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Monitoring Influenza A Virus Entry Using Quantitative Fluorescence Microscopy.

Influenza A virus (IAV) is a major threat to global human health and is a topic of intense research. With the continuous problem of seasonal influenza and the threat of potential pandemics due to frequent emergence of new viral strains, development of new, broad-spectrum antivirals is an urgent priority. In antiviral development against influenza, the process of host cell entry of IAV is of particular interest as inhibiting the virus at the entry step should stop infection early on, blocking the downstream infection processes including viral replication and transcription. Therefore, a detailed understanding of the IAV entry processes is essential to illuminate virus-assisting host factors that can serve as potentially valuable targets for therapeutic interventions. To accelerate the identification of novel antivirals or host-directed targets that play essential role in IAV entry, quantitative assays that can be used to monitor the virus at sequential entry steps would be important for performing high-content genetic or inhibitor screens. In this chapter, we describe how IAV entry can be monitored at the sequential entry steps, spanning from the initial attachment of the virus particle to the cell surface to the transmission of the viral genome to the nucleus, by fluorescence microscopy. Further, we provide the methods to quantify the images acquired with high-content microscope for each of the major IAV entry steps. The fluorescence microscopy-based IAV entry assays and the image quantification methods described here can be used to boost our understanding of the virus-host cell interactions and can lead to the discovery of novel host-directed prophylactic or therapeutic interventions.

Humans↗

Fluorescence anisotropy assay for proteolysis of specifically labeled fusion proteins.

A cloning method and plasmid vectors that permit fluorescence-anisotropy-based measurement of proteolysis are reported. The recombinant protein substrates produced by this method contain a tetracysteine motif that can be site-specifically labeled with bis-arsenical fluorophore [Science 281 (1998) 269]. Six protein substrates with an N-terminal fusion of the tetracysteine motif and different protease recognition sites were created and tested for reaction with commercial proteases commonly used to process recombinant fusion proteins. In each case, proteolysis of a single susceptible peptide bond could be monitored in real time and with sufficient data quality to allow numerical analysis of proteolysis reaction kinetics. Measurement of proteolysis extent using fluorescence anisotropy is shown to be comparable to densitometry measurements made on denaturing polyacrylamide gels but with the added advantages implicit in a time-resolved measurement, quantification by a spectroscopic measurement, and facile extensibility to high-throughput formats. The assay was also demonstrated as a general tool for monitoring proteolysis of multidomain fusion proteins containing an internal protease site such as are being created in structural genomics studies worldwide.

Amino Acid Motifs↗

Establishment of a porcine parvovirus (PPV) DNA standard and evaluation of a new lightcycler nested-PCR assay for detection of PPV.

Porcine parvovirus (PPV) is a major causative agent in a syndrome of reproductive failure in swine. In validation (viral clearance) studies, PPV is a model of non-enveloped viruses and is widely used instead of human parvovirus B19, which causes a variety of illnesses including erythema infectiosum (fifth disease) in children and hydrops fetalis in pregnant women. To improve the sensitivity of current PCR-based assays for detection of PPV and to standardize the quantification of PPV, we have developed a lightcycler (LC) nested-PCR (nPCR) assay and constructed a PPV DNA standard evaluated in the LC nPCR assay. The PPV DNA standard, a plasmid termed pPPV, encodes a 3.3 kb PPV NADL-2 genome fragment. One genome copy equivalent (gce) of PPV equals 6.7 attograms of pPPV. The LC nPCR assay is a simple and specific method developed for detection of PPV strains but not any other viruses including members of Parvoviridae. The first 25-cycle PCR with outer primers chose by comparative analysis of 12 primers in 21 different combinations and a second 45-cycle PCR with inner primers amplify 286 and 251 bp fragments of PPV genome, respectively, for 40 min with a sensitivity of approximately 100 gce per assay (ml). By using the LC nPCR assay for analysis of PPV samples with known infectivity, we found that one 50% tissue culture infectious dose (TCID(50)) equals 1.93 +/- 0.24 log(10) gce.

