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Human chromosome 7: DNA sequence and biology.

DNA sequence and annotation of the entire human chromosome 7, encompassing nearly 158 million nucleotides of DNA and 1917 gene structures, are presented. To generate a higher order description, additional structural features such as imprinted genes, fragile sites, and segmental duplications were integrated at the level of the DNA sequence with medical genetic data, including 440 chromosome rearrangement breakpoints associated with disease. This approach enabled the discovery of candidate genes for developmental diseases including autism.

Animals↗

DNA sequence analysis with a modified bacteriophage T7 DNA polymerase. Effect of pyrophosphorolysis and metal ions.

Pyrophosphorolysis by bacteriophage T7 DNA polymerase leads to the degradation of specific dideoxynucleotide-terminated fragments on DNA sequencing gels. This reaction can be prevented by pyrophosphatase. It is also inhibited by a high concentration of dNTPs; only the dNTP complementary to the next base in the template is an effective inhibitor, suggesting the formation of a stable polymerase-primer-template-nucleotide complex despite the absence of a 3' hydroxyl group on the primer. The use of pyrophosphatase, a genetically modified T7 DNA polymerase that lacks exonuclease activity, and Mn2+ rather than Mg2+ to eliminate discrimination between dideoxynucleotides and deoxynucleotides (Tabor, S., and Richardson, C. C. (1989) Proc. Nat. Acad. Sci. U. S. A. 86, 4076-4080) generates bands of uniform intensity on a DNA sequencing gel. Uniform band intensities simplify the analysis of a DNA sequence, particularly with automated procedures. For example, when genomic DNA is sequenced directly, heterozygotic sequences are readily detected because their bands have half the intensity of homozygotic sequences. A procedure for automated DNA sequencing is described that exploits the uniformity. A single reaction with a single labeled primer is carried out using four different ratios of dideoxynucleotides to deoxynucleotides; after gel electrophoresis in a single lane, the sequence is determined by the relative intensity of each band.

Animals↗

Human papillomavirus (HPV) DNA sequences demonstrated by in situ DNA hybridization in serial paraffin-embedded cervical biopsies.

An in situ DNA hybridization technique was used to identify various types of Human papillomavirus (HPV) in paraffin sections of serial punch biopsies taken from 64 patients having colposcopy because of abnormal smears. There women were in fact 64 consecutive patients out of 505 attending our clinic (at 6-month intervals) since 1981 for HPV infections. HPV 6 DNA sequences were found in 20%, HPV 11 in 17%, HPV 16 in 8% and HPV 18 in 5% of the 64 biopsies analysed with this method so far. More than 60% of HPV 6-positive lesions belong to HPV-NCIN (HPV lesion without concomitant CIN) or HPV-CIN I categories, as contrasted with HPV 16-positive lesions, 80% of which belong to HPV-CIN II and III categories. None of the HPV 16- or HPV 18-infected lesions regressed, as contrasted with 23% and 45% in those infected with HPV 6 and HPV 11, respectively (P less than 0.01). The rate of progression (38.4% and 45.5%, respectively) was markedly lower in HPV 6- and HPV 11 lesions as compared with that (80%) of HPV 16 lesions. The present results while supporting the concept on HPV 16 and HPV 18 as the high risk HPV types in cervical carcinogenesis also emphasize the applicability of the in situ DNA hybridization as a powerful tool in analysis of the specific HPV DNA sequences in routinely progressed biopsies of these lesions.

Carcinoma in Situ↗

Non-nucleosomal packaging of a tandemly repeated DNA sequence at termini of extrachromosomal DNA coding for rRNA in Tetrahymena.

