cloning of the putative gene responsible for transient abnormal myelopoiesis (TAM) and that for multiple cartilaginous exostoses (MEX) is described. TAM is a leukemoid reaction occurring frequently in Down syndrome (DS) newborn infants and they often develop true leukemia several years later. The previous findings of "disomic homozygosity in trisomic cells" and tentative mapping of the TAM gene to 21q11.1, and an encounter of a unique DS-associated TAM patient with inv(21) (q11.1q22.13) let us start positional cloning of the TAM gene. One type of MEX is an autosomal dominant disorder and patients with MEX sometimes develop chondrosarcoma. The MEX gene has been mapped to 8q24. We encountered a sporadic case of MEX with de novo t(8q; 13q). Thus, we hypothesized that in both patients, the TAM and the MEX genes are disrupted by the structural chromosome abnormalities. For TAM, we first mapped the proximal breakpoint of inv(21) between 2 STSs using 7 cosmid clones as FISH probes that were isolated on the basis of STS markers at the 21q11.1 region, isolated their corresponding YACs, and then analyzed them. However, since YACs corresponding to 2 other STSs between the two markers could not be isolated, we carried out a chromosome walking to construct a cosmid contig between the 2 STSs. Southern analysis with a cosmid clone within the contig detected EcoRI-/HindIII extra bands on the patient's DNA. The cDNA screening and exon trapping to isolate a gene from the region are underway. Similarly, in the MEX patient we mapped the 8q breakpoint between 2 cosmid markers, then isolated YACs and cosmid subclones. By exon trapping after detection of a cosmid covering the breakpoint, an exon-like sequence was isolated. The 3'-RACE/5'-RACE revealed a novel transcript from this cosmid. Whether the transcript is the MEX gene remains to be determined.

Chromosome Mapping↗

Positional cloning moves from perditional to traditional.

The technique of positional cloning has become a familiar component of modern human genetics research. After a halting start in the mid-1980s, the number of disease genes succumbing to cloning efforts based solely on pinpointing their position in the genome is growing exponentially. More than 40 genes have been identified so far. But the positional candidate approach, which combines knowledge of map position with the increasingly dense human transcript map, greatly expedites the search process and will soon become the predominant method of disease gene discovery. The challenge ahead is to apply such methods to identifying genes involved in complex polygenic disorders.

Chromosome Mapping↗

Positional cloning utilizing genomic DNA microarrays: the Niemann-Pick type C gene as a model system.

A major obstacle in positional cloning is identifying the specific mutated gene from within a large physical contig. Here we describe the application of DNA microarray technology to a defined genomic region (physical map) to identify: (i) exons without a priori sequence data and (ii) the disease gene based on differential gene expression in a recessive disorder. The feasibility was tested using resources from the positional cloning of the Neimann-Pick Type C (NP-C) disease gene, NPC1. To identify NPC1 exons and optimize the technology, an array was generated from genomic fragments of the 110-kb bacterial artificial chromosome, 108N2, which encodes NPC1. First, as a test case for blindly identifying exons, fluorescently labeled NPC1 cDNA identified 108N2 fragments that contained NPC1 exons, many of which also contained intronic sequences and could be used to determine part of the NPC1 genomic structure. Second, to demonstrate that the NPC1 disease gene could be identified based upon differential gene expression, subarrays of 108N2 fragments were hybridized with fluorescently labeled cDNA probes generated from total RNA from hamster cell lines differentially expressing NPC1. A probe derived from the NP-C cell line CT60 did not detect NPC1 exons or other genomic fragments from 108N2. In contrast, several NPC1 exons were detected by a probe generated from the non-NP-C cell line 911D5A13, which was derived from CT60, and expressed NPC1 as a consequence of stable transduction with a YAC that contains NPC1 and encompasses 108N2. Thus, the array technology identified NPC1 as a candidate gene based on a physical contig and differential NPC1 expression between NP-C and non-NP-C cells. This technique should facilitate gene identification when a physical contig exists for a region of interest and mutations result in changes in the mRNA level of the disease gene or portions thereof.

Animals↗

Intensive treatment in order to minimize the Ph-positive clone in chronic myelogenic leukemia.

