Search PubMedSearch

SEARCH · Search PubMed

Results for “simple sequence repeat”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

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

At least 235 records · Page 13Linked to original sources

Representative and efficient cloning of satellite DNAs based on PFGE pre-fractionation of restriction digests of genomic DNA.

Using DNA from Drosophila hydei KUN-DH-33 cells we describe an efficient method for selective and representative cloning of complex mixtures of satellite DNAs from eukaryotic genomes. Effective separation of satellite DNA from the bulk of all other sequences it obtained by fractionation of high molecular weight DNA by PFGE after treating it with '6 bp' restriction enzymes. Since extended clusters of tandemly arranged, so called simple sequence, repeats are inert to cleavage by most '6 bp' restriction enzymes the DNA fraction recovered from the gel region > 50 kb is mainly a mixture of satellites. Efficient and representative cloning of this DNA is performed by sonication to an average size of 50-500 bp and ligation of the blunt ended DNA fragments into the Bluescript vector pBS.

Animals

Chromosomal localization of the neurological mouse mutations tottering (tg), Purkinje cell degeneration (pcd), and nervous (nr).

We have refined the map positions and identified molecular markers for three neurological mutations in the mouse, tottering (tg), Purkinje cell degeneration (pcd), and nervous (nr). These mutations were localized using simple sequence length polymorphisms between the mouse strain on which the mutation arose and the inbred strain onto which the mutation was bred. This approach to mutation mapping is generalizable to any mutant that has been backcrossed for several generations. The tg mutation was localized to the 1.1 cM region of chromosome 8 distal to simple sequence repeat (SSR) D8Mit103 and proximal to SSRs D8Mit79, D8Mit105, and D8Mit283. The pcd locus was mapped to the 5 cM interval of chromosome 13 between SSRs D13Mit139 and D13Mit67, and the nr locus was mapped between SSRs D8Mit155 and D8Mit18, a 5.6 cM region of chromosome 8. For each mutation, several SSRs distinguishing mutant from wild type chromosomes were identified within these regions. The definition of molecular markers distinguishing mutant from wild type alleles makes possible for the first time identification of tg, pcd, and nr mutants prior to behavioral manifestation of the mutant genotype. Thus, developmental studies of these mutants designed to describe or dissect the biochemical basis of the induction of the mutant phenotype are now feasible.

Alleles

Tumor necrosis factor microsatellites in four European populations.

The human genome contains a large number of interspersed simple repeat sequences that vary in length among individuals and can therefore serve as highly informative polymorphic markers. Several such variable sites (microsatellites) have been described within the TNF genes within the MHC. In this study, individuals from four Caucasian populations have been typed for three TNF-associated microsatellites in order to define their haplotypes. Of the 208 possible haplotypes, eight exist at a high frequency in all populations and account for approximately 60% of the haplotypes studied, but with marked variations in their frequencies among populations. A few population/sample-specific haplotypes have been identified. The ability of alleles to define haplotypes uniquely varies not only among the loci, but also among the alleles: some alleles displaying complete gametic association (linkage disequilibrium) and others displaying very little.

Alleles

Structure and in vitro transcription of a mouse B1 cluster containing a unique B1 dimer.

A highly repetitive DNA element located 950 bp upstream from a mouse U2 small nuclear RNA gene has been cloned and characterized. The repetitive element is composed of a simple sequence repeat and a cluster of three B1 sequences. Two of these B1 elements are arranged head-to-tail and are joined by an oligo(dA)-rich linker. This unique B1 dimer, comprised of 339 bp, resembles the dimeric structure of primate Alu-family sequences, particularly that of a prototypic human Alu element. The other B1 element within the mouse cluster is a typical monomeric unit. Transcription studies performed in HeLa cell extracts with deletion mutants of the B1 cluster reveal that the single B1 unit is expressed at least 50 times more efficiently than the B1 dimer region. Furthermore, the B1 dimer which contains mutations in the first polymerase III promoter region is not transcribed end-to-end. We conclude that this B1 dimer is unlikely to give rise to a new dimeric retroposon family in the mouse genome.

Animals

Human ribosomal DNA: conserved sequence elements in a 4.3-kb region downstream from the transcription unit.

The sequence of 4366 bp of nontranscribed spacer (NTS) human ribosomal DNA (rDNA) located downstream from the 3' end of the transcription unit has been determined. The NTS rDNA is rich in pyrimidine nucleotides (31% T and 30% C) that tend to occur on the coding strand in runs of simple sequence repeats. Other highly repetitive sequence elements are also represented, including tracts of (dA-dC)26 and (dG-dT)29 on the coding strand downstream from the putative termination of transcription. Still farther downstream, two Alu repeat sequences are found. Such sequences are also found in rat DNA at comparable locations, consistent with the possibility of a comparable functional role.

