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A novel standardization method for two-dimensional DNA fingerprints.

Two-dimensional (2-D) DNA fingerprinting is a technique that allows for parallel genome analysis through the simultaneous detection of up to 500 mini- or microsatellite loci on a 2-D gel. Separation is performed according to size and melting temperature in the gel. In the application of this technique in genome analysis, a standardized method for the identification of individual spots is required. However, due to the polymorphic nature of up to 80% of the spots, existing standardization methods that have been primarily developed for 2-D protein patterns are not suitable for this task. We developed a robust method that standardizes 2-D DNA fingerprint spots on the basis of melting temperature - or denaturing gradient position - and fragment size. An external marker was used as a basis for standardization. A normalization surface was calculated over the gel dimensions by adapting an established numerical iteration technique previously used in physics termed "relaxation method". The relaxation method works robustly with the irregularly spaced marker spots. The evaluation of the method for a spot of preknown position derived from the TP53 gene revealed a median observed error below 1% for fragment length and denaturing gradient position. The search for candidate minisatellite loci in genomic difference analysis depends on the reliable identification of alleles of this locus in different individuals. We proved experimentally that alleles of a single minisatellite locus cloned from a 2-D gel cluster on an isothermal line can be reliably identified using the presented standardization method. In conclusion, a standardization tool for a broader application of 2-D DNA fingerprinting in both tumor analysis and possibly parallel mutation screening is now available.

Alleles↗

DNA fingerprinting of renal cell carcinoma with special reference to tumor heterogeneity.

Genomic alterations in renal cell carcinoma were investigated by DNA fingerprinting using the simple repetitive oligonucleotide probe (CAC)s. Nine of ten tumors showed somatic changes in the fingerprint pattern compared with constitutional DNA. The most consistent changes were deletions and/or decrease in intensity of a band. When using two or three samples from different parts within the tumor, up to three different cell clones could be detected. These results indicate that DNA fingerprinting analysis can be a useful technique for the study of genomic alterations and tumor heterogeneity in renal cell carcinoma.

Carcinoma, Renal Cell↗

Leishmania (Viannia) braziliensis: genetic relationships between strains isolated from different areas of Brazil as revealed by DNA fingerprinting and RAPD.

Leishmania (Viannia) braziliensis isolates from two different geographic areas in Brazil were studied by DNA fingerprinting with the 33.15 multilocal probe and PCR with arbitrary primers (random amplification of polymorphic DNA-RAPD). The genetic distance of strains was measured by band sharing. The results showed that the strains isolated in Minas Gerais, southeastern Brazil, are very different from those isolated in Pará, northern Brazil. Strains from Minas Gerais constituted a relatively homogeneous group, presenting DNA fingerprint patterns with 76% of shared bands and RAPD profiles with 93% of shared bands. In contrast, strains from Pará showed higher genetic variability, with only 17 and 45% of shared bands in DNA fingerprint and RAPD patterns, respectively. This study suggests that genetic differences between L. braziliensis from both areas might have an epidemiological significance.

Animals↗

Contig assembly of bacterial artificial chromosome clones through multiplexed fluorescence-labeled fingerprinting.

A rapid multiplexed fingerprinting method has been developed for bacterial artificial chromosome (BAC) contig assembly. Defined subsets of BAC DNA fragments that result from digestion by three paired restriction endonucleases are labeled with unique fluorescent F-ddATP for each subset. Lists of the labeled fragment size are generated by an ABI 377 DNA sequencer and the GeneScan analysis software and then processed by an assembly program, FPC (Fingerprinted Contigs), to produce contig maps. Data obtained from the multiplexed labeling permit detection of smaller overlaps than is observed when data from a single double-digest are analyzed. The method has been tested on 98 BACs from chromosome 22 regions where large-scale sequencing is under way and also through simulation, using randomly generated BAC clones derived from existing DNA sequence data. In each case, contig assembly results demonstrated the advantages of multiplexed fingerprinting.

Chromosomes, Bacterial↗

An algorithm for clustering cDNA fingerprints.

