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Use of DNA fingerprinting in decision making for considering closure of neonatal intensive care units because of Pseudomonas aeruginosa bloodstream infections.

BACKGROUND: Bloodstream infections with Pseudomonas aeruginosa have been well-described in neonatal intensive care units (NICU) and have resulted in the temporary closure of some nurseries to new admissions. Nosocomial transmission of these infections has been verified by fingerprint analysis of the isolates. We utilized molecular fingerprinting to identify the source of bloodstream infections in an NICU and used this information to apply infection control measures that allowed the nursery to stay open and continue to accept referrals. METHODS: In June 1998 three premature infants transferred to our hospital (Hospital A) from Hospitals B and C had bloodstream infections with P. aeruginosa. Subsequently one additional neonate transferred from Hospital B was colonized with P. aeruginosa. Random amplification of polymorphic deoxyribonucleic acid (RAPD) was performed on the four isolates. All transfers from Hospital B were cultured, and surveillance programs were instituted in Hospitals A and B. Targeted infection control measures for all transfers were implemented. RESULTS: The four isolates were the same clone by RAPD. Investigation of the environment in Hospital A did not identify any source of the organism. Surveillance cultures on 49 neonates at Hospital A revealed only one patient colonized at an endotracheal tube. This patient was also a transfer from Hospital B. Results from Hospital B identified 4 of 40 (10%) neonates colonized. All isolates were clones identical with the bloodstream isolates from the neonates with bloodstream infections. Infection control measures for all babies transferred from Hospital B resulted in no new cases of P. aeruginosa bacteremia during the next 5 years. CONCLUSIONS: The use of molecular fingerprinting of isolates of P. aeruginosa allowed for a prompt and directed infection control plan to be implemented in Hospitals A and B. It also allowed the NICU in Hospital A to continue to accept referrals from other hospitals and to implement a targeted infection control plan for patients transferred from Hospital B.

Bacteremia↗

Demonstration of a gastric bioptic specimen mix-up by laser capture microdissection (LCM) and DNA fingerprinting.

We demonstrate here the successful use of laser capture microdissection (LCM) and DNA fingerprinting in the identification of a case of gastric bioptic specimen mix-up. A 70-year-old man, suffering from chronic atrophic gastritis, underwent to a gastric biopsy and received a diagnosis of gastric cancer. In the absence of any clinical evidence of gastric cancer, a specimen mix-up was suspected. LCM was used to retrieve gastric cells from the histologic slide, classified as gastric carcinoma, and suspected to be mislabelled. DNA was extracted from microdissected cells, and a total of 16 different genetic loci were analyzed, using an identity test. Comparison of the results with those obtained using DNA extracted from a control slide, and from patient's saliva, demonstrated a distinct DNA fingerprint pattern in all genetic markers examined, clearly indicating the occurrence of a specimen mix-up. The combined use of LCM and DNA fingerprinting represents the most accurate and sophisticated method available for the identification of specimen mix-up, especially when only the tissue on the suspected slide is available.

Aged↗

Use of short tandem repeats for DNA fingerprinting to rapidly diagnose graft-versus-host disease in solid organ transplant patients.

BACKGROUND: Graft-versus-host disease (GVHD) is a rare complication following liver transplantation and carries a poor prognosis with mortality approaching 90-95%. Diagnosis of GVHD is often delayed due to early symptoms mimicking more common, entities such as drug reactions and viral syndromes. To date, definitive diagnosis has been difficult and has relied on a constellation of clinical and histopathologic variables. We present the use of short tandem repeat DNA "fingerprinting" technology as a method of early, definitive diagnosis of GVHD in patients after liver transplantation. METHODS: A patient status-postorthotopic cadaveric-liver transplant, with an uncomplicated immediate posttransplant course, presented 4 weeks after transplant with fever, diarrhea, and maculopapular rash on her palms, soles, and back. The patient's condition worsened despite empiric treatment for an infectious etiology. Skin and rectal biopsies were suspicious for GVHD. RESULTS: DNA was isolated from the skin and rectal biopsies as well as from a donor lymph node. PCR amplification was done for nine highly polymorphic short tandem repeats for each specimen and a unique DNA "fingerprint" was obtained from each. DNA from skin and rectum demonstrated mixed chimerism with both donor and recipient alleles detected. Thorough analysis confirmed GVHD. CONCLUSION: Short tandem repeats for DNA fingerprinting represents an efficient and reproducible method for the definitive diagnosis of GVHD after liver transplantation. Rapid detection of GVHD using this technology, coupled with early initiation of therapy, may lead to improved survival for patients with GVHD after solid organ transplant.