Animals↗

Increased cell-to-cell variation in gene expression in ageing mouse heart.

The accumulation of somatic DNA damage has been implicated as a cause of ageing in metazoa. One possible mechanism by which increased DNA damage could lead to cellular degeneration and death is by stochastic deregulation of gene expression. Here we directly test for increased transcriptional noise in aged tissue by dissociating single cardiomyocytes from fresh heart samples of both young and old mice, followed by global mRNA amplification and quantification of mRNA levels in a panel of housekeeping and heart-specific genes. Although gene expression levels already varied among cardiomyocytes from young heart, this heterogeneity was significantly elevated at old age. We had demonstrated previously an increased load of genome rearrangements and other mutations in the heart of aged mice. To confirm that increased stochasticity of gene expression could be a result of increased genome damage, we treated mouse embryonic fibroblasts in culture with hydrogen peroxide. Such treatment resulted in a significant increase in cell-to-cell variation in gene expression, which was found to parallel the induction and persistence of genome rearrangement mutations at a lacZ reporter locus. These results underscore the stochastic nature of the ageing process, and could provide a mechanism for age-related cellular degeneration and death in tissues of multicellular organisms.

Aging↗

Variability and genetic structure of plant virus populations.

Populations of plant viruses, like all other living beings, are genetically heterogeneous, a property long recognized in plant virology. Only recently have the processes resulting in genetic variation and diversity in virus populations and genetic structure been analyzed quantitatively. The subject of this review is the analysis of genetic variation, its quantification in plant virus populations, and what factors and processes determine the genetic structure of these populations and its temporal change. The high potential for genetic variation in plant viruses, through either mutation or genetic exchange by recombination or reassortment of genomic segments, need not necessarily result in high diversity of virus populations. Selection by factors such as the interaction of the virus with host plants and vectors and random genetic drift may in fact reduce genetic diversity in populations. There is evidence that negative selection results in virus-encoded proteins being not more variable than those of their hosts and vectors. Evidence suggests that small population diversity, and genetic stability, is the rule. Populations of plant viruses often consist of a few genetic variants and many infrequent variants. Their distribution may provide evidence of a population that is undifferentiated, differentiated by factors such as location, host plant, or time, or that fluctuates randomly in composition, depending on the virus.

Gene Frequency↗

Evaluation of minor groove binding probe and Taqman probe PCR assays: Influence of mismatches and template complexity on quantification.

Real-time PCR assays using 3'-minor groove binder (MGB) or Taqman probes are widely used for clinical virological testing and mutation/polymorphism detection. We compared a 3'-MGB probe to a conventional Taqman probe for linearity, sensitivity, specificity and dynamic range. The performance of the two assays was compared using plasmids containing different mismatches or using human genomic DNA as a template. Comparable linearity and sensitivity were observed for the MGB and the Taqman probe assays. Using standard conditions, none of the assays were sequence-specific. Up to five mismatches generated a detectable signal in the Taqman probe assay. The performance of the Taqman as well as the MGB probe assay was influenced by the complexity of the template, the latter, however, to a lesser degree. Overall, these results highlight the advantages of the MGB probe over the Taqman probe regarding mismatch discrimination, but suggest that optimization of reaction conditions and verification of the specificity are necessary also for MGB probes.

Base Pair Mismatch↗

Genome-wide identification and testing of superior reference genes for transcript normalization in Arabidopsis.

