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Chromosomal losses and gains in meningiomas: comparative genomic hybridization (CGH) study of the whole genome.

We investigated chromosomal aberrations in meningiomas using newly developed comparative genomic hybridization (CGH) technique and compared the results with the proliferating potential of the tumors. This technique permits the entire genome to be surveyed in one session of experiments. Our results revealed chromosomal aberrations in 5 out of 10 (50%) of the tumor samples studied. Losses of the distal parts of chromosome 1p (5 out of 10) and 22q (3 out of 10) were the two most frequent chromosomal aberrations. Losses and/or gains in other regions were only sporadic. The MIB-1 staining indices (MIB-SI, %) were 1.9 +/- 0.9% (mean +/- SD) in benign (n = 8), 4.5% in atypical (n = 1), and 11.7% in anaplastic (n = 1) meningiomas. The comparison of MIB-SI between the tumors with (2.3 +/- 0.6%) and without (1.6 +/- 0.3%) chromosomal aberrations demonstrated a trend towards an increased MIB-SI in meningiomas with chromosomal aberrations (p < 0.07) by unpaired Student's t-test. This study suggests that alterations in chromosomes 1p and 22q could be a primary focus of further detailed assessment of tumorigenesis and in understanding the biological behavior of meningiomas.

Adolescent↗

Privacy protection for clinical and genomic data. The use of privacy-enhancing techniques in medicine.

Privacy includes the right of individuals and organisations to determine for themselves when, how and to what extent information about them is communicated to others. The growing need of managing large amounts of both clinical and genetic data raises important legal and ethical challenges. This paper introduces some of the privacy-protection problems related to classical and genomic medicine, and highlights the relevance of trusted third parties and of privacy-enhancing techniques (PETs) in the context of data collection, e.g., for research. Practical approaches based on two pseudonymisation models, for both batch data collection and interactive data storage, are presented. The actual application of the described techniques today proves the possible benefits for medicine that innovative privacy-enhancing techniques can provide. Technical PET solutions can unlock valuable data sources, otherwise not available.

Belgium↗

tRNA-like structure regulates translation of Brome mosaic virus RNA.

For various groups of plant viruses, the genomic RNAs end with a tRNA-like structure (TLS) instead of the 3' poly(A) tail of common mRNAs. The actual function of these TLSs has long been enigmatic. Recently, however, it became clear that for turnip yellow mosaic virus, a tymovirus, the valylated TLS(TYMV) of the single genomic RNA functions as a bait for host ribosomes and directs them to the internal initiation site of translation (with N-terminal valine) of the second open reading frame for the polyprotein. This discovery prompted us to investigate whether the much larger TLSs of a different genus of viruses have a comparable function in translation. Brome mosaic virus (BMV), a bromovirus, has a tripartite RNA genome with a subgenomic RNA4 for coat protein expression. All four RNAs carry a highly conserved and bulky 3' TLS(BMV) (about 200 nucleotides) with determinants for tyrosylation. We discovered TLS(BMV)-catalyzed self-tyrosylation of the tyrosyl-tRNA synthetase but could not clearly detect tyrosine incorporation into any virus-encoded protein. We established that BMV proteins do not need TLS(BMV) tyrosylation for their initiation. However, disruption of the TLSs strongly reduced the translation of genomic RNA1, RNA2, and less strongly, RNA3, whereas coat protein expression from RNA4 remained unaffected. This aberrant translation could be partially restored by providing the TLS(BMV) in trans. Intriguingly, a subdomain of the TLS(BMV) could even almost fully restore translation to the original pattern. We discuss here a model with a central and dominant role for the TLS(BMV) during the BMV infection cycle.

Base Sequence↗

The feasibility of PCR-based diagnosis of Prader-Willi and Angelman syndromes using restriction analysis after bisulfite modification of genomic DNA.