DNA Fingerprinting↗

Clonal structure of the introduced freshwater snail Potamopyrgus antipodarum (Prosobranchia: Hydrobiidae), as revealed by DNA fingerprinting.

Multi-locus DNA fingerprints were obtained from individuals of the hydrobiid snail, Potamopyrgus antipodarum (= P. jenkinsi), by using an RNA derivative (pSPT 18.15) of Jeffrey's 33.15 minisatellite core sequence. Whole-body homogenization of snails yielded 3.21 +/- 0.09 micrograms DNA per individual, producing complex profiles comprising 12-22 fragments within the 1.0-20.0 kilobase (kb) size range. Fingerprints from natural and experimental populations identified three distinct clonal genotypes corresponding to morphological strains A, B and C, with only rare mutational variants. Mother-offspring comparisons of genetic fingerprints revealed genetic stability during apomictic parthenogenesis. Data support the notion that British populations of P. antipodarum comprise three widespread obligate parthenogenetic clones resulting from a mid-19th Century introduction from Australasia. The present-day low levels of genotypic diversity are discussed in relation to the typical occurrence of P. antipodarum in man-made or immature habitats.

Animals↗

High-resolution genotypic analysis of the genus Aeromonas by AFLP fingerprinting.

We investigated the ability of a recently developed genomic fingerprinting technique, named AFLP, to differentiate the 14 currently defined DNA hybridization groups (HGs) in the genus Aeromonas. We also determined the taxonomic positions of the phenospecies Aeromonas allosaccharophila, Aeromonas encheleia, Aeromonas enteropelogenes, and Aeromonas ichthiosmia, which have not been assigned to HGs yet. A total of 98 Aeromonas type and reference strains were included in this study. For the AFLP analysis, the total genomic DNA of each strain was digested with restriction endonucleases ApaI and TaqI. Subsequently, restriction fragments were selectively amplified under high-stringency PCR conditions. The amplification products were electrophoretically separated on a polyacrylamide gel and visualized by autoradiography. Following high-resolution densitometric scanning of the resulting band patterns, AFLP data were further processed for a computer-assisted comparison. A numerical analysis of the digitized fingerprints revealed 13 AFLP clusters which, in general, clearly supported the current Aeromonas taxonomy derived from DNA homology data. In addition, our results indicated that there is significant genotypic heterogeneity in Aeromonas eucrenophila (HG6), which may lead to a further subdivision of this species. A. allosaccharophila and A. encheleia did not represent a separate AFLP cluster but were found to be genotypically related to HG8/10 and HG6, respectively. In addition, the results of the AFLP analysis also confirmed the phylogenetic findings that A. enteropelogenes and A. ichthiosmia are in fact identical to Aeromonas trota (HG13) and Aeromonas veronii (HG8/10), respectively. The results of this study clearly show that the AFLP technique is a valuable new high-resolution genotypic tool for classification of Aeromonas species and also emphasize that this powerful DNA fingerprinting method is important for bacterial taxonomy in general.

Aeromonas↗

Characterization of leptospiral serovars by randomly amplified polymorphic DNA fingerprinting.

Randomly amplified polymorphic DNA (RAPD) fingerprinting of 14 laboratory strains of leptospiral serovars (serovars australis, autumnalis, ballum, bataviae, canicola, grippotyphosa, hardjoprajitno, hebdomadis, icterohaemorrhagiae, javanica, pomona, pyrogenes, panama, and tarassovi) was carried out by using a pair of primers. Each serovar had a unique and distinct fingerprint pattern. DNAs of other bacterial species, including Escherichia coli, Pasteurella multocida, Salmonella spp., Pseudomonas spp., and Klebsiella spp., did not show any amplification. RAPD fingerprinting was found to be a rapid and sensitive method for serovar identification when it was compared to DNA restriction enzyme analysis, which produced a larger number of bands that made it more difficult to compare serovars.

Base Sequence↗

Evaluation of the DNA fingerprinting method AFLP as an new tool in bacterial taxonomy.