Several studies indicate that interferon (IFN) treatment, intensive chemotherapy and autologous bone marrow transplantation (ABMT) effectively reduce the Ph-positive clone in Chronic Myelogenic Leukemia (CML). In the present study on patients < or = 55 years, we have combined these three treatment modalities. The aim of the study was to eliminate or minimize the Ph-positive clone to see whether a status of minimal residual or Ph-negative disease could be maintained for a longer period of time. After diagnosis, patients received interferon (IFN-a-2b) and hydroxyurea (HU) to keep the white blood cell (WBC) and platelet count below 2-4 and 100-150 x 10(9)/l, respectively. After six months of treatment, Ph-analysis was performed. Patients with Ph-positive cells in bone marrow then received 1-3 courses of intensive chemotherapy. In patients Ph-negative after two courses, bone marrow was harvested and used for ABMT. After a third course, patients with up to 50% Ph-positive metaphases were accepted for ABMT. As of January 1, 1993, 97 patients were registered in the study. Six months of IFN+HU reduced the percentage of Ph-positive metaphases in 57% of the patients (7% became Ph-negative). The corresponding figures after two intensive cytotherapies were 70% (40% Ph-negative). Eighteen patients were autotransplanted. Seven have relapsed with Ph-positivity 3-22 months after ABMT, while nine are Ph-negative at 1-32+ months after ABMT (two not yet analyzed). Seventeen patients are alive and well, while one died one month after ABMT due to interstitial pneumonia.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

Positional cloning of jcpk/bpk locus of the mouse.

By positional cloning techniques, we have identified the gene that is disrupted in the jcpk and bpk mouse models for polycystic kidney disease. This gene is the mouse homolog of the Drosophila Bicaudal C gene. Both of these mutations have been mapped to a very short stretch of Chromosome (Chr) 10. By sequencing the bicaudal C gene, Bicc1, in these models, it was found that the jcpk mutation results in a shortened and abnormal transcript, whereas the bpk mutation results in an abnormal 3' coding region. In Drosophila, this gene encodes a protein known to influence developmental processes. The mammalian homolog contains three KH (K homology) domains and a SAM (sterile alpha motif) domain and is expressed in the developing embryo, indicating that it may be important in RNA-binding and/or protein interactions during embryogenesis.

Amino Acid Sequence↗

Positional cloning and gene identification.

After genetic mapping and physical representation of a particular genomic region containing the gene underlying a particular Mendelian trait, a successful positional cloning strategy depends on the efficient detection and analysis of genes in the critical interval. Several gene detection strategies are presently available to compile an inventory of genes from large genomic regions. Here, the principle of these methods is briefly reviewed and their relative value for positional cloning projects compared.

Animals↗

Positional cloning of the mouse circadian clock gene.

We used positional cloning to identify the circadian Clock gene in mice. Clock is a large transcription unit with 24 exons spanning approximately 100,000 bp of DNA from which transcript classes of 7.5 and approximately 10 kb arise. Clock encodes a novel member of the bHLH-PAS family of transcription factors. In the Clock mutant allele, an A-->T nucleotide transversion in a splice donor site causes exon skipping and deletion of 51 amino acids in the CLOCK protein. Clock is a unique gene with known circadian function and with features predicting DNA binding, protein dimerization, and activation domains. CLOCK represents the second example of a PAS domain-containing clock protein (besides Drosophila PERIOD), which suggests that this motif may define an evolutionarily conserved feature of the circadian clock mechanism.

Amino Acid Sequence↗

Positional cloning without a genome map: using 'Targeted RFLP Subtraction' to isolate dense markers tightly linked to the regA locus of Volvox carteri.

The ability to isolate genes defined by mutant phenotypes has fueled the rapid progress in understanding basic biological mechanisms and the causes of inherited diseases. Positional cloning, a commonly used method for isolating genes corresponding to mutations, is most efficiently applied to the small number of model organisms for which high resolution genetic maps exist. We demonstrate a new and generally applicable positional cloning method that obviates the need for a genetic map. The technique is based on Restriction Fragment Length Polymorphism (RFLP) Subtraction, a method that isolates RFLP markers spanning an entire genome. The new method, Targeted RFLP Subtraction (TRS), isolates markers from a specific region by combining RFLP Subtraction with a phenotypic pooling strategy. We used TRS to directly isolate dense markers tightly linked to the regA gene of the eukaryotic green alga Volvox. As a generally applicable method for saturating a small targeted region with DNA markers, TRS should facilitate gene isolation from diverse organisms and accelerate the process of physically mapping specific regions in preparation for sequence analysis.

Algal Proteins↗

Positional cloning approach to the dominant polycystic kidney disease gene, PKD1.