We have developed a novel PCR-based method for studying DNA methylation in the proximal region of 15q, using restriction analysis after bisulfite treatment of genomic DNA. This protocol can be used for the diagnosis of Prader-Willi and Angelman syndromes. Unlike the recently reported methylation-specific PCR protocol, our method avoids the use of multiplex amplification, thus overcoming the need to adjust relative primer amounts and the risk of obtaining false-negative results.

Angelman Syndrome↗

Genetic linkage of snowflake vitreoretinal degeneration to chromosome 2q36.

PURPOSE: To identify the chromosomal location of the gene causing snowflake vitreoretinal degeneration (SVD), an autosomal dominant retinal degeneration characterized by small yellow-white dots in the retina, fibrillar anomaly of the vitreous humor, and retinal detachment. METHODS: Clinical data were collected on 31 family members by history and examination. Thirteen family members underwent prospective examination. Genotyping was performed using microsatellite markers spaced at approximately 10 cM intervals. Two-point and multipoint linkage analysis was performed (FASTLINK version of the MLINK program and the VITESSE algorithm, both available at http://linkage.rockefeller.edu/soft/list.html). Direct DNA sequencing of amplified genomic DNA and mRNA was performed for candidate gene analysis. RESULTS: The SVD locus was linked to markers in a region of chromosome 2q36 defined by D2S2158 and D2S2202, based on meiotic breakpoint mapping of affected individuals. A maximum two-point lod score of 5.5 was obtained with marker D2S172 at theta; = 0 within this region. Direct DNA sequencing of all 52 exons of the COL4A3 gene revealed no potentially pathogenic coding sequence variation or evidence for deletion. CONCLUSIONS: The genetic locus for SVD lies in a 9 Mb region flanked by D2S2158 and D2S2202. Localization of SVD to a genomic region distinct from both Wagner disease and the Stickler syndromes indicates that SVD is a distinct genetic entity. The absence of coding sequence variation in the only collagen gene within the disease-region, suggests a novel pathogenesis for vitreoretinal degeneration. Snowflake vitreoretinal degeneration should be considered in the differential diagnosis of families with fibrillar anomaly of the vitreous.

Autoantigens↗

Plasmid models for bacteriophage T4 DNA replication: requirements for fork proteins.

Bacteriophage T4 DNA replication initiates from origins at early times of infection and from recombinational intermediates as the infection progresses. Plasmids containing cloned T4 origins replicate during T4 infection, providing a model system for studying origin-dependent replication. In addition, recombination-dependent replication can be analyzed by using cloned nonorigin fragments of T4 DNA, which direct plasmid replication that requires phage-encoded recombination proteins. We have tested in vivo requirements for both plasmid replication model systems by infecting plasmid-containing cells with mutant phage. Replication of origin and nonorigin plasmids strictly required components of the T4 DNA polymerase holoenzyme complex. Recombination-dependent plasmid replication also strictly required the T4 single-stranded DNA-binding protein (gene product 32 [gp32]), and replication of origin-containing plasmids was greatly reduced by 32 amber mutations. gp32 is therefore important in both modes of replication. An amber mutation in gene 41, which encodes the replicative helicase of T4, reduced but did not eliminate both recombination- and origin-dependent plasmid replication. Therefore, gp41 may normally be utilized for replication of both plasmids but is apparently not required for either. An amber mutation in gene 61, which encodes the T4 RNA primase, did not eliminate either recombination- or origin-dependent plasmid replication. However, plasmid replication was severely delayed by the 61 amber mutation, suggesting that the protein may normally play an important, though nonessential, role in replication. We deleted gene 61 from the T4 genome to test whether the observed replication was due to residual gp61 in the amber mutant infection. The replication phenotype of the deletion mutant was identical to that of the amber mutant. Therefore, gp61 is not required for in vivo T4 replication. Furthermore, the deletion mutant is viable, demonstrating that the gp61 primase is not an essential T4 protein.

Bacteriophage T4↗

Detection of coregulation in differential gene expression profiles.

