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Biomedical subjects

Marie Gueudin

Publications and source records attributed to Marie Gueudin.

13 recordsLinked to original sources

Expertise of laboratories in viral load quantification, genotyping, and precore mutant determination for hepatitis B virus in a multicenter study.

A national evaluation study was performed in 14 specialized laboratories with the objective of assessing their capacities to provide (i) hepatitis B virus (HBV) viral loads (VL), (ii) HBV genotypes, and(iii) identification of precore/core mutants. The panel consisted of 12 HBV DNA-positive samples with VLs from 2.8 to 9.1 log(10) copies/ml, different HBV genotypes (A to F), and 3 mutant and 9 wild-type samples at nucleotide 1896. The coefficients of variation of the mean VLs ranged from 2.4% to 10.4% with the Cobas HBV Monitor assay, from 1.8% to 5.5% with the Cobas TaqMan 48, from 1.5 to 26.2% with RealArt HBV PCR, and from 0 to 7% with branched DNA (bDNA). The Cobas Monitor assay underestimated the VLs of genotype F samples, with differences ranging from 1.4 to 2.4 log(10) copies/ml. The accuracies of genotype determinations ranged from 33% to 100%, and those of precore mutant determinations ranged from 25 to 100%. This study showed some drawbacks of two widely used assays: (i) Cobas Monitor has a narrow dynamic range and underestimates genotype F sample VLs and (ii) bDNA shows poor sensitivity and may fail to identify patients with low VLs. With higher performance in terms of analytical sensitivity combined with a larger dynamic range and an ability to quantify the main genotypes equally, real-time PCR methods appear more appropriate for accurate monitoring of HBV DNA quantification. Furthermore, the clinical implications of HBV genotyping and the determination of precore/core mutants need to be clearly stated to justify the standardization of these methods.

France↗

Identification of human herpesvirus 6 variants A and B by primer-specific real-time PCR may help to revisit their respective role in pathology.

BACKGROUND: Human herpesvirus 6 (HHV-6) isolates are classified into two variants, termed HHV-6A and HHV-6B, on the basis of distinct genetic, antigenic and biological characteristics, but the specific pathogenicity of each variant remains poorly understood. OBJECTIVES: To design a rapid, sensitive and specific real-time variant-specific PCR (VS-PCR) method to differentiate both variants in biological specimens. STUDY DESIGN: The VS-PCR was adapted from a real-time PCR assay, based on TaqMan technology, previously developed for the genome quantitation of both HHV-6 variants [Gautheret-Dejean A, Manichanh C, Thien-Ah-Koon F, Fillet AM, Mangeney N, Vidaud M, et al. Development of a real-time polymerase chain reaction assay for the diagnosis of human herpesvirus-6 infection and application to bone marrow transplant patients. J Virol Meth 2002;100:27-35], a consensual reverse primer (Taq2) being changed into two variant-specific primers named H6A and H6B. This method was applied to a large set of biological specimens obtained in different pathological contexts. RESULTS: The sensitivity threshold was about 10 copies/well for HHV-6A-specific PCR (PCR-A) and 1 copy/well for HHV-6B-specific PCR (PCR-B). Both assays showed a linear dynamic range from 10 to 100,000 copies of HHV-6 DNA. Regarding the specificity and the capacity of discrimination of each assay, one variant could be detected and identified in the presence of more than 1000 times higher concentrations of the other variant in virus mixtures. The comparison of the results obtained with this VS-PCR with those previously obtained with a classic PCR method allowed us to validate our new technique on a wide panel of biological samples, including numerous patients with severe HHV-6-related symptoms. The high prevalence of HHV-6B was confirmed in healthy individuals and immunocompromised patients. HHV-6A was identified in distinct samples from several patients exhibiting neurological disorders. CONCLUSIONS: We developed a new VS-PCR assay, able to differentiate HHV-6A and HHV-6B in biological samples, even in the case of mixed infections. Our study confirms the wide prevalence of HHV-6B and highlights the potential greater neuropathogenic role of HHV-6A in immunocompromised patients and young infants.