A tandemly repeated DNA hexanucleotide sequence, 5'C-C-C-C-A-A3', that occurs at the termini of extrachromosomal DNA molecules coding for rRNA (rDNA) in Tetrahymena macronuclei was examined to determine whether it is packaged as nucleosomes. This repeated DNA sequence comprises the terminal few hundred base pairs at each end of the linear rDNA molecules. Digestion of macronuclei with micrococcal nuclease showed that this DNA sequence is protected from digestion but is left, following digestion, as a single but broad size class of DNA fragments several hundred base pairs long, under conditions in which bulk macronuclear DNA and rDNA were digested to fragments that were multiples of approximately 200 base pairs in length. The repeated C-C-C-C-A-A was found protected as fragments longer than the bulk macronuclear DNA digestion products at all times during digestion. Together with putative associated protein(s), this protected DNA was soluble after lysis of micrococcal nuclease-digested macronuclei at low salt concentrations but was insoluble in 0.075--0.2 M KCl, regardless of the extend of digestion. The size and solubility properties of the repeated C-C-C-C-A-A DNA nucleoprotein complex after micrococcal nuclease digestion of macronuclei are clearly distinguishable from those of nucleosomes, and it is inferred that this DNA sequence in macronuclei is packaged in chromatin by proteins other than histones.

Cell Nucleus↗

Primate repetitive DNAs: evidence for new satellite DNAs and similarities in non-satellite repetitive DNA sequence properties.

Repetitious DNA sequences have been isolated from a number of the primates in in both Suborders Anthropoidea and Prosimii by hydroxy-apatite chromatography at a Cot of 10. In addition to finding previously unreported possible AT-rich satellite DNAs in Orangutan, Gibbon, Rhesus and Slow Loris a clear similarity to human DNA was found in the nonsatellite repetitious DNA sequence properties of the primates in the Suborder Anthropoidea. This is based on the presence of the hydroxyapatitie isolated 1.703 and 1.714 g/cm3 DNA families in CsCl gradients in the analytical ultracentrifuge following renaturation and extensive DNA hyperpolymer network formation. Within the superfamily Hominoidea the amount of the 1.714 g/cm3 DNA family was greater than that of the 1.703 g/cm3 DNA family while the reverse situation was true within the Superfamily Cercopithecoidea. The orangutan 1.703 and 1.714 g/cm3 DNA families were shown to exhibit the same differential reassociation behavior demonstrated previously in human DNA (Marx et al., 1976a). These data are interpreted as preliminary evidence for a similar sequence organization in the Order Primates Suborder Anthropoidea.

Animals↗

Species-specific evolution of repeated DNA sequences in great apes.

DNA sequencing reveals that the genomes of the human, gorilla and chimpanzee share more than 98% homology. Comparative chromosome painting and gene mapping have demonstrated that only a few rearrangements of a putative ancestral mammalian genome occurred during great ape and human evolution. However, interspecies representational difference analysis (RDA) of the gorilla between human and gorilla revealed gorilla-specific DNA sequences. Cloning and sequencing of gorilla-specific DNA sequences indicate that there are repetitive elements. Gorilla-specific DNA sequences were mapped by fluorescence in-situ hybridization (FISH) to the subcentromeric/centromeric regions of three pairs of gorilla submetacentric chromosomes. These sequences could represent either ancient sequences that got lost in other species, such as human and orang-utan, or, more likely, recent sequences which evolved or originated specifically in the gorilla genome.

Animals↗

Maximum entropy image reconstruction of DNA sequencing gel autoradiographs.

DNA sequencing gel autoradiographs become increasingly difficult to read as one moves up the gel, due to crowding and overlapping of the bands. Maximum entropy image reconstructions of the autoradiograph improve the ease with which crowded sequence data can be read, and extend the region of the gel in which reading is possible. Superior reconstructions are obtained by using nonuniform models based on the initial reconstructions.

Autoradiography↗

Molecular basis of DNA sequence recognition by the catabolite gene activator protein: detailed inferences from three mutations that alter DNA sequence specificity.

