Search PubMed⌕ Search

Biomedical subjects

C Plass

Publications and source records attributed to C Plass.

49 records · Page 3Linked to original sources

Genetic mapping of restriction landmark genomic scanning loci in the mouse.

Restriction landmark genomic scanning (RLGS) was originally proposed as a high-speed method for surveying a large number of restriction landmarks in genomic DNA. The effort to apply this method to genetic analysis has been made, resulting in developing the new approach for the rapid construction of the genetic map of complex mammalian genomes (RLGS spot mapping). Especially, the use of NotI as the restriction landmark for genetic studies suggests that there is a high probability that a significant number of these RLGS loci will be associated with CpG islands of functional genes. Moreover, it is possible to use the RLGS spot mapping to analyze genetic map-poor species very rapidly for linkage of recessive mutations or segregating traits, because it does not rely upon cloned probes or sequences. In this paper, we summarize the progress that has been made in the practical application of the RLGS method to genetic analysis using congenic strains, recombinant inbred (RI) strains, and in interspecific backcrosses of mice.

Animals↗

A single gel analysis of 575 dominant and codominant restriction landmark genomic scanning loci in mice interspecific backcross progeny.

We identified 575 new NotI landmarks of C57BL/6(B)- and M. spretus (S)-specific, dominant and codominant loci which were segregated in B x S interspecific backcrosses (BSS), using the restriction landmark genomic scanning (RLGS) spot mapping method. All of these loci were visualized on a single RLGS profile which was produced with NotI-PvuII-PstI. These landmarks include 250 newly identified S-specific spots in addition to the previously reported 325 B-specific spots. The S-specific spots were identified by reading full or half intensity, based on the property that the spot intensity of the autoradiographic signal reflected the copy number of an end-labeled restriction landmark. The cumulative map is 1341 cM and it is based upon 985 meiotic events in 72 backcross progeny. This map covers 90% of the total estimated length of the mouse genetic map. This map provides a good tool for the high-speed genome scanning assay in the mouse genome by a single RLGS gel analysis.

Animals↗

Comparative analysis of mouse NotI linking clones with mouse and human genomic sequences and transcripts.

NotI cleavage sites are frequently associated with CpG islands that identify the 5' regulatory sites of functional genes in the genome. Therefore we analyzed a sample of 22 NotI linking clones prepared from mouse brain DNA, to determine whether these mouse NotI site associated clones could be used for comparative analysis of mouse and human genomes by cross-reaction with both mouse and human genomic DNA and RNA in Southern and Northern hybridization. We further examined whether we could establish the identity of these clones with known genes by comparing the nucleotide sequences surrounding the NotI site with the GenBank database. We observed that 70% of the clones cross-hybridized with human DNA and that 4 of 11 tested clones (36%) detected a transcript in human HeLa cells RNA whereas 73% clones (8/11) detected transcripts in mouse RNAs from one or more organs. Single pass sequence analysis was successful on 16 of 19 clones. The GC content in these sequence was very high (48.8% to 73.8%) suggesting that 12 of 16 sequenced clones contained a CpG island. Three out of 19 clones showed significant similarity with previously analyzed mouse gene sequences in GenBank, including the mouse rRNA gene family, cathepsin and the scip POU-domain genes. In addition, two sequences showed significant similarity to the human and rabbit protein phosphatase 2A-beta subunit and the human transforming growth factor-beta. Thus, 5 of 16 clones showed homology with identified genes. These results and the recent work of using RLGS methods for genetic mapping indicate that NotI linking clones can be used to efficiently cross reference a comparative analysis of the mouse and human genomic maps.

Animals↗

A member of the mouse LRR transcript family with homology to the human Sp100 gene.

A previously isolated cDNA sequence with homology to the long-range repeat (LRR) cluster in chromosome 1 of the house mouse, Mus musculus, was identified as derived from a 1.3 kb polyadenylated RNA. This transcript belongs to a family of polyadenylated RNAs which are synthesized from a multicopy gene included in the LRR copies. The representation of the 1.3 kb transcript in genomic DNA was studied in lambda and cosmid clones from the LRR cluster. Two different types of LRRs were detected with respect to the arrangement of coding regions. In the type-1 arrangement, the sequence is split into five exons, and in the type-2 arrangement, into six exons. The respective exons with their flanking regions were sequenced. The analysis of splice signals revealed that LRR copies with a type-1 arrangement are presumably the source of the 1.3 kb transcript. The 1.3 kb transcript has sequence homology to a human gene encoding Sp100, a nuclear antigen recognized by autoantibodies from patients suffering from some autoimmune diseases including primary biliary cirrhosis. Mouse exons II and III exhibit 71% homology at the nucleotide level and 56% homology at the amino acid level to the human Sp100 cDNA. We mapped the human Sp100 gene to chromosome 2. This location corroborates the assumption that the human Sp100 gene and the mouse LRR gene are homologous, as the human chromosome 2 contains the segment which is homologous to the mouse LRR region.