DNA Primers↗

HIV-1 resistance genotyping on dried serum spots.

OBJECTIVE: To assess the feasibility of HIV-1 group M resistance genotyping on dried serum spots, by testing samples from previously untreated patients, patients on treatment, and patients having stopped treatment, representing a wide genetic diversity panel. METHODS: Serum samples from 62 HIV-1-infected Caucasian and African patients, with viral load values from 715 copies/ml to more than 750,000 copies/ml, were deposited on filter paper. After elution and RNA extraction, nested RT-PCR was used to amplify the protease and RT regions of the pol gene. Resistance sequencing was performed on all the protease and RT amplicons. The sequences obtained for resistance genotyping were used for subtyping by phylogenetic analysis. RESULTS: Amplification was successful in the protease region in 53/62 cases (85.5%) and in the RT region in 51/62 cases (82.3%). All samples with viral loads of at least 5 Log (17 of 62) were successfully amplified in both the RT and protease regions. Of the 29 samples with viral loads between 4 Log and 5 Log, 28 (97%) were amplified in the RT region and 25 (86%) in the protease region. The detected mutations were in keeping with the treatment status. Marked natural polymorphism was observed in the protease region, but no major consequences were deduced in terms of resistance. The results showed a broad diversity of the panel, including subtype B (n = 36) and non B or recombinant forms (n = 20). CONCLUSION: Our results show the feasibility of this dried serum spot method for monitoring resistance to antiretroviral drugs and the molecular epidemiology of HIV diversity. The simplicity of sample preparation, storage and transport potentially makes this an importance tool for individual and epidemiological monitoring throughout the world.

Antiretroviral Therapy, Highly Active↗

Quantification of proviral DNA load of human immunodeficiency virus type 2 subtypes A and B using real-time PCR.

HIV-2 infection is confined mostly to West Africa. Seven HIV-2 subtypes have so far been described; only HIV-2 subtypes A and B are prevalent, the others being considered self-limiting infections at the epidemiological level. The main limitation for the HIV-2 DNA proviral quantification is the lack of HIV-2 DNA standard. We designed and tested a new HIV-2 primer couple that amplifies both the HIV-2 ROD strain and HIV-1 LAV/BRU strain. These HIV-2 primers were used to quantified an HIV-2 standard comparatively to a standard widely used in proviral DNA HIV-1 quantification, i.e., the 8E5 cell line transfected by a single defective integrated provirus of HIV-1 BRU/LAV by cell. The primers and probe used to quantify HIV-2 DNA are located in a long terminal repeat (LTR) region with low variability. These primers amplify both HIV-2 subtypes A and B. The relevance of the follow-up of the infected patients by the quantification of the proviral DNA HIV-2 is currently studied.

Cell Line↗

Plasma RNA viral load in HIV-1 group O infection by real-time PCR.

HIV-1 group O strains are highly divergent, and are found mainly in central Africa. The clinical course of group O infection is identical to that of HIV-1 group M infection, with rapid onset of immunodeficiency. The important divergence of the HIV-1 group O strains lead to high limitations of the commercial tests. We describe here a method based on real-time polymerase chain reaction (PCR) to quantify plasma HIV-1 group O RNA. Primers amplify both HIV-1 group O and HIV-1 group M strains. Conversely, the probe is HIV-1 group O-specific. The standard used to quantify the clinical samples is an RNA solution resulting from the transcription of a plasmid including the amplified fragment of PCR. Our technique is capable of amplifying a wide range of HIV-1 group O strains belonging to the three current clades. This technique can be used to monitor HIV-1 group O viral load, which has previously been difficult.

Base Sequence↗

Phenotypic susceptibility to nonnucleoside inhibitors of virion-associated reverse transcriptase from different HIV types and groups.