Previously, we reported that substitution of Glu-181 of the catabolite gene activator protein (CAP) by lysine, leucine, or valine results in a protein that has specificity for A X T base pairs at positions 7 and 16 of the DNA recognition site, rather than G X C base pairs as is the case with the wild-type CAP. In this paper, we deduce from these genetic data both (i) the specific chemical interactions by which amino acid side chains at position 181 interact with base pairs 7 and 16 and (ii) the precise alignment between the structures of the CAP and DNA in the intermolecular CAP-DNA complex. Our analysis supports the idea that the two symmetry-related F alpha-helices of the CAP dimer interact with successive major grooves of right-handed B-type DNA [Pabo, C. & Lewis, M. (1982) Nature (London) 298, 443-447; and Steitz, T., Weber, I. & Matthew, J. (1983) Cold Spring Harbor Symp. Quant. Biol. 47, 419-426].

Base Composition↗

Drosophila Rrp1 3'-exonuclease: demonstration of DNA sequence dependence and DNA strand specificity.

Drosophila Rrp1 (recombination repair protein 1) is a DNA repair enzyme whose nuclease activities include AP-endonuclease, 3'-exonuclease, 3'-phosphodiesterase and 3'-phosphatase. This study investigates the sequence specificity of the dsDNA 3'-exonuclease activity of Rrp1. We demonstrate that the activity is more efficient in purine-rich regions of dsDNA than in pyrimidine-rich regions. Rrp1 exonuclease activity is examined at 3'-terminal homopurine or homopyrimidine tracts, at junctions between purine- and pyrimidine-rich sequences and upon encountering repeated dinucleotide runs. The data show that purine-purine and 3'-pyrimidine-5'-purine dinucleotide bonds are cleaved faster than 3'-purine-5'-pyrimidine or pyrimidine-pyrimidine bonds. Thus, the base occupying the penultimate position in the 3'-terminal dinucleotide may be important in determining the relative efficiency of bond cleavage by Rrp1. These findings may reflect upon specific DNA-protein interactions in the enzyme active site.

Animals↗

DNA sequence of a Salmonella-specific DNA fragment and the use of oligonucleotide probes for Salmonella detection.

Hybridization specificity of a 1.8-kb HindIII DNA fragment isolated from Salmonella typhimurium by a molecular cloning technique was confirmed by colony hybridization with 327 Salmonella isolates of various serotypes and 56 non-Salmonella isolates including Enterobacteriaceae closely related to Salmonella, such as Escherichia coli, Klebsiella, Citrobacter and Shigella. It was found that this 1.8-kb DNA fragment was highly specific for all the Salmonella isolates tested. The DNA sequence of this 1.8-kb fragment was then determined by the dideoxynucleotide chain termination method. According to this DNA sequence, six oligonucleotide fragments ranging from 17- to 26-mer were then chemically synthesized and tested for their hybridization specificities. Results show that three of the six oligonucleotide fragments are highly specific for all 327 Salmonella strains tested and can be used as probes for the specific detection of Salmonella in foods or other samples.

Base Sequence↗

Yeast TATA-binding protein TFIID binds to TATA elements with both consensus and nonconsensus DNA sequences.

The DNA binding properties of the yeast TATA element-binding protein TFIID were investigated. The affinity (apparent equilibrium dissociation constant) of TFIID for the adenovirus major late promoter consensus TATA element is 2 x 10(-9) M, a value similar to the affinity of gene-specific regulatory proteins for their binding sites. TFIID binding is highly specific and recognizes nonspecific sites with approximately 10(5)-fold lower affinity. Despite this specificity, TFIID also binds with high affinity to several TATA elements that do not match the consensus TATA sequences (TATAAA and TATATA): the yeast LEU2 TATA (TATTATTTA), the simian virus 40 TATA (CTTATTTAT), and the yeast CYC1 -10 TATA (TTATACATT) all bound TFIID. Furthermore, TFIID was active in promoting transcription in vitro from the nonconsensus TATA elements. Thus, contrary to previous suggestions, the existence of nonconsensus TATA elements does not itself indicate the existence of multiple TATA-binding factors.