Genomics and proteomics approaches generate distinct gene expression and protein profiles, listing individual genes embedded in broad functional terms as gene ontologies. However, interpretation of gene profiles in a regulatory and functional context remains a major issue. Elucidation of regulatory mechanisms at the gene expression level via analysis of promoter regions is a prominent procedure to decipher such gene regulatory networks. We propose a novel genetic algorithm (GA) to extract joint promoter modules in a set of coexpressed genes as resulting from differential gene expression experiments. Algorithm design has focused on the following constraints: (I) identification of the major promoter modules, which are (II) characterized by a maximum number of joint motifs and (III) are found in a maximum number of coexpressed genes. The capability of the GA in detecting multiple modules was evaluated on various test data sets, analyzing the impact of the number of motifs per promoter module, the number of genes associated with a module, as well as the total number of distinct promoter modules encoded in a sequence set. In addition to the test data sets, the GA was evaluated on two biological examples, namely a muscle-specific data set and the upstream sequences of the beta-actin gene (ACTB) derived from different species, complemented by a comparison to alternative promoter module identification routines.

Actins↗

cis-acting elements within an RNA coliphage genome: fold as you please, but fold you must!!

Using an in vivo complementation system, we conducted a mutational analysis of the bacteriophage Q beta readthrough cistron. In the Q beta cDNA-containing plasmid, pQ beta m100, we constructed six defined Q beta deletion cDNA genomes, each missing between 86 and 447 nucleotides from within the readthrough cistron. These deletion plasmids were introduced into host cells that are constitutively supplied with Q beta readthrough protein from the plasmid pQ beta RT. Under these conditions, all six deletion genomes spontaneously generated phage particles, each exhibiting a characteristic plaque phenotype and virus forming potential. Isolated readthrough-defective phage particles were subsequently used to infect host cells that carried helper readthrough protein. Passaged viruses yielded both larger plaques and higher titers, compared with those of the parent phages. Sequence analysis revealed that the genomes of the passaged viruses had deleted additional regions of readthrough RNA sequence. We discuss the possibilities that (1) the disruption of a well-defined structural domain in Q beta RNA was selectively disadvantageous to phage infection, and that (2) the evolved viral populations were selected by virtue of their ability to restore critical integrity of short and/or long-range nucleotide interactions within this region of Q beta RNA.

Base Sequence↗

Complementation of a potato virus X mutant mediated by bombardment of plant tissues with cloned viral movement protein genes.

Microprojectile bombardment was used to examine the transport function of the 25 kDa movement protein (MP) encoded in the triple gene block of potato virus X (PVX). A 25 kDa MP-defective full-length cloned PVX genome carrying a beta-glucuronidase (GUS) reporter gene was co-bombarded with 35S promoter constructs containing either the 25 kDa MP gene of wild-type PVX, the MP gene of either of two tobamoviruses (tomato mosaic virus or crucifer tobamovirus), red clover necrotic mosaic dianthovirus (RCNMV) or brome mosaic bromovirus (BMV). When inoculated alone, the MP-defective PVX was unable to move out of the inoculated cell, as visualized by in situ staining for GUS activity. However, cell-to-cell movement of the mutant PVX genome was restored by co-inoculation with 35S constructs containing the MP cDNA of PVX, either tobamovirus or RCNMV. The BMV MP construct did not complement movement of the defective PVX. These results show that co-bombardment of cDNA of an MP-defective virus with plasmids designed to express MP of other viruses could be used as a fast and simple method for transcomplementation experiments.

Brassica↗

A whole genome screen for association in Polish multiple sclerosis patients.

We have performed the first systematic search for MS susceptibility genes completed in the Polish population. This screen was performed using 6000 microsatellite markers typed in pooled DNA from cases (n=200), controls (n=200) and trio families (n=129). Five associated markers are identified, one (D6S2444) from the HLA region and four are from novel regions not previously associated with MS, 2p16 (D2S2153), 3p13 (D3S3568), 7p22 (D7S2521) and 15q26 (D15S649).

Adult↗

Genetic characterization of the 44D-45B region of the Drosophila melanogaster genome based on an F2 lethal screen.