OBJECTIVES: To evaluate a phenotype assay based on plasma reverse transcriptase (RT) to assess HIV susceptibility to nonnucleoside RT inhibitors (NNRTIs). To compare RT-based phenotype with recombinant virus assay (RVA) phenotype- and genotype-based analysis. To assess group O and HIV-2 susceptibility to NNRTIs in correlation with genotype polymorphisms. METHODS: RT activity was quantified and its susceptibility to efavirenz, nevirapine, and delavirdine measured as drug concentration resulting in 50% inhibition. RT phenotype was compared with genotype analysis. Eighteen plasma samples from 14 group M- and culture supernatants from 4 group M-, 9 group O-, and 7 HIV-2-infected patients were investigated. RT-based and RVA-based phenotypes were compared for identical plasma from 9 group M-infected patients. RESULTS: RT-based and RVA-based phenotypes were in complete agreement. RT-based phenotype- and genotype-predicted susceptibility were concordant for all but 1 group M samples. One plasma showed susceptibility to 3 NNRTIs by phenotypes, despite the presence of 101E and 106I/V residues. The HIV-2 RTs were totally resistant to the NNRTIs tested. Among HIV-1 group O, 6 were totally resistant to NNRTIs independently of the presence of the 181C mutation and 3 were susceptible to some NNRTIs. CONCLUSION: Plasma RT-based phenotype could be useful as a simple alternative for monitoring resistance to NNRTIs. This assay is suitable for highly divergent strains. It would be particularly useful for large epidemiologic survey of the natural HIV polymorphism and the potential impact in emergence of drug resistance, particularly to nevirapine, widely used to prevent mother-to-child transmission.

Anti-HIV Agents↗

Rapid discrimination between human immunodeficiency virus type 2 groups A and B by real-time PCR.

We studied the feasibility of genotyping human immunodeficiency virus (HIV) type 2 groups A and B by real-time PCR. Two group-specific PCRs were developed. Real-time genotyping of 22 samples of genotype A, 10 samples of genotype B, and the isolate of new group H were compared to genotyping by sequencing and phylogeny. The group-specific PCRs specifically identified 84.3% of group A or B samples; isolate H was not detected. This method allowed rapid and specific discrimination between HIV-2 groups A and B and could be a useful tool for molecular epidemiological studies.

Genotype↗

Plasma RNA quantification and HIV-1 divergent strains.

The diversity of HIV complicates viral load measurement for patient management and treatment monitoring. Numerous studies have shown that non-B group M variants can be underestimated and that group O strains are not detected by commercial tests. More recent versions of the kits used for previous studies have improved the quantification of non-B variants but are still unable to detect or correctly quantify group O strains. In this study, the authors evaluated the new Abbott LCx HIV RNA Quantitative viral load kit with a large collection of samples from Europe and central Africa. One hundred thirty-three group M samples, including 69 from patients infected with non-B variants, and 70 group O samples were tested. The LCx system was compared with the Cobas Amplicor HIV-1 Monitor v1.5 test and with a quantitative real-time polymerase chain reaction method based on LightCycler technology. The LCx and Cobas tests had similar quantification ranges for group M samples and a high degree of linearity (r2 = 0.9582). The LCx method quantified group O variants (31 of the 48 patients were quantifiable) and gave values within the range of those obtained with the LightCycler assay. The two assays were sensitive but showed only moderate linearity (r2 = 0.6195), probably because of higher diversity of group O strains and the use of primers and probes in different regions. In conclusion, the authors showed that the LCx kit allowed quantification of the large group M diversity and group O variants.

Cameroon↗

A new quantitative HIV load assay based on plasma virion reverse transcriptase activity for the different types, groups and subtypes.