Base Composition

The generation of a library of PCR-analyzed microsatellite variants for genetic mapping of the mouse genome.

Forty-three sequences containing simple sequence repeats or microsatellites were generated from an M13 library of total genomic mouse DNA. These sequences were analyzed for size variation using the polymerase chain reaction and gel electrophoresis without the need for radiolabeling. Seventy-two percent of the sequences showed allelic size variations between different inbred strains of mouse and the wild mouse, Mus spretus; and 53% showed variation between inbred strains. Thirty-seven percent were variant between B6/J and DBA/2J, and 81% of these were resolved using minigel agarose electrophoresis alone. This approach is a useful way of generating the large number of variants that are needed to create high resolution maps of the mouse genome.

Animals

Molecular mapping of mouse chromosomes 4 and 6: use of a flow-sorted Robertsonian chromosome.

The development of dense genetic maps of mammalian chromosomes is facilitated when chromosome-specific libraries are used as a source of genetic markers. To saturate the genetic maps of mouse chromosomes 4 and 6, we have made use of fluorescent-activated chromosome sorting to purify a 4:6 Robertsonian chromosome from a cell line harboring the Rb(4:6)2Bnr translocation. After staining with chromomycin A3 and Hoechst 33528, this chromosome was separated from the other mouse chromosomes. DNA was isolated from the fraction containing the Robertsonian chromosome and subcloned into the insertion vector lambda gt10, generating a library with 4.6 x 10(5) independent phage. A total of 19 single-copy sequences were used to type the progeny of a C57BL/6J x Mus spretus backcross that had previously been typed for loci on chromosomes 4 and 6. Approximately 70% of the clones in the library mapped to either chromosome 4 or 6 as assessed by genetic mapping and by use of a somatic cell hybrid panel. Simple sequence repeats have also been isolated from this library. Further characterization of these microsatellites should accelerate efforts to map mouse chromosomes 4 and 6 using PCR. In addition, flow sorting of Robertsonian chromosomes suggests a general approach for making chromosome-specific libraries in mouse.

Animals

A genetic linkage map of human chromosome 20 composed entirely of microsatellite markers.

Twenty-six (CA)n polymorphic microsatellites were isolated from a flow-sorted chromosome 20 library. To reduce the number of sequencing gels, these microsatellites were genotyped on 15 CEPH families using a procedure derived from the multiplex sequencing technique of G. M. Church and S. Kieffer-Higgins (1988, Science 240:185-188). A primary map with a strongly supported order was constructed with 15 (CA)n markers. Regional localizations for the 11 other microsatellites were obtained with regard to the primary map. The 26 loci span approximately 160 cM. Regional localizations for a set of index markers (D20S4, D20S6, D20S16, and D20S19) and for other markers from the CEPH Public Database (D20S5, D20S15, D20S17, and D20S18) have also been determined. The total map spans a genetic distance of approximately 195 cM extending from the (CA)n marker IP20M7 on 20p to D20S19 on 20q. The density of microsatellite markers is markedly higher in the pericentromeric region, with an average distance of 3 to 4 cM between adjacent markers over a distance of 43 cM. Two-thirds of these randomly isolated microsatellites are clustered in that region between D20S5 and D20S16 representing approximately one-fourth of the linkage map. This might suggest a nonrandom distribution of (CA)n simple sequence repeats on this chromosome.

Chromosome Mapping

COL5A1: fine genetic mapping and exclusion as candidate gene in families with nail-patella syndrome, tuberous sclerosis 1, hereditary hemorrhagic telangiectasia, and Ehlers-Danlos Syndrome type II.

COL5A1, the gene for the alpha 1 chain of type V collagen, has been considered a candidate gene for certain diseases based on chromosomal location and/or disease phenotype. We have employed 3'-untranslated region RFLPs to exclude COL5A1 as a candidate gene in families with tuberous sclerosis 1, Ehlers-Danlos syndrome type II, and nail-patella syndrome. In addition, we describe a polymorphic simple sequence repeat (SSR) within a COL5A1 intron. This SSR is used to exclude COL5A1 as a candidate gene in hereditary hemorrhagic telangiectasia (Osler-Rendu-Weber disease) and to add COL5A1 to the existing map of "index" markers of chromosome 9 by evaluation of the COL5A1 locus on the CEPH 40-family reference pedigree set. This genetic mapping places COL5A1 between markers D9S66 and D9S67.

