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Comparison of genomic DNA sequences: solved and unsolved problems.

MOTIVATION: The DNA sequences of entire genomes are being determined at a rapid rate. Whereas initial genome sequencing efforts were for organisms chosen to be widely spaced in the tree of life, there is a growing emphasis on projects to sequence a species that is sufficiently similar to an already-sequenced species to allow direct comparison of those two DNA sequences. This and other changes in genome sequencing strategies have created a strong need for new methods to compare genomic sequences. RESULTS: We sketch the current state of software for comparing genomic DNA sequences and outline research directions that we believe are likely to result in important advances in practice.

Algorithms↗

[DNA sequencing by hybridization with an oligonucleotide matrix (SHOM). The theory of DNA elution after hybridization].

The theoretical treatment of the process of washing out of a single stranded DNA fragment after hybridization with short oligonucleotides immobilized within the polyacrylamide gel layer is presented. The theory describes satisfactorily the main body of experimental findings, obtained earlier in connection with the elaboration of a new DNA sequencing method based on hybridization with the matrix of immobilized oligonucleotides [K.R. Khrapko et al.@J. DNA Sequencing Mapp. 1991. V. 1. P. 373-388]. In particular the theory explains and describes well quantitatively the observed dependence of the "washing off temperature" Tw on the concentration of the immobilized oligonucleotides. The Tw dependence on inherent physico-chemical parameters such as the enthalpy and the entropy of duplex formation and on those selected by the experimenter (washing time duration, the gel thickness etc.) is also considered. A simple approximate expression for the calculation of "washing off temperature" is given. Some inconsistencies between calculated and observed washing curves are discussed.

Base Sequence↗

Conservation of the DNA sequences encoding the major structural viral proteins of WSSV.

A cDNA library was constructed from white spot syndrome virus (WSSV)-infected penaeid shrimp tissue. cDNA clones with WSSV inserts were isolated and sequenced. By comparison with DNA sequences in GenBank, cDNA clones containing sequence identical to those of the WSSV envelope protein VP28 and nucleoprotein VP15 were identified. Poly(A) sites in the mRNAs of VP28 and VP15 were identified. Genes encoding the major viral structural proteins VP28, VP26, VP24, VP19 and VP15 of 5 WSSV isolates collected from different shrimp species and/or geographical areas were sequenced and compared with those of 4 other WSSV isolate sequences in GenBank. For each of the viral structural protein genes compared, the nucleotide sequences were 100 to 99% identical among the 9 isolates. Gene probes or PCR primers based on the gene sequences of the WSSV structural proteins can be used for diagnoses and/or detection of WSSV infection.

Animals↗

Rapid 16S ribosomal DNA sequencing from a single colony without DNA extraction or purification.

Ribosomal RNA sequences are useful for establishing phylogenetic relationships, for oligonucleotide probes and for characterization of uncultured organisms. We describe rapid ribosomal DNA sequencing using PCR with transcript sequencing. Nucleic acid specificity at three steps (amplification, transcription and sequencing) eliminated the need for nucleic acid extraction or purification. Sequence was obtained from a crude lysate from a single colony of bacteria. The basic sequencing method should be adaptable to provide rapid sequence information in a wide variety of applications.

Autoradiography↗

Highly compact 2D graphical representation of DNA sequences.

Most 2D graphical representations of primary DNA sequences, while offering visual geometrical patterns for depicting sequences, do require considerable space if enough details of such representations are to be visible. In this contribution, we consider a highly compact graphical representation of DNA, which allows visual inspection and numerical characterization of DNA sequences having a large number of nucleic acid bases. The approach is illustrated on the DNA sequences of the first exon of human beta-globin. The same graphical approach not only allows one to depict differences in composition within a single DNA, but makes possible graphical representation of protein sequences, which have hitherto evaded similar 2D visual representations.

Computer Graphics↗

DNA sequence organization in the soybean plant.

