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Biomedical subjects

R K Wilson

Publications and source records attributed to R K Wilson.

At least 37 records · Page 2Linked to original sources

Representation of cloned genomic sequences in two sequencing vectors: correlation of DNA sequence and subclone distribution.

Representation of subcloned Caenorhabditis elegans and human DNA sequences in both M13 and pUC sequencing vectors was determined in the context of large scale genomic sequencing. In many cases, regions of subclone under-representation correlated with the occurrence of repeat sequences, and in some cases the under-representation was orientation specific. Factors which affected subclone representation included the nature and complexity of the repeat sequence, as well as the length of the repeat region. In some but not all cases, notable differences between the M13 and pUC subclone distributions existed. However, in all regions lacking one type of subclone (either M13 or pUC), an alternate subclone was identified in at least one orientation. This suggests that complementary use of M13 and pUC subclones would provide the most comprehensive subclone coverage of a given genomic sequence.

Animals↗

Comparative analysis of the polycystic kidney disease 1 (PKD1) gene reveals an integral membrane glycoprotein with multiple evolutionary conserved domains.

PKD1 is the major locus of the common genetic disorder autosomal dominant polycystic kidney disease (ADPKD). Analysis of the predicted protein sequence of the human PKD1 gene, polycystin, shows a large molecule with a unique arrangement of extracellular domains and multiple putative transmembrane regions. The precise function of polycystin remains unclear with a paucity of mutations to define key structural and functional domains. To refine the structure of this protein we have cloned the genomic region encoding the Fugu PKD1 gene. Fugu PKD1 spans 36 kb of genomic DNA and has greater complexity with 54 exons compared with 46 in man. Comparative analysis of the predicted protein sequences shows a lower level of homology than in similar studies with identity of 40 and 59% similarity. However key structural motifs including leucine rich repeats (LRR), a C-type lectin and LDL-A like domains and 16 PKD repeats are maintained. A region of homology with the sea urchin REJ protein was also confirmed in Fugu but found to extend over 1000 amino acids. Several highly conserved intra- and extra-cellular regions, with no known sequence homologies, that are likely to be of functional importance were detected. The likely structure of the membrane associated region has been refined with similarity to the PKD2 protein and voltage gated Ca2+ and Na+ channels highlighted over part of this area. The overall protein structure has therefore been clarified and this comparative analysis derived structure will form the basis for the functional study of polycystin and its individual domains.

Amino Acid Sequence↗

High throughput fingerprint analysis of large-insert clones.

As part of the Human Genome Project, the Washington University Genome Sequencing Center has commenced systematic sequencing of human chromsome 7. To organize and supply the effort, we have undertaken the construction of sequence-ready physical maps for defined chromosomal intervals. Map construction is a serial process composed of three main activities. First, candidate STS-positive large-insert PAC and BAC clones are identified. Next, these candidate clones are subjected to fingerprint analysis. Finally, the fingerprint data are used to assemble sequence-ready maps. The fingerprinting method we have devised is key to the success of the overall approach. We present here the details of the method and show that the fingerprints are of sufficient quality to permit the construction of megabase-size contigs in defined regions of the human genome. We anticipate that the high throughput and precision characteristic of our fingerprinting method will make it of general utility.

Base Sequence↗

A transposon-based strategy for sequencing repetitive DNA in eukaryotic genomes.

Repetitive DNA is a significant component of eukaryotic genomes. We have developed a strategy to efficiently and accurately sequence repetitive DNA in the nematode Caenorhabditis elegans using integrated artificial transposons and automated fluorescent sequencing. Mapping and assembly tools represent important components of this strategy and facilitate sequence assembly in complex regions. We have applied the strategy to several cosmid assembly gaps resulting from repetitive DNA and have accurately recovered the sequences of these regions. Analysis of these regions revealed six novel transposon-like repetitive elements, IR-1, IR-2, IR-3, IR-4, IR-5, and TR-1. Each of these elements represents a middle-repetitive DNA family in C. elegans containing at least 3-140 copies per genome. Copies of IR-1, IR-2, IR-4, and IR-5 are located on all (or most) of the six nematode chromosomes, whereas IR-3 is predominantly located on chromosome X. These elements are almost exclusively interspersed between predicted genes or within the predicted introns of these genes, with the exception of a single IR-5 element, which is located within a predicted exon. IR-1, IR-2, and IR-3 are flanked by short sequence duplications resembling the target site duplications of transposons. We have established a website database (http:(/)/www.welch.jhu.edu/approximately devine/RepDNAdb.html) to track and cross-reference these transposon-like repetitive elements that contains detailed information on individual element copies and provides links to appropriate GenBank records. This set of tools may be used to sequence, track, and study repetitive DNA in model organisms and humans.