We have performed an F2 genetic screen to identify lethal mutations that map to the 44D-45B region of the Drosophila melanogaster genome. By screening 8500 mutagenized chromosomes for lethality over Df(2R)Np3, a deficiency which encompasses nearly 1% of the D. melanogaster euchromatic genome, we recovered 125 lines with lethal mutations that represent 38 complementation groups. The lethal mutations have been mapped to deficiencies that span the 44D-45B region, producing an approximate map position for each complementation group. Lethal mutations were analyzed to determine the phase of development at which lethality occurred. In addition, we have linked some of the complementation groups to P element-induced lethals that map to 44D-45B, thus possibly providing new alleles of a previously tagged gene. Some of the complementation groups represent potentially novel alleles of previously identified genes that map to the region. Several genes have been mapped by molecular means to the 44D-45B region, but do not have any reported mutant alleles. This screen may have uncovered mutant alleles of these genes. The results of complementation tests with previously identified genes in 44D-45B suggests that over half of the complementation groups identified in this screen may be novel.

Alleles↗

Vaccinia virus recombinants co-expressing hepatitis B virus surface and core antigens.

Using the Praha strain of vaccinia virus (VV) two double recombinant VVs expressing the surface and capsid HBV proteins (HBsAg and HBcAg) under the control of the P7.5 promoter were constructed. In the first construct the gene coding for HBsAg was inserted into the HindIII J fragment (TK gene) and the gene coding for HBcAg was inserted into the HindIII M fragment (host range, K1L gene) of the VV genome. To test whether the expression of the foreign genes was influenced by the insertion site, in the second construct their locations were inversely changed. When compared with single VV-HBV recombinants expressing either HBsAg or HBcAg, the double recombinants expressed in vitro approximately the same amounts of the respective antigens. The particles formed by either HBsAg or HBcAg expressed by recombinant viruses, were isolated and examined by electron microscopy. Particles composed of both HBsAg and HBcAg were not detected in cultures infected with one of the double recombinants. The residual virulence in 3-week-old mice of the single recombinants was not markedly altered by the insertion of the second gene. The immunogenicity in mice of both the single and double recombinants was comparable and was not influenced by the location of the HBV genes in VV genome, as revealed by antibodies developed against the respective antigens.

Animals↗

Affected-only multiplex pedigree analysis of GAW10 problem 2.

From a single extended pedigree simulation replicate, high density, affected only subpedigrees were isolated, based on the T > 40 affected status for the disease trait, Q1. On this sample of 14 pedigrees, with a range of two to six affected members (48 total), we conducted a haplotype based, multilocus, nonparametric genome-wide search of the provided data (367 markers) using the computer program GENEHUNTER. As with most genome screens in complex diseases, the objective of this strategy was to identify regions (hot-spots) which breached our predetermined threshold (p < 0.05), requiring confirmation by other groups or consortia. Of the six regions with threshold breaching scores (p < 0.05), the most promising, on chromosome 8 and chromosome 4, corresponded to the locations of MG2 and MG3. Both of these regions have multiple, consecutive markers above threshold and contained the only scores that exceeded p < 0.01. In addition, a fourth hot-spot consisting of a single marker above threshold, was less than 15 cM from MG1 on chromosome 5. The positions of the remaining three hot-spots did not correspond to the any of the major genes and are therefore false positives. An additional analysis of a single nuclear pedigree simulation replicate, using the extended transmission disequilibrium test (ETDT), was applied to markers in each of the above hot-spot regions to look for evidence of disequilibrium with the disease trait. This analysis provided weak additional support for the chromosome 8 finding, even though the sample was very small (36 pedigrees containing 44 affected offspring).

Chromosome Mapping↗

Genetic Models in Applied Physiology. Functional genomics in the mouse: powerful techniques for unraveling the basis of human development and disease.

