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DNA probes: applications of the principles of nucleic acid hybridization.

Nucleic acid hybridization with a labeled probe is the only practical way to detect a complementary target sequence in a complex nucleic acid mixture. The first section of this article covers quantitative aspects of nucleic acid hybridization thermodynamics and kinetics. The probes considered are oligonucleotides or polynucleotides, DNA or RNA, single- or double-stranded, and natural or modified, either in the nucleotide bases or in the backbone. The hybridization products are duplexes or triplexes formed with targets in solution or on solid supports. Additional topics include hybridization acceleration and reactions involving branch migration. The second section deals with synthesis or biosynthesis and detection of labeled probes, with a discussion of their sensitivity and specificity limits. Direct labeling is illustrated with radioactive probes. The discussion of indirect labels begins with biotinylated probes as prototypes. Reporter groups considered include radioactive, fluorescent, and chemiluminescent nucleotides, as well as enzymes with colorimetric, fluorescent, and luminescent substrates.

Base Sequence↗

In situ nucleic acid hybridization.

Nucleic acid hybridization is a recently developed laboratory technique that allows identification of the genetic material in tissue specimens. The role of the nucleic acids DNA and RNA in cellular function and disease is reviewed, followed by discussion of nucleic acid detection techniques. Earlier methods used to detect nucleic acids were slow and time-consuming. Current in situ detection techniques allow rapid characterization of pathogenic organisms in tissue sections and localization of the pathologic genetic material to specific cellular regions. This technology has been useful in the understanding of viral ocular diseases including herpes keratitis and cytomegalovirus retinitis and also has great potential in the understanding of the pathogenesis of human cancers, genetic disorders and endocrine and immunologic diseases.

DNA↗

New developments in nucleic acid hybridization.

Nucleic acid hybridization is widely used for scientific applications in specialized laboratories. This paper describes hybridization probes that can be prepared with less specialized equipment. A new indirect 'sandwich' hybridization test is described which allows the use of only one universally usable labelled probe for hybridization tests with specificities for various sequences. The use of different labels and hybridization techniques is also discussed and critically compared. For in situ hybridization, the usability of fixed and embedded materials is tested and evaluated.

DNA, Viral↗

Identification of foodborne pathogens by nucleic acid hybridization.

Nucleic acid hybridization methods have been developed and used to identify microorganisms in foods. Tests performed on mixed cultures save the time required to establish pure cultures. Enterotoxigenic or invasive strains of foodborne bacterial pathogens are detected with probes that identify genes responsible for virulence. Hybridization tests signal the presence or absence of a particular strain or an entire genus and are especially well suited for screening foods for specific pathogens. With the colony hybridization assay format, foodborne bacteria harboring a specific gene can be enumerated. However, hybridization tests require the presence of 10(5) to 10(6) cells to yield a positive result, thereby limiting sensitivity and necessitating a time-consuming growth step. In vitro DNA amplification techniques increase the amount of DNA segments 10(5)-10(6)-fold in 2 to 3 h, thus enhancing test sensitivity.

Bacteria↗

Beyond hybridomas. Cell identification by in situ nucleic acid hybridization.

Nucleic acid hybridization is a powerful technique that has been developed almost entirely by molecular biologists. It has the potential to identify specific types of cells with far greater sensitivity and specificity than such current methods as polyclonal or monoclonal antibodies or lectins. As the RNAs or DNAs (probes) needed for this technique become available, it is likely to replace other methods of identifying many kinds of cells in tissue sections.

Antibodies, Monoclonal↗

Comparison of nucleic acid hybridization and nucleic acid amplification using conserved sequences from the 5' noncoding region for detection of bovine viral diarrhea virus.

Primers and probes derived from conserved sequences located in the 5' noncoding region of pestiviruses were evaluated for detection of bovine viral diarrhea virus. With these reagents, hybridization and polymerase chain reaction tests detected 62 of 90 and 90 of 90 bovine viral diarrhea virus isolates, respectively. A quick lysis method for preparing RNA for use in polymerase chain reaction amplification also was evaluated.

Animals↗

Characterization of the diversity of sulfate-reducing bacteria in soil and mining waste water environments by nucleic acid hybridization techniques.

Nucleic acid hybridization techniques were used to characterize the sulfate-reducing bacterial communities at seven waste water and two soil sites in Canada. Genomic DNA was obtained from liquid enrichment cultures of samples taken from these nine sites. The liquid enrichment protocol favored growth of the sulfate-reducing bacterial component of the communities at these sites. The genomic DNA preparations were analyzed with (i) a specific gene probe aimed at a single genus (Desulfovibrio), (ii) a general 16S rRNA gene probe aimed at all genera of sulfate-reducing bacteria and other bacteria, and (iii) whole genome probes aimed at specific bacteria. This three-pronged approach provided information on the sulfate-reducing bacterial community structures for the nine sites. These were compared with each other and with the sulfate-reducing bacterial communities of western Canadian oil field production waters, studied previously. It was found that there is considerable diversity in the sulfate-reducing bacterial community at each site. Most sulfate-reducing bacteria isolated from distinct sites are genomically different and differ also from sulfate-reducing bacteria found in oil field production waters.