BACKGROUND: Plasma viral load monitoring is an integral part of the standard of care for HIV-infected patients in industrialized countries. In developing countries, viral load assay is either unaffordable or hindered by on-site maintenance and/or technical problems. OBJECTIVES: To evaluate a new and simple quantitative assay for plasma HIV reverse transcriptase (RT) activity; and to compare RT activity-based and RNA-based quantification in plasma samples from patients infected by different subtypes of HIV-1 group-M, HIV-1 group-O and HIV-2. METHODS: The RT-based viral load assay involves separation of the virion-protected RT and quantification of its activity with an enzyme immunoassay. Plasma viraemia was quantified both by RT activity and by RNA copies in 322 samples from 236 HIV-1 group M-infected patients, including serial samples from 54 patients. Samples from 49 patients infected by HIV-1 group O or HIV-2 were also tested. RESULTS: RT activity and RNA copies were detected in 70% of plasma samples; respectively 25% and 1% of samples contained detectable RNA copies or RT activity alone. Measured RT activity corresponded to 48%, 96% and 100% of samples with 1.7-4.0 log(10), 4.1-4.8 log(10) and 4.9-6.7 log(10) RNA copies/ml, respectively. The values of the two assays correlated independently of the HIV subtype (P < 0.0001) and group/type (P < 0.03). Patient follow-up showed a similar pattern of viraemia with the two assays. CONCLUSION: Plasma RT activity assay is a simple, cheap and reliable alternative for HIV viral load determination. As such, it could be particularly valuable for diagnosis and treatment monitoring in developing countries.

HIV Infections↗

Plasma viral RNA assay in HIV-1 group O infection by real-time PCR.

HIV-1 group O infections remains essentially restricted to central Africa, and particularly Cameroon, although isolated cases have been reported in Western countries. Genomic differences explain why commercial tests used to quantify HIV-1 group M plasma load are unsuitable for HIV-1 group O. This lack of a quantitative tool hinders the clinical management of HIV-O-infected patients. We have therefore developed a real-time PCR assay, based on LightCycler technology, to quantify HIV-1 group O RNA in plasma. The primers were selected in the LTR 3' region. Forty-eight plasma samples containing strains belonging to the different HIV-1 type O clades (O:A, O:B and O:C) were tested. RNA was quantifiable in 40 of these samples. RNA was always detected in samples from untreated patients, except for one patient infected by a highly divergent strain. The kinetics of plasma viral load were also examined in seven patients for whom clinical and immunologic follow-up data were available. HIV-1 group O plasma load was high in the absence of treatment and correlated negatively with the CD4 cell count. Serial samples obtained during treatment allowed us to compare viral load changes with immunologic outcome. Despite the high initial cost of acquiring the required cycling device, the per-sample cost of this real-time quantitative PCR assay for HIV-1 group O is low, making it suitable for use in endemic zones.

CD4 Lymphocyte Count↗

Plasma RNA viral load in human immunodeficiency virus type 2 subtype A and subtype B infections.

Human immunodeficiency virus type 2 (HIV-2) is much less pathogenic than HIV-1, and HIV-2 infection is associated with plasma viral loads significantly lower than those found in HIV-1 infection. We have developed a real-time quantitative PCR method for measuring the HIV-2 RNA load that covers the range of genetic diversity of HIV-2 isolates and that detects extremely low viral loads. Samples from 49 patients were studied. Proviral DNA was first detected and quantified. The strains that were detected were then genotyped: 21 patients were infected with HIV-2 subtype A and 15 patients were infected with HIV-2 subtype B; 1 patient was infected with a highly divergent strain. Env PCR failed for the remaining 12 patients, so subtypes could not be determined. For viral RNA quantification, a stock of HIV-2 strain NIHZ, which was counted by electron microscopy, was used as the standard. Several primer sets targeting the highly conserved gag region were evaluated. Various primer combinations failed to amplify subtype B strains. With the final primer pair selected, which detected both subtype A and subtype B strains, the sensitivity of the assay was 100% at a viral load of 250 copies/ml and 66% at a viral load of 125 copies/ml. We found a correlation between the CD4(+)-cell count, the clinical stage, and the plasma HIV-2 RNA level. The median plasma HIV-2 RNA value for the 33 asymptomatic patients was 2.14 log(10), whereas it was 3.1 log(10) for the 16 patients with AIDS (P < 0.01). Proviral DNA was detectable in 18 symptom-free patients with high CD4(+)-cell counts, in whom viral RNA was undetectable.

Base Sequence↗