We investigated the usefulness of a novel DNA fingerprinting technique, AFLP, which is based on the selective amplification of genomic restriction fragments by PCR, to differentiate bacterial strains at the subgeneric level. In totals, 147 bacterial strains were subjected to AFLP fingerprinting: 36 Xanthomonas strains, including 23 pathovars of Xanthomonas axonopodis and six pathovars of Xanthomonas vasicola, one strain of Stenotrophomonas, 90 genotypically characterized strains comprising all 14 hybridization groups currently described in the genus Aeromonas, and four strains of each of the genera Clostridium, Bacillus, Acinetobacter, Pseudomonas and Vibrio. Depending on the genus, total genomic DNA of each bacterium was digested with a particular combination of two restriction endonucleases and the resulting fragments were ligated to restriction halfsite-specific adaptors. These adaptors served as primer-binding sites allowing the fragments to be amplified by selective PCR primers that extend beyond the adaptor and restriction site sequences. Following electrophoretic separation on 5% (w/v) polyacrylamide/8.3 M urea, amplified products could be visualized by autoradiography because one of the selective primers was radioactively labelled. The resulting banding patterns, containing approximately 30-50 visualized PCR products in the size range 80-550 bp, were captured by a high-resolution densitoscanner and further processed for computer-assisted analysis to determine band-based similarity coefficients. This study reveals extensive evidence for the applicability of AFLP in bacterial taxonomy through comparison of the newly obtained data with results previously obtained by well-established genotypic and chemotaxonomic methods such as DNA-DNA hybridization and cellular fatty acid analysis. In addition, this study clearly demonstrates the superior discriminative power of AFLP towards the differentiation of highly related bacterial strains that belong to the same species or even biovar (i.e. to characterize strains at the infrasubspecific level), highlighting the potential of this novel fingerprinting method in epidemiological and evolutionary studies.

Acinetobacter↗

Mapping the human Y chromosome by fingerprinting cosmid clones.

We have used Y-specific cosmid clones in a random fingerprinting approach to build contigs on the human Y chromosome. Clones derived from two libraries have been analyzed. The construction of one library is described here, the second was the Y chromosome-specific library LLOYNCO3 "M" (Lawrence Livermore National Laboratory). To date, we have fingerprinted 4430 cosmids: 377 contigs have been constructed containing from 2 to 39 clones. Along with the singletons, we estimate that we have covered 72.5% of the euchomatic portion of the Y chromosome with fingerprinted clones. Sequence tagged sites are being used to anchor cosmids and contigs onto the YAC framework.

Base Sequence↗

Software for automated analysis of DNA fingerprinting gels.

Here we describe software tools for the automated detection of DNA restriction fragments resolved on agarose fingerprinting gels. We present a mathematical model for the location and shape of the restriction fragments as a function of fragment size, with model parameters determined empirically from "marker" lanes containing molecular size standards. Automated identification of restriction fragments involves several steps, including: image preprocessing, to put the data in a form consistent with a linear model; marker lane analysis, for determination of the model parameters; and data lane analysis, a procedure for detecting restriction fragment multiplets while simultaneously determining the amplitude curve that describes restriction fragment amplitude as a function of mobility. In validation experiments conducted on fingerprinted and sequenced Bacterial Artificial Chromosome (BAC) clones, sensitivity and specificity of restriction fragment identification exceeded 96% on restriction fragments ranging in size from 600 base pairs (bp) to 30,000 bp. The integrated suite of software tools, written in MATLAB and collectively called BandLeader, is in use at the BC Cancer Agency Genome Sciences Centre (GSC) and the Washington University Genome Sequencing Center, and has been provided to the Wellcome Trust Sanger Institute and the Whitehead Institute. Employed in a production mode at the GSC, BandLeader has been used to perform automated restriction fragment identification for more than 850,000 BAC clones for mouse, rat, bovine, and poplar fingerprint mapping projects.

Animals↗

Whole-genome validation of high-information-content fingerprinting.