Gene transcripts with invariant abundance during development and in the face of environmental stimuli are essential reference points for accurate gene expression analyses, such as RNA gel-blot analysis or quantitative reverse transcription-polymerase chain reaction (PCR). An exceptionally large set of data from Affymetrix ATH1 whole-genome GeneChip studies provided the means to identify a new generation of reference genes with very stable expression levels in the model plant species Arabidopsis (Arabidopsis thaliana). Hundreds of Arabidopsis genes were found that outperform traditional reference genes in terms of expression stability throughout development and under a range of environmental conditions. Most of these were expressed at much lower levels than traditional reference genes, making them very suitable for normalization of gene expression over a wide range of transcript levels. Specific and efficient primers were developed for 22 genes and tested on a diverse set of 20 cDNA samples. Quantitative reverse transcription-PCR confirmed superior expression stability and lower absolute expression levels for many of these genes, including genes encoding a protein phosphatase 2A subunit, a coatomer subunit, and an ubiquitin-conjugating enzyme. The developed PCR primers or hybridization probes for the novel reference genes will enable better normalization and quantification of transcript levels in Arabidopsis in the future.

Arabidopsis↗

Validation of single real-time TaqMan PCR assay for the detection and quantitation of four major genotypes of hepatitis E virus in clinical specimens.

Since the characterization of the genome of the hepatitis E virus (HEV) in 1990, a large genetic diversity has been described. A single real-time reverse transcription (RT)-PCR assay with TaqMan technology has been validated which uses only one set of primers and probe within the ORF2 HEV region (nt 5207-5292) for the detection and quantification of the four major genotypes of HEV. This assay proved to be as efficient as the conventional RT-PCR methodology for the detection of HEV in clinical samples testing positive previously. The real-time RT-PCR and conventional RT-PCR were performed comparatively on 60 pairs of sera and stools collected during a recent outbreak of hepatitis E in Darfur. The real-time RT-PCR assay was 10- to 100-fold sensitive than for conventional RT-PCR assays used in this study with a range quantitation from 1.8 x 10(1) to 7.2 x 10(3) RNA copies/microl in clinical samples (serum and stools).

Genome, Viral↗

Assessment of real-time PCR based methods for quantification of pollen-mediated gene flow from GM to conventional maize in a field study.

Maize is one of the main crops worldwide and an increasing number of genetically modified (GM) maize varieties are cultivated and commercialized in many countries in parallel to conventional crops. Given the labeling rules established e.g. in the European Union and the necessary coexistence between GM and non-GM crops, it is important to determine the extent of pollen dissemination from transgenic maize to other cultivars under field conditions. The most widely used methods for quantitative detection of GMO are based on real-time PCR, which implies the results are expressed in genome percentages (in contrast to seed or grain percentages). Our objective was to assess the accuracy of real-time PCR based assays to accurately quantify the contents of transgenic grains in non-GM fields in comparison with the real cross-fertilization rate as determined by phenotypical analysis. We performed this study in a region where both GM and conventional maize are normally cultivated and used the predominant transgenic maize Mon810 in combination with a conventional maize variety which displays the characteristic of white grains (therefore allowing cross-pollination quantification as percentage of yellow grains). Our results indicated an excellent correlation between real-time PCR results and number of cross-fertilized grains at Mon810 levels of 0.1-10%. In contrast, Mon810 percentage estimated by weight of grains produced less accurate results. Finally, we present and discuss the pattern of pollen-mediated gene flow from GM to conventional maize in an example case under field conditions.

Gene Flow↗

Quantification of HIV-1 proviral DNA by a standardized colorimetric PCR-based assay.

A simple method was developed for measuring human immunodeficiency virus type 1 (HIV-1) proviral DNA in mononuclear cells based on the commercially available Amplicor(TM) HIV-1 polymerase chain reaction (PCR) assay and the limiting dilution method. The lowest limit of detection was four proviral genomes per 10(6) cells. The accuracy was demonstrated by using serial dilutions of LAV-8E5 cells, and the interassay variability was 0.2 log. The technique was used to measure HIV-1 proviral DNA in the peripheral blood mononuclear cells (PBMC) of 18 antiretroviral drug-naive HIV-1-positive individuals before and 4 weeks after initiating double nucleoside therapy. The DNA proviral titers at baseline (median = 3.45, range = 2.11-4.7 log copies/10(6) cells) were 2.08 log greater than the infectivity titers, but there was a correlation between these two parameters (r = 0.63, P = 0.009). The mean decrease in the proviral DNA titer after 4 weeks of therapy was 0.31 log, whereas the decrease in the infectivity titer was 0.81 log and the decrease in the plasma RNA concentration was 1.29 log. The technique was also used to measure HIV-1 proviral DNA in the PBMC of 11 patients who had undetectable plasma HIV-1 RNA after being placed on combination antiretroviral therapy. Although proviral DNA remained detectable in all patients after 36 weeks of treatment, a gradual decline with an estimated half-life of 21-58 weeks was observed. The reliability of this simple and convenient colorimetric PCR-based technique indicates its suitability for assessing the effect of current antiretroviral regimens on the latent reservoirs of provirus.