Amino Acid Sequence↗

A transcript family from a long-range repeat cluster of the house mouse.

A family of closely related genes is a component of the polymorphic long-range repeat cluster D1Lub1 of the house mouse. Members of the gene family have diverged from one another by rearrangements and point mutations. D1Lub1 cluster have low (approximately 50) or high (> or = 500) copy numbers. In mice with high-copy clusters five or six poly(A)+ RNAs are found, while in mice with low-copy clusters only a single member of the RNA family is detected. The RNA family is synthesized in a tissue-independent manner. Each member of the RNA family is defined by a set of DNA probes. Cross hybridization with the probes reveals common 5' regions and variable remaining parts. The RNA variants are probably transcribed from different gene copies.

Animals↗

Comparative mapping of the imprinted U2afbpL gene on mouse chromosome 11 and human chromosome 5.

The genetic map location of the recently discovered imprinted gene U2afbpL has been verified and refined in several mouse crosses. RI strain analysis had previously shown that the gene is located on mouse chromosome 11. This assignment has been verified using interspecific backcrosses. Moreover, the location of the gene relative to a fixed order of markers in the proximal region of mouse chromosome 11 has been established. The location of the gene on mouse chromosome 11 corresponds to a homologous linkage group that is conserved on human chromosome 5q. The location of the human homologue has been determined using both somatic cell hybrid genetic analysis and fluorescence in situ hybridization. These analyses have mapped the human locus U2AFBPL to human chromosome 5q23-->q31.

Animals↗

Molecular cloning of polymorphic markers on RLGS gel using the spot target cloning method.

A new method for target cloning of DNA fragments corresponding to spots on the two-dimensional restriction landmark genomic scanning (RLGS) profile has been developed (targeted spot cloning). We used a Not I restriction trapper to select target DNA fragments from Not I, Eco RV double digests of genomic DNA. The use of the restriction trapper substantially reduces the background clones that are established from the direct recovery of RLGS spot DNA from the two-dimensional gels. Genomic DNA clones were isolated in this study as mouse genome markers for 58 spot loci that were previously characterized using RLGS spot mapping. This method provides a powerful tool for isolating DNA clones after their identification by RLGS system.

Animals↗

Evolution of a long-range repeat family in chromosome 1 of the genus Mus.

Copy numbers and variation of a clustered long-range repeat family on chromosome (Chr) 1 have been studied in different species of the genus Mus. The repeat sequence was present in all, as inferred from cross-hybridization with probes derived from the Mus musculus repeat family. Copy numbers determined by dot blot hybridization were very low, from three to six per haploid genome in M. caroli, M. cervicolor, and M. cookii. These species form one branch of the phylogenetic tree in the genus Mus. In the other group of phylogenetically related species--M. spicilegus, M. spretus, M. musculus and M. macedonicus--copy numbers ranged from 6 to 1810 per haploid genome. The repeat cluster is cytogenetically visible as a fine C-band in M. macedonicus and as a C-band positive homogeneously staining region (HSR) in several populations of M. m. domesticus and M. m. musculus. When cytogenetically visible, the clusters contained from 179 to 1810 repeats. Intragenomic restriction fragment length polymorphisms (RFLPs), which reflect sequence variation among different copies of the long-range repeat family, increased with higher copy numbers. The high similarity of the RFLP pattern among genomes with C-band positive regions in Chr 1 of M. m. musculus, M. m. domesticus, and M. macedonicus points to a close evolutionary relationship of their Chr 1 repeat families.

Animals↗

Evolution of a B2 tagged sequence from a long-range repeat family in the genus Mus.

A long-range repeat family of more than 50 kb repeat size is clustered in Chromosomes (Chr) 1 of Mus musculus and M. spretus. In M. musculus this long-range repeat family shows considerable variation of copy-number frequency and contains coding regions for at least two genes. In an intron of a gene, which is part of the repeat, a B2 small interspersed repetitive element (SINE) is inserted at identical positions. The B2 element is present in all copies of the long-range repeat family; it was presumably a component of the ancestral single-copy precursor sequence that gave rise by amplification to the repeat family. Copies of the long-range repeat family vary with respect to the number of TAAA tandem repeats in the A-rich 3' end region of the B2 element. As inferred from polymerase chain reaction (PCR) data, presence and frequency of repeat number variants in the (TAAA)n block are strain and species specific. The B2 element and its flanking regions were sequenced from two copies of the long-range repeat family. Sequence divergence between the two copies (only non-CG base substitutions and deletions/insertions) was determined to be 2.6%. Based on the drift rate in human Alu elements and a correction for the higher drift rates in rodents, an estimate for the divergence time of 1.7 million years was calculated. Since the long-range repeat family is present in M. musculus and M. spretus, it must have evolved by amplification before the separation of the two species about 1-4 million years ago.