Bacteria↗

Detection of adenoviruses in stool specimens by nucleic acid spot hybridization.

Nucleic acid hybridization was used for the detection of adenovirus DNA in stool specimens, and the results were compared with those obtained by a radioimmunoassay (RIA) for adenovirus hexon antigen. DNA from 40 specimens, 18 of which were positive by RIA, were spotted onto nitrocellulose filters and analyzed by hybridization using radioactively labeled adenovirus-2 DNA or a cloned DNA fragment from enteric adenovirus-41 as probes. With the adenovirus-2 DNA probe, 15 of the 18 RIA-positive specimens were also positive in the hybridization assay, and one of the RIA negative specimens was also scored as positive. The cloned adenovirus-41 fragment gave a positive signal with five specimens, all of which were also detected with the adenovirus-2 DNA probe. The results show that hybridization is an alternative method for detection of adenovirus in stool specimens. The sensitivity of the assay is comparable to that of the RIA.

Acute Disease↗

Diagnosis of fetal rubella infection by nucleic acid hybridization.

The efficacy of nucleic acid hybridization for the diagnosis of rubella infection in experimental and clinical materials was compared with immunoblot and virus isolation techniques. Our results showed that nucleic acid hybridization is specific and rapid but gives false-negative results when compared with conventional virus isolation in some experimental although not in clinical materials so far examined. For this reason, a failure to demonstrate rubella virus in fetal specimens by this method alone cannot yet be taken as a sole criterion for ruling out fetal rubella infection.

Abortion, Spontaneous↗

The vector homology problem in diagnostic nucleic acid hybridization of clinical specimens.

Nucleic acid hybridization techniques using cloned probes are finding application in assays of clinical specimens in research and diagnostic laboratories. The probes that we and others have used are recombinant plasmids composed of viral inserts and bacterial plasmid vectors such as pBR322. We suspected that there was material homologous to pBR322 present in many clinical samples. because hybridization occurred in samples which lacked evidence of virus by other techniques. If the presence of this vector-homologous material was unrecognized, hybridization in the test sample might erroneously be interpreted as indicating the presence of viral sequences. In this paper we demonstrate specific hybridization of labeled pBR322 DNA with DNA from various clinical samples. Evidence is presented that nonspecific probe trapping could not account for this phenomenon. In mixing experiments, it is shown that contamination of clinical samples with bacteria would explain such a result. Approaches tested to circumvent this problem included the use of isolated insert probes, alternate cloning vectors, and cold competitor pBR322 DNA in prehybridization and hybridization mixes. None proved entirely satisfactory. We therefore emphasize that it is essential that all hybridization detection systems use a control probe of the vector alone in order to demonstrate the absence of material with vector homology in the specimen tested.

Cytomegalovirus↗

Evaluation of varicella-zoster antiviral drugs by a nucleic acid hybridization assay.

A simple nucleic acid hybridization assay was developed for the evaluation of antiviral compounds with activity against varicella-zoster virus. Antiviral-induced reduction in varicella-zoster virus DNA, as measured by hybridization with 32P-labeled probes, correlated with drug-induced inhibition of viral cytopathic effect in cell culture. Three compounds were shown to be more potent than acyclovir at inhibiting varicella-zoster virus in vitro.

Acyclovir↗

Detecting human immunodeficiency virus RNA in peripheral blood mononuclear cells by nucleic acid hybridization.

We have developed a nucleic acid hybridization assay for detecting human immunodeficiency virus (HIV) RNA in peripheral blood mononuclear cells. This assay can detect HIV RNA in 10(2) cultured lymphoblastoid cells infected with HIV; it only weakly crossreacts with the RNA of HTLV-I or HTLV-II. For 39 (80%) of 49 seropositive subjects, we detected HIV sequences in the RNA from 10(6) peripheral blood mononuclear cells. In contrast, we could not detect HIV DNA in samples of DNA from the same number of cells from any of 39 seropositive individuals tested. Three of 33 seronegative individuals had false-positive results. Nevertheless, because we found an excellent correlation between results from our assay and culture of HIV from peripheral blood mononuclear cells of seropositive subjects, it is unlikely that positive cultures of HIV from these cells reflect latent infection. Nucleic acid hybridization offers a more rapid, simple, and inexpensive alternative to culture for detecting HIV-infected peripheral blood mononuclear cells.