Adult↗

Targeted correction of a defective selectable marker gene in human epithelial cells by small DNA fragments.

A novel gene targeting strategy, small fragment homologous replacement (SFHR), has been used to correct specific genomic lesions in human epithelial cells. The frequency of targeting was estimated to be 1-10%. However, given the genomic target, the cystic fibrosis transmembrane conductance regulator (CFTR) gene, it is difficult to accurately quantify targeting frequency. As an alternative to targeting CFTR, targeted correction of a mutant selectable marker or reporter gene would be more amenable to accurate and rapid quantification of gene targeting efficiency. The present study evaluates the conditions that modulate SFHR-mediated correction of a defective Zeocin antibiotic resistance (Zeo(r)) gene that has been inactivated by a 4-bp insertion. The conditions include delivery systems, plasmid-to-fragment ratio, fragment length, and fragment strandedness (single- or double-stranded DNA). Targeting fragments comprise the wild-type Zeo(r) gene sequence and were either 410 (Zeo1) or 458 bp (Zeo3). Expression vectors containing the corrected Zeo(r) gene were isolated as episomal plasmids or were allowed to stably integrate into cultured human airway epithelial cells. Correction of the Zeo(r) gene was phenotypically defined as restoration of resistance to Zeocin in either bacteria or epithelial cell clones. Extrachromosomal gene correction was assayed using polymerase chain reaction amplification, restriction enzyme digestion, DNA sequencing, and Southern blot hybridization analysis of DNA from isolated prokaryotic and eukaryotic clones. Neither random sequence alteration in the target episomal gene nor random integration of the small fragments was detected. Targeted correction efficiencies of up to 4% were attained. These studies provide insight into parameters that can be modulated for the optimization of SFHR-mediated targeting.

Base Sequence↗

CFTR illegitimate transcription in lymphoid cells: quantification and applications to the investigation of pathological transcripts.

Since the isolation of the cystic fibrosis transmembrane conductance regulator gene (CFTR) and the characterization of the main mutation (delta F508) in 1989, a large number of rare mutations has been found. Full screening of the CFTR gene is difficult because it is split into 27 exons covering 250 kb of genomic DNA. This gene is essentially expressed in the lung and intestinal tract, neither of which are easily accessible for routine investigations. The recent description of a faint transcription of highly tissue-specific genes in any cell, a phenomenon known as illegitimate transcription, would facilitate the research of mutations and the characterization of truncated m-RNA caused by splicing mutations. Using the polymerase chain reaction on cDNA (cDNA-PCR), we detected transcripts of the CFTR gene in lymphocytes and lymphoblast cells at a very low level (about 300 times less than in lung or intestine). This strategy allowed us to obtain a sufficient amount of cDNA-PCR product compatible with further molecular analyses. We have, therefore, analyzed a cDNA fragment overlapping exons 10 and 11 by polyacrylamide gel electrophoresis and direct sequencing, and detected the delta F508 mutation at this level. Our protocol can be generalized to the investigation of the total 4.5-kb CFTR coding sequence.

Animals↗

Direct quantification of AD-36 adenovirus DNA by capillary electrophoresis with laser-induced fluorescence.