Clustering large data sets is a central challenge in gene expression analysis. The hybridization of synthetic oligonucleotides to arrayed cDNAs yields a fingerprint for each cDNA clone. Cluster analysis of these fingerprints can identify clones corresponding to the same gene. We have developed a novel algorithm for cluster analysis that is based on graph theoretic techniques. Unlike other methods, it does not assume that the clusters are hierarchically structured and does not require prior knowledge on the number of clusters. In tests with simulated libraries the algorithm outperformed the Greedy method and demonstrated high speed and robustness to high error rate. Good solution quality was also obtained in a blind test on real cDNA fingerprints.

Algorithms↗

DNA fingerprinting; a biotechnology in business.

Since its discovery by Professor Alec Jeffreys, first published in 1985, DNA fingerprinting has never been far from the headlines. Cellmark, as the leading commercial DNA fingerprinting enterprise, has had the challenge of establishing its business in this high profile environment. The challenge for such a business has had three elements. Firstly and primarily to establish a laboratory system that consistently provides results to the highest standards possible. Secondly to communicate the science to its broad customer base which ranges from the general public to the experts of legal, scientific and governmental systems. Then finally there is the challenge of setting up the business in the context of the volatile, venture-capital based biotechnology market where the requirements for assured quality spar with those for cut prices. Given this backdrop it is not surprising that DNA fingerprinting has had its detractors, yet the consensus of opinion is that this technology has become a near routine business with the challenges effectively met and the success that was hoped for.

Biotechnology↗

The quality control of cell banks using DNA fingerprinting.

Reproducibility in animal cell culture technology requires careful preparation and characterisation of banks of cell cultures. The two standard techniques used in the quality control of such banks are isoenzyme analysis and cytogenetics which require complex and time-consuming procedures to enable cell line identification. However, DNA fingerprinting is potentially a more powerful method of analysis which can detect mutation and intra-species cross-contamination. At the European Collection of Animal Cell Cultures (ECACC) multilocus fingerprint analysis using probes 33.6 and 33.15 has been assessed in the quality control of cell banks. This method has confirmed consistency between master and working banks, has proven useful over a wide species range and can differentiate closely related cell lines. The key advantage of this method is its ability to detect cross-contamination by cell lines from a wide range of species using a straightforward and economical test. In addition the reproducibility of DNA fingerprints indicates their possible role in cell line authentication procedures which are important for patent and product licence applications.

Animals↗

Arbitrary primed PCR fingerprinting of RNA applied to mapping differentially expressed genes.

Differential gene expression between various tissues and developmental stages or between cells in vitro under different growth conditions can be rapidly and efficiently compared using the RNA arbitrarily primed polymerase chain reaction (RAP) fingerprinting method (Welsh et al., 1992b; Liang and Pardee, 1992). In RAP, a primer of arbitrary sequence primes both first and second strand cDNA synthesis. The mixture of products is then PCR amplified and resolved electrophoretically, yielding highly reproducible fingerprints that are tissue-specific or growth condition-specific. Differences between fingerprints arise from differentially expressed genes, as verified by Northern blot analysis. RAP can be performed on the RNA samples using various DNA primers. Each two day experiment yields a sample of approximately twenty cDNA products per lane making the identification of differentially or developmentally regulated genes no longer rate limiting. Those PCR products representing genes that are regulated can be cloned from the gel and sequenced. Sequences can be compared to the DNA and protein sequence databases to identify homologs, motifs and members of gene families. The clones can be placed on the genetic map as Expression Tagged Sites (ETS, Adams et al., 1991a).

Animals↗

Oligonucleotide DNA fingerprinting: results of a multi-center study on reliability and validity.

We report the results of an empirical study of 256 paternity cases referred to 7 different German laboratories for DNA fingerprinting with oligonucleotide probe (CAC)5/(GTG)5. All parameters characteristic of such multilocus DNA fingerprints were found to differ significantly between the contributing centres. Despite these differences, clear-cut decisions between paternity and non-paternity could be made in all but one case. Furthermore, we found no systematic deviation of the gel-phenotype distribution among trios from random expectation as derived from commonly adopted analytical models. Thus, we conclude that oligonucleotide DNA fingerprinting is a robust and reliable means for the resolution of paternity cases.