Fluorescent-based high-information-content fingerprinting (HICF) techniques have recently been developed for physical mapping. These techniques make use of automated capillary DNA sequencing instruments to enable both high-resolution and high-throughput fingerprinting. In this article, we report the construction of a whole-genome HICF FPC map for maize (Zea mays subsp. mays cv B73), using a variant of HICF in which a type IIS restriction enzyme is used to generate the fluorescently labeled fragments. The HICF maize map was constructed from the same three maize bacterial artificial chromosome libraries as previously used for the whole-genome agarose FPC map, providing a unique opportunity for direct comparison of the agarose and HICF methods; as a result, it was found that HICF has substantially greater sensitivity in forming contigs. An improved assembly procedure is also described that uses automatic end-merging of contigs to reduce the effects of contamination and repetitive bands. Several new features in FPC v7.2 are presented, including shared-memory multiprocessing, which allows dramatically faster assemblies, and automatic end-merging, which permits more accurate assemblies. It is further shown that sequenced clones may be digested in silico and located accurately on the HICF assembly, despite size deviations that prevent the precise prediction of experimental fingerprints. Finally, repetitive bands are isolated, and their effect on the assembly is studied.

DNA Fingerprinting↗

Features of the DNA fingerprinting probe pITZ1.

Stringently controlled plasmids generate DNA fingerprint patterns in mammals when used at low hybridization temperatures. In order to develop a probe for use in paternity testing in cattle we screened a bovine, partial genomic plasmid library with the PCR-amplified ori region of plasmid P1. Of eight isolated clones one generated strong band patterns at high stringency in various mammalian species (data not shown). Sequence analysis revealed an imperfect, compound dinucleotide repeat region, which was PCR-amplified and cloned into the plasmid vector pUC19. Fingerprint results generated by this probe (termed pITZ1) in cattle are compared with the results generated by VNTR-probe pV47, which itself was developed by screening a human chromosome 16 library with tandem repeats of bacteriophage M13. Probe pITZ1 is useful in conjunction with other VNTR-probes for DNA fingerprinting in cattle and donkey populations. The dinucleotide repeat region responsible for the band patterns generated with pITZ1 is close to an Alu-like sequence, which may be involved in eukaryotic replication mechanisms.

Animals↗

Identification of insect cell lines by DNA amplification fingerprinting (DAF).

Fingerprint profiles were generated from twenty insect cell lines spanning the Orders, Lepidoptera, Diptera, Coleoptera and Homoptera employing DNA amplification fingerprinting (DAF) with arbitrarily selected primers. The fingerprint pattern is a stable characteristic of the cell line because high and low passages generated the same profile. In addition, insect hosts and homologous cell lines generated similar profiles. All cell lines could be distinguished from each other with the following exceptions: Plutella xylostella (BCIRL-PX2-HNU3) and Mamestra brassicae (IZD-MB-0503) produced identical patterns to Trichoplusia ni (TN-CL1). Also Spodoptera exigua (UCR-SE-1C) produced the same profile as Spodoptera frugiperda (SF9) and the parent cell line IPLB-SF21. All these cases of identical patterns are believed to be due to cross contamination or mislabelling of cultures. DAF will serve as an additional, valuable and reliable technique for the identification of insect cell lines.

Aedes↗

M13 DNA fingerprinting, a new tool for classification and identification of Lactobacillus spp.

The optimal conditions for the application of M13 DNA fingerprinting to the genus Lactobacillus were determined. Comparative fingerprint analysis of representative strains of Lactobacillus delbrueckii subsp. delbrueckii, Lact. delbrueckii subsp. lactis, Lact. delbrueckii subsp. bulgaricus, Lact. helveticus and Lact. casei permitted the differentiation of species, subspecies and individual strains and the quantitative determination of their genetic relatedness. The results confirm the high specificity of M13 DNA fingerprinting and indicate that it might be used in the classification of Lactobacillus spp.

Blotting, Southern↗

Genetic fingerprinting of Flavobacterium columnare isolates from cultured fish.

AIMS: To evaluate the intraspecific diversity of the fish pathogen Flavobacterium columnare. METHODS AND RESULTS: Genetic variability among Fl. columnare isolates was characterized using restriction fragment length polymorphism analysis of the 16S rDNA gene, intergenic spacer region (ISR) sequencing, and amplified fragment length polymorphism (AFLP) fingerprinting. Thirty Fl. columnare cultures isolated from different fish species and geographical origins as well as reference strains were included in the study. Fifteen isolates belonged to genomovar I while eleven were ascribed to genomovar II. Analysis of the ISR sequence confirmed the genetic differences between both genomovars but revealed a higher diversity among genomovar I isolates. The maximum resolution was provided by AFLP fingerprinting, as up to 22 AFLP profiles could be defined within the species. CONCLUSIONS: We confirmed the division of Fl. columnare isolates from cultured fish into different genogroups. We showed that both genomovars I and II are present in channel catfish from the US. We described a unique genetic group represented by four Fl. columnare isolates from tilapia in Brazil which appears to be related to both genomovars. We were able to further subdivide the species by analysing the ISR. Finally, the use of AFLP allowed us to fingerprint the species at clone level without losing the higher genetic hierarchy of genomovar division. SIGNIFICANCE AND IMPACT OF THE STUDY: This paper reports on an extensive assessment of the use of molecular tools for the study of the epidemiology of the fish pathogen Fl. columnare.