An adenovirus, AD-36, has been linked to human adiposity and a sensitive and reliable quantitative method is required to assess AD-36 viral loads. This report describes direct detection of AD-36 viral DNA, which is the first method to quantitate DNA without amplification. Total genomic DNA is hybridized with an AD-36 specific fluorescently labeled probe and analyzed by capillary electrophoresis with laser-induced fluorescence. The minimum detectable quantity is 10.3 ng/ml, corresponding to 282 copies of AD-36 with a precision of 1-6%. These results indicate that direct detection with capillary electrophoresis with laser-induced fluorescence (CE-LIF) is a reliable and sensitive method for quantifying AD-36 viral DNA.

Adenoviridae↗

Qualitative and quantitative evaluation of the genomic DNA extracted from GMO and non-GMO foodstuffs with four different extraction methods.

The presence of DNA in foodstuffs derived from or containing genetically modified organisms (GMO) is the basic requirement for labeling of GMO foods in Council Directive 2001/18/CE (Off. J. Eur. Communities 2001, L1 06/2). In this work, four different methods for DNA extraction were evaluated and compared. To rank the different methods, the quality and quantity of DNA extracted from standards, containing known percentages of GMO material and from different food products, were considered. The food products analyzed derived from both soybean and maize and were chosen on the basis of the mechanical, technological, and chemical treatment they had been subjected to during processing. Degree of DNA degradation at various stages of food production was evaluated through the amplification of different DNA fragments belonging to the endogenous genes of both maize and soybean. Genomic DNA was extracted from Roundup Ready soybean and maize MON810 standard flours, according to four different methods, and quantified by real-time Polymerase Chain Reaction (PCR), with the aim of determining the influence of the extraction methods on the DNA quantification through real-time PCR.

DNA↗

Standardized detection of Simian virus 40 by real-time quantitative polymerase chain reaction in pediatric malignancies.

BACKGROUND AND OBJECTIVES: Recent studies have detected Simian virus 40 (SV40) DNA in specific human tumors albeit with significant discrepancies in frequency. Possible inefficiency of DNA isolation and different detection methods do not allow comparable and precise quantification of SV40 in human samples. A standardized and common detection method is, therefore, essential for further routine SV40 analysis. DESIGN AND METHODS: We established a real time quantitative (RQ-) polymerase chain reaction (PCR) based TaqMan assay on the LightCycler system for reproducible detection and quantification of SV40 DNA. We used 500 ng of the COS-1 cell line, containing one single integrated copy of SV40 DNA, as the quantification standard. Amplification of b-globin served as the quality control for DNA integrity. For the extraction of the episomal form of SV40 we compared a column and a precipitation-based DNA extraction method. DNA samples from 149 healthy controls, from 26 fresh frozen childhood cases of acute lymphoblastic leukemia (ALL) (B-, BCP- and T-ALL) and from 12 paraffin-embedded osteosarcomas were investigated. RESULTS: The RQ-PCR assay had a linear amplification rate from 10 to 100,000 copies of SV40 in 500 ng genomic DNA. Very low copy numbers of SV40 DNA were detectable in 2/149 (1,3%) blood samples from healthy German controls. Various amounts of SV40 were detectable in 20/26 (77%) childhood ALL samples of German origin and, in part, high amounts were visible in 11/12 (92%) paraffin embedded Hungarian osteosarcomas. The column-based DNA isolation method allowed the detection of both, the integrated and the episomal forms of SV40. INTERPRETATION AND CONCLUSIONS: Our assay provides a standardized and reproducible quantification of SV40 DNA in a wide spectrum of specimens. Exact quantification strongly depends on the source, as well as on the quality, of the DNA used. Quantification of paraffin-embedded DNA generally leads to lower sensitivity of SV40 DNA detection. We strongly recommend this RQ-PCR assay for standardized detection of SV40.

Animals↗

Visualization and quantification of rDNA instabilities in mammalian cells and mouse models.