Now that near-complete DNA sequences of both the mouse and human genomes are available, the next major challenge will be to determine how each of these genes functions, both alone and in combination with other genes in the genome. The mouse has a long and rich history in biological research, and many consider it a model organism for the study of human development and disease. Over the past few years, exciting progress has been made in developing techniques for chromosome engineering, mutagenesis, mapping and maintenance of mutations, and identification of mutant genes in the mouse. In this mini-review, many of these powerful techniques will be presented along with their application to the study of development, physiology, and disease.

Animals↗

A whole genome screen for linkage in Turkish multiple sclerosis.

Factors exerting recessive effects on susceptibility to complex traits are expected to be over-represented in communities having a higher frequency of consanguineous marriage. Multiple sclerosis, a typical complex trait, is relatively common in Turkey where cultural factors also determine a high rate of consanguineous marriage. Previous genetic studies of multiple sclerosis in Turkey have been confined to the search for associations with candidate genes. In order to exploit the special genetic features of the Turkish population, we performed a whole genome screen for linkage in 43 Turkish multiplex families employing 392 microsatellite markers. Two genomic regions where maximum lod score (MLS) values were suggestive of linkage were identified (chromosomes 13q and 18q23) along with a further 14 regions of potential linkage. Parametric analysis of these data using a recessive model, appropriate for populations with a high frequency of consanguinity, increased the LOD scores in four regions.

Chromosome Mapping↗

The COOH terminus of suppressor of stem loop (SSL2/RAD25) in yeast is essential for overall genomic excision repair and transcription-coupled repair.

We examined several yeast strains with different mutations in the essential SSL2 (Suppressor of Stem Loop, also called RAD25) gene for their ability to remove cyclobutane pyrimidine dimers from expressed genes, and from the genome overall. The SSL2 protein has a high degree of amino acid sequence identity to the protein encoded by the human ERCC3 gene (Gulyas, K. D., and Donahue, T. F. (1992) Cell 69, 1031-0142). The mutant allele SSL2-XP encodes a protein resembling the mutated ERCC3 protein from UV-sensitive human cells belonging to xeroderma pigmentosum complementation group B and Cockayne's syndrome (CS) complementation group C (Weeda, G., van Ham, R. C. A., Vermeulen, W., Bootsma, D., van der Eb, A. J., and Hoeijmakers, J. H. J. (1990) Cell 62, 777-791; Gulyas and Donahue, 1992). The SSL2-XP allele confers UV sensitivity on yeast strain KG119. We found that the biochemical basis for the UV sensitivity of KG119 is a complete deficiency in the removal of cyclobutane pyrimidine dimers from the overall genome as well as a deficiency in transcription-coupled repair. This is the first analysis of the DNA repair defect responsible for the UV sensitivity of cells carrying the SSL2-XP allele, and it documents the similarity of the defect to that associated with XP-B/CS-C, and the difference between this defect and that in cells belonging to CS complementation groups A and B.

Alleles↗

Functional characterization of the Haemophilus influenzae 4.5S RNA.

The putative 4.5S RNA of Haemophilus influenzae was identified in the genome by computer analysis, amplified by the polymerase chain reaction, and cloned. We have determined that this putative 4.5S RNA will complement an Escherichia coli strain conditionally defective in 4.5S RNA production. The predicted secondary structures of the molecules were quite similar, but Northern analysis showed that the H. influenzae RNA was slightly larger than the E. coli RNA. The H. influenzae gene encoding this RNA is the functional homolog of the ffs gene in E. coli.

Amino Acid Sequence↗

Monte Carlo Markov chain methods for genome screening.

We used Monte Carlo Markov chain (MCMC) methods to analyze a quantitative trait, MAO level, and a discrete trait, Collaborative Study on the Genetics of Alcoholism (COGA) alcoholism. Segregation, linkage, and haplotype sharing were analyzed and effects of marker map features were examined. For MAO, modest signals were found on chromosomes 1 and 17 for raw data, and 15 for covariate-adjusted data. For alcoholism, a strong signal was found on chromosome 1 with modest signals on chromosomes 4 and 10.

Alcoholism↗