Animals↗

A long-range repeat cluster in chromosome 1 of the house mouse, Mus musculus, and its relation to a germline homogeneously staining region.

The laboratory mouse C57BL genome contains about 50 copies of a long-range repeat DNA family clustered in the C-D region of chromosome 1. The repeat length is more than 50 kb and includes sequences homologous to at least two mRNAs. There are small differences in the copies of this repeat family such as restriction site mutations and gross differences like rearrangements and insertions of LINE1 elements. A germline homogeneously staining region occurring as a chromosome 1 polymorphism in many feral populations of the house mouse is an amplified version of this long-range repeat cluster.

Animals↗

Transcripts from amplified sequences of an inherited homogeneously staining region in chromosome 1 of the house mouse (Mus musculus).

Several populations of the house mouse, Mus musculus, are polymorphic for the presence or absence of an inherited homogeneously staining region (HSR) in chromosome 1. The HSR consists of highly amplified DNA sequences, present in low copy numbers in the HSR- genome. A cloned HSR-derived genomic sequence detected transcripts of about 1.3 and 4.5 kb on blots of poly(A)+ RNA from liver of HSR+ mice but not from that of HSR- mice. A cDNA library was established from RNA of HSR+ mice and screened with the HSR-derived genomic clone. Positive clones were isolated and shown to be complementary to the 1.3-kb RNA species and to amplified DNA sequences in the HSR+ genome. The combined sequence of four overlapping cloned cDNAs is 959 nucleotides long and includes an open reading frame encoding a putative protein of 208 amino acids. The pertinent gene is unidentified. No homologous sequence is stored in the EMBL data base. A stretch of 109 nucleotides at the 3' end of the 1.3-kb RNA homology region in the same genomic fragment, as indicated by hybridization data and sequence motifs resembling promoter elements. Thus, our data suggest that at least two genes or gene families are encoded in the HSR.

Amino Acid Sequence↗

Global methylation profiling of lung cancer identifies novel methylated genes.

Epigenetic changes, including DNA methylation, are a common finding in cancer. In lung cancers methylation of cytosine residues may affect tumor initiation and progression in several ways, including the silencing of tumor suppressor genes through promoter methylation and by providing the targets for adduct formation of polycyclic aromatic hydrocarbons present in combustion products of cigarette smoke. Although the importance of aberrant DNA methylation is well established, the extent of DNA methylation in lung cancers has never been determined. Restriction landmark genomic scanning (RLGS) is a highly reproducible two-dimensional gel electrophoresis that allows the determination of the methylation status of up to 2000 promoter sequences in a single gel. We selected 1184 CpG islands for RLGS analysis and determined their methylation status in 16 primary non-small cell lung cancers. Some tumors did not show methylation whereas others showed up to 5.3% methylation in all CpG islands of the profile. Cloning of 21 methylated loci identified 11 genes and 6 ESTs. We demonstrate that methylation is part of the silencing process of BMP3B in primary tumors and lung cancer cell lines.

Aged↗

[Hypermethylation as a potential prognostic factor and a clue to a better understanding of the molecular pathogenesis of medulloblastoma--results of a genomewide methylation scan].

BACKGROUND: The molecular mechanisms controlling initiation and progression of medulloblastomas are largely unclear. Changes in DNA methylation of promoter regions have been shown to disturb the expression of growth regulatory genes. PATIENTS AND METHODS: We evaluated DNA methylation patterns in 17 medulloblastomas, 5 stPNETs and 5 medulloblastoma cell lines using Restriction Landmark Genomic Scanning (RLGS), a method displaying up to 2.000 potential gene loci in a single gene. To test whether previously characterized tumor suppressor genes are affected by hypermethylation we performed MS-PCR for p15INK4B, p16INK4A, VHL, TP53 and E-cadherin. RESULTS: The analysis of RLGS profiles from tumors revealed an abundance of hypermethylation in primary tumors and cell lines. Extrapolated to the human genome with its approximately 36,000 genes a total of 420 loci become hypermethylated in the tumor genomes. The previously characterized medulloblastoma breakpoint cluster in 17p11.2 appears to be a hotspot for aberrant methylation. Cox regression analysis of survival data identified seven CpG islands for which hypermethylation is suggestive of a poor prognosis. MS-PCR analysis of known genes demonstrated hypermethylation of p16INK4A in a limited number of tumors. The pattern of DNA hypermethylation was similar in medulloblastomas and stPNETs. However, some CpG islands were shown to be specific for a tumor type, while others were shared targets. CONCLUSIONS: Hypermethylation is a common abnormality in primary medulloblastomas and supratentorial PNETs. Several hundreds of CpG islands are potential targets for methylation in medulloblastomas including the breakpoint cluster in 17p11.2. The methylation status of certain gene sequences appears to be associated with the clinical outcome. Promoter hypermethylation has an outstanding potential as a marker for the identification of novel tumor suppressors as well as diagnostic and therapeutic targets in medulloblastomas.

Adolescent↗