The arrangement of repetitive and nonrepetitive DNA sequences in the soybean genome was ascertained by a comparison of the reassociation kinetics of short (250 nucleotides) and long (2700 nucleotides) DNA fragments, the size distribution of S-1 nuclease resistant repetitive duplexes, and a direct assay of the spectrum of DNA sequences present on long DNA fragments enriched in repetitive DNA. These measurements reveal the following: (1) The 1N genome size of the soybean plant is 1.97 pg. (2) Approximately 40% of the soybean genome consists of nonrepetitive or single-copy DNA sequences, while 60% is repetitive DNA. (3) The repetitive DNA is partitioned into three discrete classes termed "very fast," "fast," and "slow," containing DNA sequences repeated an average of 290,000, 2800, and 19 times each. (4) Approximately 35--50% of the soybean genome is arranged in a short-period interspersion pattern of 250 nucleotide slow sequences and single-copy DNA averaging up to 2700 nucleotides in length. (5) From 30% to 45% of the soybean genome is organized into long stretches of repetitive DNA at least 1500 nucleotides in length. (6) Minimal interspersion of repetitive sequence classes occurs in soybean DNA.

Base Sequence↗

Transferable Streptomyces DNA amplification and coamplification of foreign DNA sequences.

The 8.8-kb amplifiable unit of DNA of Streptomyces achromogenes subsp. rubradiris, AUD-Sar 1, which carries 0.8-kb terminal direct repeats and a spectinomycin resistance determinant, can mediate high-level amplification of an AUD-Sar 1-derived 8.0-kb DNA sequence not only in S. achromogenes but also in the heterologous host Streptomyces lividans. This was seen upon introduction of AUD-Sar 1 into chloramphenicol-sensitive strains of S. lividans via the temperature-sensitive (39 degrees C) plasmid pMT660, which contains the thiostrepton resistance gene tsr. Following the cultivation of transformants at 39 degrees C on media containing spectinomycin, a number of strains which were unable to grow on thiostrepton and which carried the amplified 8.0-kb DNA sequence as arrays of 200 to 300 copies of tandem 8.0-kb repeats were found. Chloramphenicol-resistant strains of S. lividans did not yield amplified sequences under similar conditions. Studies with plasmids carrying inserted antibiotic resistance genes at two sites of AUD-Sar 1 yielded coamplified sequences which contain the inserted DNA. Transformation with a plasmid carrying a 1.0-kb deletion in AUD-Sar 1 followed by growth under similar conditions yielded a 7.0-kb repeated DNA sequence. Southern analysis revealed the absence of vector sequences located on the right side of AUD-Sar 1 in the input plasmids in all examined DNA samples of amplified strains. In contrast, a majority of the samples revealed the presence at unit copy level of AUD-Sar 1 left-adjacent sequences which are part of the input plasmids and in several samples the presence of certain vector sequences located near them. The results suggest input plasmid integration into the S. lividans chromosome prior to the generation of the amplified sequences and the deletion of AUD-Sar 1 adjacent sequences.

Chloramphenicol↗

Comparison of DNA sequences with protein sequences.

The FASTA package of sequence comparison programs has been expanded to include FASTX and FASTY, which compare a DNA sequence to a protein sequence database, translating the DNA sequence in three frames and aligning the translated DNA sequence to each sequence in the protein database, allowing gaps and frameshifts. Also new are TFASTX and TFASTY, which compare a protein sequence to a DNA sequence database, translating each sequence in the DNA database in six frames and scoring alignments with gaps and frameshifts. FASTX and TFASTX allow only frameshifts between codons, while FASTY and TFASTY allow substitutions or frameshifts within a codon. We examined the performance of FASTX and FASTY using different gap-opening, gap-extension, frameshift, and nucleotide substitution penalties. In general, FASTX and FASTY perform equivalently when query sequences contain 0-10% errors. We also evaluated the statistical estimates reported by FASTX and FASTY. These estimates are quite accurate, except when an out-of-frame translation produces a low-complexity protein sequence. We used FASTX to scan the Mycoplasma genitalium, Haemophilus influenzae, and Methanococcus jannaschii genomes for unidentified or misidentified protein-coding genes. We found at least 9 new protein-coding genes in the three genomes and at least 35 genes with potentially incorrect boundaries.