Animals↗

Fatal hepatic sarcocystosis in two polar bears (Ursus maritimus).

Fatal hepatic sarcocystosis was diagnosed in 2 polar bears from a zoo in Anchorage, Alaska. Gross lesions were icterus and systemic petechiae. Marked microscopic lesions were detected only in the liver and included severe random necrotizing hepatitis with hemorrhage. Only asexual stages of an apicomplexan parasite were detected within hepatocytes, and rare extracellular zoites were seen in foci of necrosis. The parasite divided by endopolygeny, and occasionally merozoites formed rosettes around a central residual body. Ultrastructural features of the merozoites included a conoid and low numbers of micronemes at the apical pole, centrally located nuclei, and absence of rhoptries. The parasites failed to react with anti-Neospora sp., anti-Toxoplasma gondii, or anti-Sarcocystis neurona sera. The microscopic and ultrastructural morphology of the parasite are most compatible with an apicomplexan protozoan of the genus Sarcocystis. The life cycle of this parasite in bears is not known.

Alaska↗

Preferential RNA editing at specific sites within transcripts of two plant mitochondrial genes does not depend on transcriptional context or nuclear genotype.

Transcripts of most plant mitochondrial protein-coding genes exhibit C-to-U RNA editing events. In Petunia, two co-transcribed genes, nad3 and rps12, exhibit transcripts which are not fully edited at all potential editing sites. We investigated the nad3/rps12 transcript population in four different genotypes. In one pair of genotypes, the nuclear genome is identical but the nad3/rps12 genes are in different transcriptional contexts. Both the nad3/ rps12 genes and the plant mitochondrial genomes are identical in a second pair of genotypes, but the nuclear background is derived from two different Petunia species. We found that the overall extent of editing varied greatly between genotypes and is affected by nuclear genotype but not by the global transcriptional context. Local sequence context around a particular site does affect editing frequency. In all genotypes, certain sites exhibit high editing frequency, but these sites do not share obvious primary sequence characteristics. In all genotypes examined, editing sites which do not affect the encoded amino acid are less frequently edited than sites which alter codons to non-synonymous forms. All these data indicate that an unidentified property of the sequences immediately surrounding a cytosine affect its selection as a target in the editing process.

Amino Acid Sequence↗

Protein polymorphism generated by differential RNA editing of a plant mitochondrial rps12 gene.

The rps12 gene transcripts encoding mitochondrial ribosomal protein S12 are partially edited in petunia mitochondria. Different petunia lines were found vary in the extent of rps12 transcript editing. To test whether multiple forms of RPS12 proteins are produced in petunia mitochondria as a result of partial editing, we probed mitochondrial proteins with specific antibodies against edited and unedited forms of a 13-amino-acid RPS12 peptide spanning two amino acids affected by RNA editing. Both antibodies reacted with mitochondrial proteins at the expected size for RPS12 proteins. The amounts of unedited RPS12 protein in different petunia lines correlate with the abundance of unedited transcripts in these plants. Unedited rps12 translation products are also detected in other plant species, indicating that polymorphism in mitochondrial rps12 expression is widespread. Moreover, we show that RPS12 proteins recognized by both edited-specific and unedited-specific antibodies are present in a petunia mitochondrial ribosome fraction. These results demonstrate that partially edited transcripts can be translated and that the protein product can accumulate to detectable levels. Therefore, genes exhibiting incompletely edited transcripts can encode more than one gene product in plant mitochondria.