Base Sequence↗

Increased band sharing in DNA fingerprints of an inbred human population.

We have compared band sharing between the DNA fingerprints of members of an inbred human population with band sharing between members of an outbred population. It had not previously been determined whether the high rate of mutation at minisatellite loci is sufficient to prevent an increase in band sharing in moderately inbred populations. We have found that there is an increase in band sharing in the 2-kb to 9-kb size range, but not in the greater than 9-kb size range, in the inbred population. The difference was consistently observed using four different multi-locus probes, viz. 33.6, 33.15, (CAC)5 and M13. Thus, we have demonstrated that moderate but prolonged inbreeding can lead to increased similarity in human DNA fingerprints. This should be considered when analysing DNA fingerprints in forensic or paternity cases involving members of an inbred community.

Base Sequence↗

Use of DNA fingerprinting for human population genetic studies.

DNA fingerprinting techniques have been used in population genetic studies on many different kinds of organisms. Here, we present new applications for multilocus DNA fingerprint probes in population studies and demonstrate the applicability of DNA fingerprinting to human population genetics, using M13 phage DNA as a probe. The new approach, which is based on a factor method of numerical coding of nonquantitative data (factor correspondence analysis-FCA), shows good agreement between population position, as indicated by the three principal factors, and ethnogenetic proximity.

Azerbaijan↗

Paternity determination in the adder (Vipera berus)--DNA fingerprinting or random amplified polymorphic DNA?

We performed breeding experiments with adders (Vipera berus) to determine whether multiple matings may result in multiple paternity. DNA fingerprinting of mothers, their offspring, and possible fathers using a polydinucleotide probe [(TG)n] gave a low overall similarity between unrelated individuals (0.18 +/- 0.07; SD) and an average of 17 bands that were male-specific. In no cases were there fewer than seven paternal-specific bands present in the fingerprint of an offspring, enabling us unambiguously to identify the biological father among five males. Multiple paternity was detected in the investigated broods with offspring sired exclusively by the captive males. PCR amplification of random amplified polymorphic DNA (RAPD) using 16 decamer primers gave 76 bands and an average similarity of 0.95 (+/- 0.01) between the males, which were collected at different, geographically well-separated localities. Although there were on average 8.3 (+/- 1.9) bands that differ between males in pairwise comparisons, there were only 1.9 (+/- 1.1) bands per male that are specific for a particular individual. Thus, RAPDs are adequate for paternity determination only in experiments with a low number of males, whereas DNA fingerprinting offers sufficient information to discriminate between large numbers of putative fathers.

Animals↗

Use of polymerase chain reaction (PCR) fingerprinting to differentiate bacteria for microbial products screening.

PCR fingerprinting offers a practical molecular means to quickly and reliably differentiate bacteria for microbial products screening. A combination of low resolution and high resolution PCR fingerprinting provides a hierarchical system which allows the discrimination of bacteria at species and subspecies level within 7 h. DNA was extracted from cells by incubating them in water at 95 degrees C for 30 min. A sample of 1 microliter of the cell-free aqueous extract then was used as a source of template DNA in the PCR. The PCR products were separated by electrophoresis on an acrylamide gel and visualized by ethidium bromide staining. The band patterns generated for each different culture were unique, reproducible, and independent of cultivation conditions. Band patterns may be compared visually or by using imaging and pattern matching software. In our laboratory, bacteria such as actinomycetes, Gram-negative and Gram-positive soil eubacteria, and photosynthetic non-sulfur bacteria have been differentiated using PCR fingerprinting.

Bacillus↗

Typing of coagulase-negative staphylococci by Southern hybridization of chromosomal DNA fingerprints using a ribosomal RNA probe.