Amino Acid Sequence↗

Is DNA sequence sufficient to specify DNA replication origins in metazoan cells?

DNA replication occupies a central position in the cell cycle and, therefore, in the development and life of multicellular organisms. During the last 10 years, our comprehension of this important process has considerably improved. Although the mechanisms that coordinate DNA replication with the other moments of the cell cycle are not yet fully understood, it is known that they mainly operate through DNA replication origins and the protein complexes bound to them. In eukaryotes, the packaging status of chromatin seems to be part of the mechanism that controls whether or not and when during the S-phase a particular origin will be activated. Intriguingly, the protein complexes bound to DNA replication origins appear to be directly involved in controlling chromatin packaging. In this manner they can also affect gene expression. In this review we focus on DNA replication origins in metazoan cells and on the relationship between these elements and the structural and functional organization of the genome.

Animals↗

Ribbon channel plate rotating drum DNA sequencing device.

A new design DNA sequencing electrophoresis device is described. The device, called the ribbon channeled plate rotating drum (rprd), consists of two major components, the plate assembly and the drum assembly. The plate assembly contains a machined or etched plate of individual micro-channels called the ribbon channeled plate. The ribbon channeled plate and other components of the plate assembly combine the advantages of thin gels and capillary arrays in a single unit with few of the disadvantages. The other major component of rprd is the drum assembly, which facilitates direct blotting onto deposition membranes affixed to a large plastic drum. The drum with attached membrane and deposited electrophoretically resolved ladders is easily moved to special units facilitating downstream processing and detection. The drum unit, although versatile, is specifically designed to be used with multiplex sequencing.

Base Sequence↗

Characterization of tumor-specific DNA sequences: molecular grading of the astrocytomas.

Tumor-specific DNA sequences or unique sequences have been found in a number of human cancer cells including gliomas but not in equivalent normal cells. In a continuing effort to further elucidate the nature of these sequences, thermal analysis using the hydroxyapatite technique was carried out on the various grades of astrocytomas. A recycled DNA molecular probe from Grade IV astrocytomas was annealed to the various grades of astrocytoma DNAs and to normal brain DNA which served as control. There was an increasing percentage of hybridization in direct proportion to the degree of malignancy. The same results were obtained using a recycled DNA probe from medulloblastomas. Thermal melt analysis of these same tumors revealed a Tm (melting temperature or temperature of reassociation) of about 83 degrees C, irrespective of degree or grade of malignancy. These results would indicate that the type of genetic DNA sequences or tumor-specific DNA sequences involved in this type of tumor is the same, whether the tumor is benign or malignant. The demonstration of the increasing percentage of hybridization based on the increasing degree or grade of malignancy and the further demonstration that the involved tumor-specific DNA sequences are the same irrespective of the degree of malignancy, justify the conclusion that the number of copies of these sequences determines the degree or grade of malignancy. Pending further laboratory confirmation, this fact may be assumed to be true with respect to cancers from other organ sites.

Astrocytoma↗

The distribution of restriction fragment lengths for non-overlapping restriction sites in a random DNA sequence model.

Overlapping subsequences in a DNA sequence are not independent even if independence is supposed for the single nucleotides. Therefore the often used geometric distribution for the length of restriction fragments is not exact. The exact distribution of this random variable is derived for non-overlapping restriction sites in a DNA sequence with an infinite (or very large) number of nucleotides. Correction to the finite case is easy. It is shown that the simple geometric distribution is a good approximation as long as the basic probability for the occurrence of the recognition sequence at a given site is small.