Base Sequence↗

Fiber bundle based scanning detection system for automated DNA sequencing.

High-throughput DNA sequencing techniques are under rapid development currently, mainly triggered by the Human Genome Project. At the present time, slab gel based automated DNA sequencing is the standard procedure, utilizing fluorophore labeling and laser-induced fluorescence detection with scanning technology. In this paper, a novel, fiber-optic bundle based detection system is introduced, where a central illuminating fiber is used for the excitation of the electrophoretically separated fluorophore-labeled DNA sequencing fragments, along with several collecting fibers disposed around the illuminating fiber to collect the emitted fluorescent signal. As a model system, Cy5-labeled DNA sequencing fragments were separated on an ultrathin polyacrylamide slab gel and detected by the fiber bundle based laser-induced fluorescence detection system. A 640-nm diode laser was used to generate the illumination beam, and the emitted light collected by the fiber bundle was detected by a solid-state avalanche photodiode.

Autoanalysis↗

PCR and DNA sequencing.

Specific DNA segments defined by the sequence of two oligonucleotides can be enzymatically amplified up to a millionfold using the polymerase chain reaction (PCR). One of the most significant uses of this technique is for generation of sequencing templates, either from cloned inserts or directly from genomic DNA. To avoid the problem of reassociation of the linear DNA strands in the sequencing reaction, ssDNA templates can be produced directly in the PCR or generated directly from dsDNA by enzymatic treatment, electrophoretic separation or affinity purification. By combining PCR with direct sequencing, both the amplification and the sequencing reaction can be performed in the same vial. Finally, use of fluorescently labeled terminators or sequencing primers will allow the whole procedure to be amenable to complete automation.

Base Sequence↗

High mutation detection rate in the COL4A5 collagen gene in suspected Alport syndrome using PCR and direct DNA sequencing.

Approximately 85% of patients with Alport syndrome (hereditary nephritis) have been estimated to have mutations in the X chromosomal COL4A5 collagen gene; the remaining cases are autosomal with mutations in the COL4A3 or COL4A4 genes located on chromosome 2. In the present work, the promoter sequence and previously unknown intron sequences flanking exons 2 and 37 of COL4A5 were determined. Furthermore, intron sequences flanking the other 49 exons were expanded from 35 to 190 to facilitate mutation analysis of the gene. Using this information, all 51 exons and the promoter region were PCR-amplified and sequenced from DNA of 50 randomly chosen patients with suspected Alport syndrome. Mutations were found in 41 patients, giving a mutation detection rate of 82%. Retrospective analysis of clinical data revealed that two of the cases might be autosomal. Although it could not be determined whether the remaining seven cases (14%) were autosomal or X chromosome-linked, it is likely that some of them were autosomal. It is concluded that PCR amplification and direct DNA sequencing of the promoter and exons is currently the best procedure to detect mutations in COL4A5 in Alport syndrome.

Amino Acid Substitution↗

Characterization of the flavoprotein moieties of NADPH-sulfite reductase from Salmonella typhimurium and Escherichia coli. Physicochemical and catalytic properties, amino acid sequence deduced from DNA sequence of cysJ, and comparison with NADPH-cytochrome P-450 reductase.