Positional cloning is a powerful strategy for identifying the site of disease-producing mutations when the underlying biochemical defect is unknown. The approach also offers new methods for the presymptomatic diagnosis of genetic disease. Using these methods we have localized the PKD1 gene, mutated in the majority of PKD1 families, to a small (500 kb) segment of chromosome 16, band p13.3. Virtually all of this interval has been cloned in cosmids and lambda bacteriophage. Over 20 sets of non-overlapping cDNA clones have been isolated from the region. Sequence and mutational analyses are currently underway. In addition, a set of polymorphic clones has been identified for presymptomatic diagnosis. Included in this set are several highly variable [CA]n microsatellite repeats. These highly informative markers can be rapidly assayed from a small amount of genomic DNA using the polymerase chain reaction. Despite these advances, presymptomatic diagnosis cannot be established with certainty in many families. However, identification of the PKD1 gene itself will eventually allow diagnosis by direct detection of mutations.

Base Sequence↗

Progress in searching for susceptibility gene for inflammatory bowel disease by positional cloning.

Inflammatory bowel disease (IBD) includes two clinical subtypes: Crohn disease (CD) and ulcerative colitis (UC). The general prevalence is about 1.0-2.0 % in Western countries. It is predominantly regarded as a multifactorial disorder involving environmental factors and polygenic defects. The view was confirmed by a lot of evidences from clinical attributions and animal models, especially from epidemiological investigations. So the etiological study of IBD has been focused on searching for susceptibility genes by positional cloning, which consists of two steps: linkage analysis and association analysis. Linkage analysis has been an important method of searching for susceptibility genes to polygenic diseases as well as single-gene disorders. IBD, as a polygenic disease, has been widely investigated by linkage analysis for susceptibility gene since 1996. The paper reviewed 38 articles, which covered almost all original researches in relation to IBD and linkage analysis. So far, several loci, such as 16q, 12q, 6p and 3p, have been identified by the studies. The most striking is 16q12 (IBD1), which linked only with CD not UC in the majority of studies. Association analysis, as one essential step for positional cloning, is usually carried out by genotyping candidate genes selected by means of linkage analysis or other methods, for figuring out the frequencies of alleles and comparing the frequencies between IBD group and healthy control group to identify the specific allele. It has been established that IBD is implicated in immune disorder. So the studies were centered on the genes of NOD2/CARD15, HLA-II, cytokine, cytokine receptor and adhesion molecule. This paper reviewed 14 original articles on association between NOD2 and IBD that have been published since 2001. All results, with the exception of one report from a Japanese group, provide evidences that the three kinds of variants of NOD2 are susceptibility factors for IBD. This article also comprehensively analyzed 18 original researches of HLA gene polymorphism in IBD. We found extensive discrepancy among the conclusions and a novel hypothesis was put forward to explain the discordance. Most studies published recently on association between IBD and cytokine gene polymorphism were reviewed.

Carrier Proteins↗

Detection and positional cloning of blood pressure quantitative trait loci: is it possible? Identifying the genes for genetic hypertension.

Identification of the quantitative trait loci that influence blood pressure and cause genetic hypertension is a major challenge. Several genetically hypertensive rat strains exist and can be used to locate by linkage analysis broad chromosomal regions containing blood pressure quantitative trait loci. Such broad chromosomal regions, and the narrower subregions, can be moved among strains (ie, production of congenic strains and congenic substrains) to identify small chromosomal regions containing the blood pressure quantitative trait loci. However, ultimate positional cloning of the quantitative trait loci presents a major difficulty because the genetic variants involved are likely to result in subtle changes in function rather than the blatant loss of function characteristic of all mendelian disease genes discovered so far by positional cloning.

Animals↗

The diastrophic dysplasia gene encodes a novel sulfate transporter: positional cloning by fine-structure linkage disequilibrium mapping.

Diastrophic dysplasia (DTD) is a well-characterized autosomal recessive osteochondrodysplasia with clinical features including dwarfism, spinal deformation, and specific joint abnormalities. The disease occurs in most populations, but is particularly prevalent in Finland owing to an apparent founder effect. DTD maps to distal chromosome 5q and, based on linkage disequilibrium studies in the Finnish population, we had previously predicted that the DTD gene should lie about 64 kb away from the CSF1R locus. Here, we report the positional cloning of the DTD gene by fine-structure linkage disequilibrium mapping. The gene lies in the predicted location, approximately 70 kb proximal to CSF1R, and encodes a novel sulfate transporter. Impaired function of its product is likely to lead to undersulfation of proteoglycans in cartilage matrix and thereby to cause the clinical phenotype of the disease. These results demonstrate the power of linkage disequilibrium mapping in isolated populations for positional cloning.

Amino Acid Sequence↗