Base Sequence

Cytosolic phospholipase A2 gene in human and rat: chromosomal localization and polymorphic markers.

We report the chromosomal localization and a simple sequence repeat (SSR) in the cytosolic phospholipase A2 (cPLA2) gene in both human and rat. A (CA)18 repeat in the promoter of the rat gene was determined to exhibit length polymorphism when analyzed using the polymerase chain reaction (PCR) in 19 different inbred rat strains. Genotyping for this marker in 234 F2 progeny of a SHR x BN intercross mapped the gene to rat chromosome 13. Using a PCR strategy, a fragment of the promoter for the human gene was isolated, and a (CA)18 repeat was identified. Since this marker displayed a low heterozygosity index, we also identified a mononucleotide repeat in the promoter for cPLA2 that displayed a polymorphism information content value of 0.76. The human gene was mapped using fluorescence in situ hybridization (FISH) to chromosome 1q25. Of interest, the gene encoding the enzyme prostaglandin-endoperoxide synthase 2 (cyclooxygenase-2), which acts on the arachidonic acid product of cPLA2, was previously localized to this same chromosomal region, raising the possibility of coordinate regulation. Identification of intragenic markers may facilitate studies of polymorphic variants of these genes as candidates for disorders in which perturbations of the eicosanoid cascade may play a role.

Animals

High-resolution physical mapping of a 250-kb region of human chromosome 11q24 by genomic sequence sampling (GSS).

A physical map of the region of human chromosome 11q24 containing the FLI1 gene, disrupted by the t(11;22) translocation in Ewing sarcoma and primitive neuroectodermal tumors, was analyzed by genomic sequence sampling. Using a 4- to 5-fold coverage chromosome 11-specific library, 22 region-specific cosmid clones were identified by phenol emulsion reassociation hybridization, with a 245-kb yeast artificial chromosome clone containing the FLI1 gene, and by directed "walking" techniques. Cosmid contigs were constructed by individual clone fingerprinting using restriction enzyme digestion and assembly with the Genome Reconstruction and AsseMbly (GRAM) computer algorithm. The relative orientation and spacing of cosmid contigs with respect to the chromosome was determined by the structural analysis of cosmid clones and by direct visual in situ hybridization mapping. Each cosmid clone in the contig was subjected to "one-pass" end sequencing, and the resulting ordered sequence fragments represent approximately 5% of the complete DNA sequence, making the entire region accessible by PCR amplification. The sequence samples were analyzed for putative exons, repetitive DNAs, and simple sequence repeats using a variety of computer algorithms. Based upon the computer predictions, Southern and Northern blot experiments led to the independent identification and localization of the FLI1 gene as well as a previously unknown gene located in this region of chromosome 11q24. This approach to high-resolution physical analysis of human chromosomes allows the assembly of detailed sequence-based maps and provides a tool for further structural and functional analysis of the genome.

Base Sequence

Mismatch repair and cancer susceptibility.

Mismatch-repair systems have been identified in organisms ranging from Escherichia coli to humans. They can repair almost all DNA base pair mismatches as well as small insertion/deletion mismatches. Molecular and biochemical analyses have shown that the core components of eukaryotic mismatch-repair systems are highly homologous to their bacterial counterparts. In humans, defects in four mismatch-repair genes have been linked both to hereditary non-polyposis colorectal cancer and to spontaneous cancers that exhibit rearrangements in DNA containing simple repeat sequences.

DNA Repair

Microsatellite polymorphisms and the genetic linkage map of the human genome.

The use of simple sequence repeats as polymorphic genetic markers has significantly facilitated the construction of reference maps of the human chromosomes and the mapping of mendelian genetic diseases. These markers display major advantages over other systems, including restriction fragment length polymorphisms and satellites, but also have some limitations.

Animals

Familial hyperinsulinism with apparent autosomal dominant inheritance: clinical and genetic differences from the autosomal recessive variant.

We describe three families with hypoglycemia caused by familial hyperinsulinism (HI) in whom vertical transmission of the disorder occurred, suggesting autosomal dominant (AD) inheritance. We therefore examined the relationship between the apparent AD disorder and the more common autosomal recessive (AR) form of HI, which has recently been linked to the sulfonylurea receptor on chromosome 11p15.1. The clinical features of the 11 patients with AD HI were milder than those seen in 14 patients with AR HI. Hypoglycemia was readily controlled with either diet alone or with diazoxide in 10 of 11 patients with AD HI but in none of those with the AR form. In one large pedigree, analysis of genomic DNA with polymorphic simple sequence repeat markers excluded linkage of AD HI to the SUR locus in a dominant manner. The possibility of linkage to the SUR locus could not be absolutely excluded in the two smaller pedigrees. None of the published mutations of the SUR gene identified in patients with AR HI were detected in the patients with the AD form. We conclude that the AD form of hyperinsulinism is phenotypically different from the AR variant. The identification of more families with this form of HI may make it possible to locate the responsible gene by the use of linkage analysis.