Ribotyping consists of restriction endonuclease fingerprinting of ribosomal RNA (rRNA) genes visualized by Southern hybridization with an rRNA probe. This method was developed and compared with restriction endonuclease fingerprinting of chromosomal DNA for typing coagulase-negative staphylococci. Twenty-five American Type Culture Collection reference type strains and 53 clinical isolates were typed. Both methods clearly distinguished all 15 species of coagulase-negative staphylococci and most individual strains within each species. Except in the case of Staphylococcus warneri, ribotyping was most discriminating with the use of ClaI, one of eight endonucleases tested. HpaI and AvaI were more specific than ClaI for discrimination between strains of Staphylococcus warneri. The patterns produced by ribotyping were much simpler and thus easier to interpret than corresponding chromosomal fingerprints. However, ribotyping was slightly less discriminating. It is concluded that ribotyping offers an alternative method for molecular typing of coagulase-negative staphylococci. The application of both methods needs to be further evaluated in the clinical setting.

Bacterial Typing Techniques↗

DNA fingerprint analysis of a free-range koala population.

Thirty-six koalas in a free-range Queensland population were fingerprinted using an M13 probe in combination with MspI digestion. The technique was found to be highly repeatable, with estimates of 0.1-1.6% within-gel error and 0.1-2.5% between-gel error. Of the 43 different-size fingerprint bands produced in the population, only 2 bands were common to all 36 koalas. Ten bands were quite rare, occurring at a frequency of 0.2 or less. All 36 koalas had unique DNA fingerprints (probability of 1.88 x 10(-7)), which enabled them each to be uniquely identified. Despite this, there was still a high level of band sharing in the population (mean number of shared bands = 0.749). This level is much higher than that reported for humans, birds, cats, dogs, and cattle but not as high as that reported previously for Victorian koalas. This lack of genetic variation may influence the ability of the population to respond to stress situations, such as lack of food, habitat destruction, and disease.

Animals↗

DNA fingerprinting--a valuable new technique for the characterisation of cell lines.

DNA fingerprinting is an important new development for the authentication of cell lines. Multilocus methods such as those developed by Alec Jeffreys provide information on a wide range of genetic loci throughout the human genome and thus give a useful genetic "snap-shot" of a cell culture. Our work has shown that Jeffreys multilocus fingerprinting method can be applied to cell lines from a wide range of animals including reptiles, birds, fish and diverse mammals. It can also differentiate very closely related cell lines including those from the same mouse strain. Routine fingerprint analysis has enabled an unprecedented level of confidence in the consistency of cell stocks. Our results demonstrate that this straightforward method represents a powerful and readily interpreted system for cell authentication and exclusion of cross-contamination.

Animals↗

Selective differential fingerprinting. A method for identifying differentially expressed genes in a family between two samples.

A method termed selective differential fingerprinting (SDF) has been developed that enables one to investigate the level of expression for a family of genes between two samples. SDF produces a fingerprint (on a sequencing gel) on reverse transcription polymerase chain reaction (RT-PCR) of a sample with degenerate primers designed from conserved regions of a family of genes. By comparing fingerprints obtained after SDF with primers representing the transforming growth factor-beta (TGF beta) family of growth factors between a low-grade and a high-grade tumor from the same patient, a TGF beta family member known as osteogenic protein 1 (OP-1) or bone morphogenic protein 7 (BMP-7) was found to be greatly overexpressed in the high-grade tumor compared to the low-grade one. SDF also has the potential to identify novel genes. SDF offers a general way to identify differentially expressed genes for a family between two given samples.

Bone Morphogenetic Protein 7↗

Whole CagA gene amplification of Helicobacter pylori and its fingerprinting by restriction fragment length polymorphism.

To set up a method of amplification for the whole CagA gene of Helicobacter pylori and its fingerprinting by restriction fragment length polymorphism (RFLP), nested PCR was employed in combination with TD-PCR to amplify the gene and EcoRI and Hind III were used to generate the RFLP fingerprinting. Target DNA fragments from 13 of 20 samples were successfully amplified and the relevant RFLP fingerprintings were obtained. It is concluded that the method can be used to amplify the whole CagA gene and CagA gene has apparent diversity of RFLP profile.

Antigens, Bacterial↗