Amino Acid Sequence↗

The construction and analysis of M13 libraries prepared from YAC DNA.

Yeast artificial chromosomes (YACs) provide a powerful way to isolate and map large regions of genomic DNA and their use in genome analysis is now extensive. We modified a series of procedures to produce high quality shotgun libraries from small amounts of YAC DNA. Clones from several different libraries have been sequenced and analyzed for distribution, sequence integrity and degree of contamination from yeast DNA. We describe these procedures and analyses and show that sequencing at about 1-fold coverage, followed by database comparison (survey sequencing) offers a relatively quick method to determine the nature of previously uncharacterized cosmid or YAC clones.

Bacteriophage M13↗

Genomic structure of a cytoplasmic dynein heavy chain gene from the nematode Caenorhabditis elegans.

We report the cloning and sequencing of genomic DNA encoding a cytoplasmic dynein heavy chain from the nematode Caenorhabditis elegans. In a contiguous stretch of 35,103 bp of DNA from the left arm of linkage group I, we have found a gene that is predicted to encode a protein of 4,568 amino acids. This gene is composed of 15 exons and 14 relatively short introns, and it has significant homology to the other dynein heavy chains in the databases. The deduced molecular mass of the derived polypeptide is 512,624 Da. As with other dynein heavy chains that have been sequenced to date, it contains four GXXGXGK(S/T) motifs that form part of a consensus sequence for the nucleotide triphosphate-binding domains. Comparison of the axonemal and cytoplasmic dynein heavy chains shows that regions of homology among all dyneins are clustered in the carboxyl terminal two-thirds of the polypeptide, whereas the amino terminal one-third of the heavy chains may contain domains that specify functions that differ between the axonemal and cytoplasmic forms of the dynein heavy chain.

Animals↗

Genomic DNA sequencing methods.

Sequence analysis of cosmids from C. elegans and other organisms currently is best done using the random or "shotgun" strategy (Wilson et al., 1994). After shearing by sonication, DNA is used to prepare M13 subclone libraries which provide good coverage and high-quality sequence data. The subclones are assembled and the data edited using software tools developed especially for C. elegans genomic sequencing. These same tools facilitate much of the subsequent work to complete both strands of the sequence and resolve any remaining ambiguities. Analysis of the finished sequence is then accomplished using several additional computer tools including Genefinder and ACeDB. Taken together, these methods and tools provide a powerful means for genome analysis in the nematode.

Animals↗

An infrared fluorescent dATP for labeling DNA.

Near-infrared fluorescence provides a nonradioactive method of detection with high sensitivity and low background. An infrared fluorophore has been attached covalently to the nucleotide deoxyadenosine triphosphate (dATP) to provide a reagent for enzymatic labeling of various types of DNA molecules and for facilitating their detection with an automated DNA sequencing and analysis system. DNA sequencing reaction products can be labeled internally by performing limited polymerization utilizing infrared-labeled dATP (IR-dATP) as the sole source of adenine deoxynucleotide prior to a dideoxy-specific termination reaction. PCR products can be labeled fluorescently by the addition of limited quantities of IR-dATP to the amplification reaction. This latter strategy has been utilized for detection of short tandem repeat polymorphisms (STRPs) which are useful for gene mapping, genetic diagnostics, forensic analysis, and paternity testing. Restriction fragments can be labeled also by fill-in reactions of appropriate 5' overhangs. Diminutive amounts of such fluorescently labeled DNA molecules can be visualized rapidly and conveniently using infrared detection technology.

Adenosine Triphosphate↗

Large-scale complementary DNA sequencing methods.

Complementary DNA libraries are useful tools for uncovering genes of interest in C. elegans and finding specific homologies to genes in other organisms (Waterston et al., 1992; McCombie et al., 1992). When working with existing cDNA libraries, be sure to carefully choose which libraries would be most beneficial to the type of research being done. Some libraries may be specific for genes that are present in lower copy numbers, whereas others may be of a more general nature. It is important to fully understand the source and construction of the library you will be working with. Once an appropriate library has been chosen, work may begin to isolate a specific cDNA and sequence it completely or to survey many cDNAs by single-pass DNA sequencing. Whatever the project, it is important to develop a specific strategy for both the sequencing and the organization of the clones being characterized. The strategies and procedures we have outlined in this chapter have proven effective for rapid and comprehensive cDNA characterization.