Adolescent

Frequent alterations in gene expression in colon tumor cells of the microsatellite mutator phenotype.

Tumors of the microsatellite mutator phenotype (MMP) are characterized by the accumulation of many thousands of somatic mutations in tracts of simple repeated sequences or microsatellites. Using arbitrarily primed PCR fingerprinting of RNA (RAP-PCR), we have comparatively analyzed the overall gene expression patterns of several colorectal tumor cell lines with and without the MMP. A reproducible pattern of 30-40 main products was obtained for each fingerprint with a total of about 200 cell transcripts analyzed. Differences in RAP-PCR fingerprints were detected between these tumor cell lines. Some of these expression polymorphisms appeared to be specific for tumor cells of the MMP because they were present in two or more different MMP+ cell lines but absent in all MMP- cell lines analyzed. We also analyzed RNAs prepared from single cell clones isolated from these tumor cell lines. Reproducible differences in the fingerprints were detected between single cell clones from each of the cell lines analyzed. Examples of single cell clone-specific fingerprint differences from one of the MMP tumor cell lines were cloned and sequenced. Differential expression of some of these sequences was confirmed by Northern analysis using the cloned fragments as probes. Similar fingerprint alterations were also observed among single cell clones derived from single cell clones from mutator tumor cell lines, which appeared to exhibit higher clonal variation in gene expression compared with MMP- cells. The detection of inter- and intra-tumor alterations in gene expression by unbiased RAP-PCR show that these fluctuations occur with high frequency in tumor cells of the MMP. These results indicate that the profound genomic instability of tumor cells of the MMP is also reflected in a high incidence of alterations in their patterns of gene expression.

Blotting, Northern

Neuronal and behavioral differences between Mus musculus domesticus (C57BL/6JBy) and Mus musculus castaneus (CAST/Ei).

Previous studies have demonstrated that classical inbred strains of laboratory mice do not exhibit large genetic distances when simple sequence repeats (SSRs) are used to test for their polymorphisms whereas mice from wild origin exhibit high polymorphisms (more than 90%) for these sequence when compared with classical inbred strains of laboratory mice. The difference between Mus musculus castaneus and C57BL/6J reaches 98% and F1s male and female are fertile. These two properties pave the way for gene mapping derivating segregating generations between these strains. The phenotypical characteristics of Mus musculus castaneus have not been investigated, unfortunately. The first screening of Mus musculus castaneus and C57BL/6By was carried out for sensorial and motor development, spontaneous behavior in new environment, paw preference, maternal behavior, aggression in two different situations and time to learn escape in a water maze. Morphometry of hippocampus and weight of the male reproductive organs for measures that have been reported to be correlated with several of the examined behavior are also reported. The authors tested also reactivity to one drug (beta-CCM) revealing seizure proneness. The two strains differ for 69% of the reported measures. Comparison to other strains for the same measures obtained in the laboratory for identical tests with mice reared in identical situations provided the mean to compare Mus musculus castaneus with a large set of more or less traditional mice. This strain has the most extreme position for 80% of the comparisons.

Aggression

Organisation and informational content of the Theileria parva genome.

When compared with other Apicomplexan organisms, Theileria parva has an exceptionally small, 10-12 Mbp, genome. There are only 4 chromosomes, each in the Mbp range, and a complete physical map, based on SfiI linking data, is available for each one. A number of genes and cDNAs have been mapped to specific SfiI fragments. Telomeres consist of the simple repeat sequence typical of chromosomal ends but sub-telomeric homologies do not extend beyond 5 kbp. The only dispersed repetitive sequences identified to date are minisatellites, but these are found on a subset of SfiI fragments. There are clusters of distinct multicopy sequences which contain ORFs. However, the majority of parasite protein coding genes are present in a single copy. They have a compact structure, exhibit a bias in codon usage and non-translated regions are small. Introns, if present, are unusually short. Overall, the genome contains remarkably little repetitive, non-coding DNA. The parasite mitochondrial DNA is linear in structure, has a limited protein coding capacity and fragmented rRNA genes and its telomeres contain inverted repeat sequences.

Animals