Animals↗

Low genetic variability in a natural alpine marmot population (Marmota marmota, Sciuridae) revealed by DNA fingerprinting.

Genetic heterogeneity is usually considered an important factor for the viability of a population, yet there are cases in which populations sustain themselves despite virtual homozygosity. A prior step to studying the effects of such low levels of genetic variability can be the analysis of its causes. We analysed a population of the highly social alpine marmot (Marmota marmota, Sciuridae) by multilocus DNA fingerprinting. The fingerprint patterns revealed a very low degree of polymorphism in our main study population. We show that this lack of hypervariability is caused by a low effective population size, rather than by an unusual low mutation rate of the fingerprint loci studied. However, the current number of breeding pairs was found to be about an order of magnitude larger than the one that would be expected to lead to such a low degree of heterozygosity. We conclude that there must have been bottlenecks in the history of the Berchtesgaden marmot population that have severely affected its genetic heterozygosity.

Animals↗

Multilocus DNA fingerprinting and RAPD reveal similar genetic relationships between strains of Oreochromis niloticus (Pisces: Cichlidae).

Two molecular techniques which reveal highly variable DNA polymorphisms, RAPD and multilocus DNA fingerprinting, were used to evaluate genetic diversity between six aquacultural strains of Oreochromis niloticus (tilapia) from the Philippines. The results using both techniques were in close agreement. Within-strain heterozygosity values were similar and were correlated between the two data sets, but statistical errors associated with the RAPD data set were lower. Although genetic distances between strains were greater using DNA fingerprinting, the distances measured using both methods were significantly correlated. Both methods were useful in estimating variation between strains, but they offered different advantages. RAPD was technically easier to perform and produced results with low statistical error, whereas DNA fingerprinting detected greater genetic differentiation between strains. The theoretical basis for using RAPD and multilocus minisatellite markers for population studies is discussed.

Animals↗

Amplified fragment length polymorphism (AFLP) fingerprinting of symbiotic fungi cultured by the fungus-growing ant Cyphomyrmex minutus.

A PCR-based fingerprinting technique based on amplified fragment length polymorphisms (AFLP) is used to screen symbiotic fungi of the fungus-growing ant Cyphomyrmex minutus for genetic differences. AFLP fingerprints reveal several fungal 'types' that (a) represent distinct clones propagated vegetatively by the ant, or (b) correspond to free-living fungi that may be acquired by the ant. Fungal types identified by AFLP fingerprints correspond to vegetative-compatibility groups established previously, suggesting that vegetative compatibility can be used as a crude indicator of genetic differences between fungi of C. minutus.

Animals↗

DNA fingerprinting data and the problem of non-independence among pairwise comparisons.

Multilocus DNA fingerprinting is commonly used to assess genetic similarity within and between geographically disjunct populations. Typically, the proportion of DNA fingerprinting bands shared between two individuals (SXY) is calculated for all possible pairwise comparisons and the resulting data analysed parametrically to test differences in mean band-sharing among groups. The degree to which covariation among interdependent SXY values (S(ab)-Sbc) biases the analyses is often unknown. Here, we assess the extent of covariation in four DNA fingerprinting studies and evaluate the effectiveness of two corrective procedures, a permutation test and a subsampling routine using only independent pairwise comparisons drawn without replacement from the overall data. Covariation among interdependent SXY values was significantly greater than zero in every data set examined, including those from a bee, a rodent, and two passerine birds. Permutation tests did not correct for interdependence and yielded significance values nearly identical to those derived from uncorrected parametric procedures. In contrast, the subsampling procedure yielded corrected estimates of the standard error that were two to four times larger than those derived parametrically. As a result, comparisons that were significant using parametric tests were either non-significant or only marginally significant with the subsampling routine. We conclude that interdependence among SXY values poses a substantial obstacle to hypothesis testing that must be addressed in future studies.

Analysis of Variance↗