Ribosomal DNA (rDNA) encodes the 18S, 5.8S, and 28S rRNA, accounting for ∼70% of cellular transcription. Despite its essential role and links to cancer and aging, quantifying rDNA instability in mammals remains challenging due to its repetitive organization and inherent heterogeneity. Here, we developed a murine rDNA FISH probe and genomic tools tailored for laboratory mouse strains. The results confirmed rDNA cluster locations, revealed substantial inter- and intra-strain as well as intercellular heterogeneity in rDNA organization within inbred mice and unstressed cells, and identified sources of spontaneous and replication-associated DNA double-strand breaks in the rDNA transcription termination region. Using mouse embryonic stem cells, we showed that BRCA1-mediated homologous recombination promotes rDNA instability, the non-homologous end joining factor XRCC1, but not Ku, suppresses intra-cluster deletions, and ATM kinase preserves rDNA cluster stability. Together, these findings establish a platform and tools for studying rDNA instability in animal models relevant to aging and cancer research.

Animals↗

Quantitative detection of Escherichia coli from urine of patients with bacteriuria by real-time PCR.

INTRODUCTION: Compared with the classical urine culture method, PCR is more rapid, and can detect smaller numbers of bacteria, however it is inferior for quantification. Because of the lack of quantification in routine PCR, the meaning of a positive PCR test result has not been validated for all infections. We report on the development of a novel quantitative detection system for the urinary tract infection (UTI) Escherichia coli using real-time PCR. PATIENTS: We enrolled 200 patients with suspected bacteriuria. METHODS: The gene encoding the universal stress protein (uspA) was found to be highly specific for E. coli. We quantified the copy numbers of E. coli in the urine of patients with UTI by using a real-time PCR assay (the TaqMan system) targeting uspA genes in genomic DNAs isolated from urine samples (n=200). To evaluate the feasibility of this method, the results were compared with those of a standard urine culture. RESULTS: The incidence of positive urine cultures was 75% (150 of 200), and various doses of E. coli were detected in 84 of 150 specimens. The real-time PCR method also detected 84 cases of urinary infections of E. coli in the same specimens. Furthermore, the result of the quantification of E. coli using real-time PCR strongly correlated (r2=0.925) with the result of urine culture. CONCLUSION: Our results suggest that using quantitative-PCR means a faster and simpler diagnosis of E. coli urinary infection can be made compared with the traditional urine culture method.

Bacteriuria↗

Increased levels of CK19 mRNA in oral squamous cell carcinoma tissue detected by relative quantification with real-time polymerase chain reaction.

Oral squamous cell carcinoma (OSCC) is the most common malignant tumour in the oral and maxillofacial region and has a poor prognosis. Cytokeratin 19 (CK19) is a component of cytoskeleton protein. Previous studies have reported abnormal expression of CK19 protein in OSCC tissue. This study is to investigate the quantitative level of CK19 gene transcript in OSCC tissue as well as its clinical significance. Thirty-one OSCC patients (26 males and 5 females) took part in the present study, aged 34-78 years (mean 58.2 years). The level of CK19 mRNA was detected using fluorescent quantitative real-time reverse transcriptase polymerase chain reaction (RT-PCR) in cancerous and paracancerous tissues. The relative quantification in cancerous tissue compared with paracancerous tissue was calculated using the 2(-DeltaDeltaCt) equation. The level of CK19 mRNA in cancerous tissue from OSCC patients was 2.21-fold higher than that in paracancerous tissue (P=0.020), and the amplicon was specific without genomic DNA contamination. The level of CK19 mRNA correlated significantly with the pathological differentiation grade of OSCC tissue (P=0.025), with poorer differentiation indicating a higher level of CK19 mRNA. These results suggest that fluorescent quantitative real-time RT-PCR is accurate and reliable for the detection of CK19 gene transcript levels in OSCC tissue. The level of CK19 mRNA was increased in OSCC tissue, and this was significantly correlated with the pathological differentiation grade.

Adult↗