Base Sequence↗

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↗

Addition of extra DNA sequences to simian virus 40 DNA in vivo.

The possible addition of extra sequences to simian virus 40 (SV40) DNA was analyzed by electron microscopy in two different cell systems, productively infected monkey cells and activated heterokaryons on monkey and transformed mouse 3T3 cells. We found that the closed circular DNA fraction, extracted from monkey cells at 70 h after infection with nondefective SV40 at a multiplicity of infection of 6 PFU/cell, contained oversized molesules (1.1 to 2.0 fractional lengths of SV40 DNA) constituting about 8% of the molecules having lengths equal to or shorter than SV40 dinner DNA. The oversized molecules had the entired SV40 sequences. The added DNA was heterogeneous in length. The sites of addition were not specific with reference to the EcoRi site. These results suggest that recombination between monkey and SV40 DNAs or partial duplication of SV40 DNA occurs at many sites on the SV40 chromosome. The integrated SV40 DNA is excised and replicates in activated heterokaryons. In this system, besides SV40 DNA we found heterogeneous undersized and oversized molecules containing SV40 sequences in the closed circular DNA population. Additions differeing in size appeared to be overlapping and to have occurred at a preferential site on the SV40 chromosome. These results support the hypothesis that host DNA can be added to SV40 DNA at the site of integration at the time of excision.

Animals↗

A generic algorithm for finding restriction sites within DNA sequences.

This paper describes a generic algorithm for finding restriction sites within DNA sequences. The 'genericity' of the algorithm is made possible through the use of set theory. Basic elements of DNA sequences, i.e. nucleotides (bases), are represented in sets, and DNA sequences, whether specific, ambiguous or even protein-coding, are represented as sequences of those sets. The set intersection operation demonstrates its ability to perform pattern-matching correctly on various DNA sequences. The performance analysis showed that the degree of complexity of the pattern matching is reduced from exponential to linear. An example is given to show the actual and potential restriction sites, derived by the generic algorithm, in the DNA sequence template coding for a synthetic calmodulin.

Algorithms↗

Potential genetic functions of tandem repeated DNA sequence blocks in the human genome are based on a highly conserved "chromatin folding code".

This review is based on a thorough description of the structure and sequence organization of tandemly organized repetitive DNA sequence families in the human genome; it is aimed at revealing the locus-specific sequence organization of tandemly repetitive sequence structures as a highly conserved DNA sequence code. These repetitive so-called "super-structures" or "higher-order" structures are able to attract specific nuclear proteins. I shall define this code therefore as a "chromatin folding code". Since locus-specific superstructures of tandemly repetitive sequence units are present not only in the chromosome centromere or telomere region but also on the arms of the chromosomes, I assume that their chromatin folding code may contribute to, or even organize, the folding pathway of the chromatin chain in the nucleus. The "chromatin folding code" is based on its specific "chromatin code", which describes the sequence dependence of the helical pathway of the DNA primary sequence (i.e., secondary structure) entrapping the histone octamers in preferential positions. There is no periodicity in the distribution of the nucleosomes along the DNA chain. The folding pathway of the nucleosomal chromatin chain is however still flexible and determined by e.g., the length of the DNA chain between the nucleosomes. The fixation and stabilization of the chromatin chain in the space of the nucleus (i.e., its "functional state") may be mediated by additionally unique DNA protein interactions that are dictated by the "chromatin folding code". The unique DNA-protein interactions around the centromeres of human chromosomes are revealed for example by their "C-banding". I wish to stress that it is not my aim to relate each block of repetitive DNA sequences to a specific "chromatin folding code", but I shall demonstrate that there is an inherent potential for tandem repeated sequence units to develop a locus-specific repetitive higher order structure; this potential may create a specific chromatin folding code whenever a selection force exists at the position of this repetitive DNA structure in the genome.

Chromatin↗