Animals↗

Using the PDSA cycle to standardize a quality assurance program in a quality improvement-driven environment.

BACKGROUND: At Parkview Episcopal Medical Center (Pueblo, Colorado), QA means not only quality assurance but also quality alarms-statistical monitoring and analysis of key indicators that lead to the discovery of opportunities for continuous improvement. Data are monitored using statistical process control. Continuous improvement supports quality assurance (QA) just as it supports all other functions at Parkview. METHODS: A PDSA (Plan-Do-Study-Act) analysis form was created for use in conjunction with the data collection tool selected by the user. The data collected and analyzed are made meaningful through the standardization of formats and methods. RESULTS: Successes with this form demonstrate that QA and quality improvement (QI) can be integrated, allowing processes and outcomes to be improved. Since standardization occurred successfully in 1993, QA has been integrated into the strategic-planning process for 1994. Expectations are that duplicate reports and data gathering will be eliminated.

Clinical Competence↗

Sequencing, processing, and localization of the petunia CMS-associated mitochondrial protein.

The petunia mitochondrial fused gene (pcf), which is associated with cytoplasmic male sterility (CMS), is composed of sequences derived from atp9, coxII, and an unidentified reading frame termed urfS. Pcf transcripts are modified by editing at 11 sites. Codon usage and nearest neighbor analysis suggest that the urfS region is not derived originally from a plant mitochondrial coding region. Although the gene contains an open reading frame coding for a 43 kDa protein, a 25 kDa gene product has previously been identified (Nivison and Hanson, 1989). N-terminal sequencing revealed that the 25 kDa protein is encoded within the urfS portion of pcf and that its actual molecular mass is 19.5 kDa. Through pulse-chase labeling of protein in isolated mitochondria, the 25 kDa protein was found to be processed from a 43 kDa precursor protein representing the entire pcf gene sequence. Antibodies to synthetic peptides encoded by the atp9 and coxII portions of pcf recognized petunia ATP9 or COXII but no other mitochondrial proteins on immunoblots. Controlled proteolysis experiments showed that both the 43 kDa precursor and the 25 kDa protein are soluble or loosely associated with membranes. Thus, the 25 kDa protein appears to be the only pcf-encoded protein that accumulates in mitochondria.

Amino Acid Sequence↗

Variations on cycle sequencing.

Linear amplification or cycle sequencing is an advance that has made the use of automated fluorescent DNA sequencing instruments truly practical for large-scale genome analysis. We have investigated several variations of our standard cycle sequencing method. First, we have reduced the number of amplification cycles, which resulted in improved data quality and faster sequencing. Second, we have used different thermostable enzymes, which again improved data quality. Lastly, we have devised a method for precipitating reaction products in 96-tube trays. Together, these variations have allowed us to develop an improved cycle sequencing method that significantly increases sequencing throughput, improves efficiency and data quality, and reduces the cost of sequencing reactions.

Gene Amplification↗

Automated fluorescent DNA sequencing of polymerase chain reaction products.

The methods described in this chapter provide some useful approaches for DNA sequencing of templates produced by PCR. These procedures have been employed successfully for large-scale DNA sequencing of cosmid fragments subcloned in plasmid or M13 vectors, and for sequence analysis of cDNAs cloned in bacteriophage lambda vectors. In addition, the method describing direct sequencing from PEG-precipitated PCR product has been used successfully for analysis of Caenorhabditis elegans genomic and cDNA sequences. It is important to reiterate that for every combination of amplification primer pair and target DNA, there is an optimal method for PCR amplification; the ability to sequence the products of any PCR experiment directly will also vary. A coupled PCR/DNA sequencing method that works well for one experimental system may work quite poorly with others. Hence, a few days or hours spent optimizing PCR amplification conditions and selecting the best DNA sequencing method for the target DNA of interest will be time well spent.

Animals↗