Antibodies, Viral↗

Detection of human papillomavirus infection by nucleic acid hybridization.

Single-stranded nucleic acid molecules that are complementary to each other will form hybrids under appropriate conditions. Hybridization tests make use of this phenomenon and employ labeled molecules called probes to detect specific complementary molecules called targets. Nucleic acid hybridization is the most sensitive method for detecting HPV in clinical specimens and the only one capable of identifying specific HPV types. There are many alternative hybridization test formats; most of them use either filters or glass slides as solid supports. Of the established tests, Southern blot hybridization remains the most sensitive and specific test for HPV DNA but has the drawback of also being the most time consuming. Several novel methods show promise, and some innovative procedure may eventually dominate routine nucleic acid detection. The ideal test would be simple enough to permit automation.

DNA, Viral↗

Nucleic acid hybridization: from research tool to routine diagnostic method.

The nucleic acid hybridization reaction is extremely specific and thus a valuable tool for the identification of genes or organism of interest. The increasing use of nucleic acid hybridization in applied fields like diagnostic medicine has led to the development of more convenient hybridization assays than those originally used in basic research. In conventional nucleic acid hybridization methods immobilized nucleic acids are detected on a filter by a radiolabelled probe. Sandwich hybridization is a simple test format for the analysis of unpurified biological material, but has the disadvantage of a slow reaction rate. Solution hybridization methods are fast and easy to perform provided that a method to separate the formed hybrids from the reaction mixture is available. In non-isotopic detection the nucleic acid probe is modified with a chemical group, which is identified with a labelled detector molecule after hybridization. The low sensitivity of detection is the main problem in nucleic acid hybridization methods. Procedures to amplify the detectable signal or the amount of detectable nucleic acid sequences are potential solutions to this problem. The new hybridization methods have successfully been used for some applications, but still need to be combined into well performing tests to be applicable to any desired purpose.

DNA↗

A microcomputer program for analysis of nucleic acid hybridization data.

The study of nucleic acid hybridization is facilitated by computer mediated fitting of theoretical models to experimental data. This paper describes a non-linear curve fitting program, using the 'Patternsearch' algorithm, written in BASIC for the Apple II microcomputer. The advantages and disadvantages of using a microcomputer for local data processing are discussed.

Computers↗

Murine cytomegalovirus: detection of latent infection by nucleic acid hybridization technique.

The technique of nucleic acid hybridization was used to detect the presence of murine cytomegalovirus (MCMV)-specific deoxyribonucleic acid (DNA) in cell cultures and salivary gland tissues. The presence of approximately 4.5 and 0.2 genome equivalents per cell of MCMV-specific DNA was identified in cultures of salivary (ISG2) and prostate gland (IP) cells, respectively. These cells, derived from animals with experimentally induced latent infections, were negative for virus-specific antigens by immunofluorescence and on electron microscopy revealed no visible evidence of the presence of herpesviruses. A cell line derived from the salivary gland of an uninoculated animal (NSG2) was also found to possess MCMV-specific DNA (0.2 genome equivalents per cell). For this reason, salivary gland tissues from uninoculated animals supplied as "specific pathogen-free" mice by three commercial sources were tested upon arrival for the presence of MCMC-specific DNA. MCMV-specific DNA was detectable in pooled salivary gland extracts from uninoculated animals derived from two commercial sources. All of these animals were seronegative and virus negative by conventional infectivity assays.

Animals↗

Nucleic acid hybridization in viral hepatitis research.

Nucleic acid hybridization is extremely important in viral hepatitis research and the newly emerging techniques are now becoming an indispensable resource also in the diagnostic laboratory. This paper provides information on methods currently used for detection of viral nucleic acids with special emphasis on the importance of hepatitis B virus DNA in the serum. Herein, we describe the procedures for preparation and labeling of DNA probes and the principles that regulate dot, slot and Southern blot hybridization. Advantages and shortcomings of filter hybridization are discussed together with the alternative approaches to it. Finally, a collection of laboratory protocols is presented in Appendix #1.

DNA Probes↗

Studies towards the development of chemically synthesized non-radioactive biotinylated nucleic acid hybridization probes.

Non-radioactive nucleic acid hybridization probes have been constructed in which the reporter group is long chain biotin chemically linked to a basic macromolecule (histone H1, cytochrome C or polyethyleneimine). The modified basic macromolecule which carries many biotin residues can, in turn, be covalently linked to nucleic acids (DNA) via the bifunctional cross-linking reagents, glutaraldehyde, 1,2,7,8-diepoxyoctane, bis (succinimidyl) suberate or bis (sulfonosuccinimidyl) suberate. This provides a very sensitive probe by which as little as between 10-50fg of target DNA can be visualized using dot-blot hybridization procedures in conjunction with avidin or streptavidin enzyme conjugates.

Biotin↗