NADPH-sulfite reductase flavoprotein (SiR-FP) was purified from a Salmonella typhimurium cysG strain that does not synthesize the hemoprotein component of the sulfite reductase holoenzyme. cysJ, which codes for SiR-FP, was cloned from S. typhimurium LT7 and Escherichia coli B, and both genes were sequenced. Physicochemical analyses and deduced amino acid sequences indicate that SiR-FP is an octamer of identical 66-kDa peptides and contains 4 FAD and 4 FMN per octamer. Potentiometric titrations of SiR holoenzyme, SiR-FP, and FMN-depleted SiR-FP yielded the following redox potentials for the prosthetic groups at pH 7.7: E'1 (FMNH./FMN) = -152 mV; E'2 (FMNH2/FMNH.) = -327 mV; E'3 (FADH./FAD) = -382 mV; E'4 (FADH2/FADH.) = -322 mV. Microcoulometric titration of SiR-FP at 25 degrees C yielded data which were in full agreement with these potentials. Spectroscopic and catalytic studies of native SiR-FP and of SiR-FP depleted of FMN support the following electron flow sequence: NADPH----FAD----FMN. FMN can then contribute electrons to the hemoprotein component of sulfite reductase, as well as to cytochrome c and various diaphorase acceptors. The FMN is postulated to cycle between the FMNH2 and FMNH. oxidation states during catalysis; in this sense SiR-FP shares a catalytic mechanism with NADPH-cytochrome P-450 oxidoreductase. SiR-FP domains involved in binding FMN, FAD, and NADPH are proposed from amino acid sequence homologies with Desulfovibrio vulgaris flavodoxin (Dubourdieu, M., and Fox, J.L. (1977) J. Biol. Chem. 252, 1453-1463) and spinach ferredoxin-NADP+ oxidoreductase (Karplus, P.A., Walsh, K.A., and Herriott, J. R. (1984) Biochemistry 23, 6576-6583). Comparison of the deduced amino acid sequences of SiR-FP and NADPH-cytochrome P-450 oxidoreductase (Porter, T. D., and Kasper, C.B. (1985) Proc. Natl. Acad. Sci. U. S.A. 82, 973-977) also showed identities that suggest these two proteins are descended from a common precursor, which contained binding regions for both FMN and FAD.

Amino Acid Sequence↗

An artificial six-zinc finger peptide with polyarginine linker: selective binding to the discontinuous DNA sequences.

Artificial DNA binding peptides recognizing separated sequences would expand varieties of the target genes for desirable transcriptional control. Here we demonstrated that polyarginine linker between two 3-zinc finger domains gives DNA binding selectivity to the separated target sequences. We created a six-zinc finger peptide, Sp1ZF6(Arg)8, by connecting two DNA binding domains of transcription factor Sp1 with a bulky and cationic polyarginine linker. The DNA binding properties to continuous and discontinuous target sequences were examined and compared to those of Sp1ZF6(Gly)10 containing a flexible and neutral polyglycine linker. The dissociation constants indicate that Sp1ZF6(Arg)8 has an obvious DNA binding preference to discontinuous target sequences but not Sp1ZF6(Gly)10. Footprinting analyses also showed that Sp1ZF6(Arg)8 binds properly only to the discontinuous target sites, while Sp1ZF6(Gly)10 does not distinguish them. The results provide helpful information for linker design of future zinc finger peptides to various states of DNA as gene expression regulators.

Amino Acid Sequence↗

DNA sequence of the lymphotropic variant of minute virus of mice, MVM(i), and comparison with the DNA sequence of the fibrotropic prototype strain.

The sequence of molecular clones of the genome of MVM(i), a lymphotropic variant of minute virus of mice, was determined and compared with that of MVM(p), the fibrotropic prototype strain. At the nucleotide level there are 163 base changes: 129 transitions and 34 transversions. Most nucleotide changes are silent, with only 27 amino acids changes predicted, of which 22 are conservative. Notable differences between the MVM(i) and MVM(p) genomes which may account for the cell specificities of these viruses occur within the 3' nontranslated regions. The differences discussed include the absence of a 65-base-pair direct in MVM(i), the presence of only two polyadenylation sites in MVM(i) compared with four in MVM(p), and sequences that bear a resemblance to enhancer sequences. Also included in this paper is an important correction to the MVM(p) sequence (C.R. Astell, M. Thomson, M. Merchlinsky, and D. C. Ward, Nucleic Acids Res. 11:999-1018, 1983).

Base Sequence↗