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J R Crowther

Publications and source records attributed to J R Crowther.

At least 19 recordsLinked to original sources

Effect of gamma-irradiation on serum samples on the diagnostic performance of ELISA methods for the detection of trypanosomal antibodies.

The study investigated the effect of gamma-irradiation on bovine serum samples on the ability of enzyme-linked immunosorbent assay (ELISA) methods to detect trypanosomal antibodies. The serum samples were analysed using two standardised indirect ELISA systems. Higher measurement values were observed for most gamma-irradiated antibody positive and negative test samples. Using cut-off points, determined from the analysis of a non-irradiated trypanosomal antibody-negative population, the gamma-irradiated sera data showed that there was an increased risk of misclassifying samples as false positive or cross-reactive due to increased analytical sensitivity and decreased analytical specificity. The intraplate precision and agreement between tested and expected values of measurements were not altered throughout. The impact on the assays' diagnostic performance was estimated by analysing diagnostic sensitivity, diagnostic specificity and related parameters. The data demonstrated that although there was a bias of higher measurement values after gamma-irradiation, this could be compensated after readjustment of the cut-off points to obtain best separation of antibody-positive and -negative samples. Thus, for each assay, no significant difference of the diagnostic proficiency was found before and after gamma-irradiation. The practical implications are discussed of a serum sterilisation procedure using (60)Co gamma-rays for routine sample testing, assay validation and trypanosomosis monitoring and tsetse-fly control and eradication programmes.

Animals↗

Charting methods to monitor the operational performance of ELISA method for the detection of antibodies against trypanosomes.

Four indirect enzyme-linked immunosorbent assays (ELISAs) for the detection of antibody against trypanosomes using antigen-precoated plates (Trypanosoma congolense and T. vivax) were used in 15 veterinary diagnostic laboratories in Africa and Europe. The study provided data allowing an evaluation of charting methods with respect to the operational performance of each ELISA. Data from standardised internal quality control (IQC) samples were plotted on charts and used as the assay performance indicators with reference to expected upper and lower control limits. Based on unprocessed (optical density) and normalised absorbance values (calculated as a percentage positivity of a control), dispersion of values from the expected data range was estimated plotting the location and deviation of the values. In addition, assay precision was estimated plotting the distribution of coefficients of variation<10% of the IQCs. Binding ratios of controls were calculated to estimate the assay proficiency with respect to the accuracy of assessing that the IQC samples tested positive or negative in the test proper. The graphical analysis of dispersion of absorbance values in combination with assay precision and proficiency criteria was considered fully satisfactory to evaluate the operational performance of the ELISAs and provided useful decision criteria for plate acceptance and rejection. The establishment of standardised and transparent IQC data charting methods for the indirect ELISAs provided an increased measure of confidence to national laboratories with respect to their reports on disease occurrence. Moreover, the relative assay performances between all laboratories were examined using summary data charts with reference to the performance criteria described. The IQC data were also examined using modified Youden plot analysis demonstrating that indirect ELISA methods can be successfully applied at diagnostic laboratories in the tropics for monitoring trypanosomosis control programmes.

Africa↗

Development and field validation of an avidin-biotin enzyme-linked immunosorbent assay kit for bovine brucellosis.

The avidin-biotin enzyme-linked immunosorbent assay (A-B ELISA), for use in surveillance for bovine brucellosis in India was developed and calibrated using the indirect brucellosis ELISA kit of the International Atomic Energy Agency (IAEA) as a reference. The reagents used in the A-B ELISA were as follows: the smooth lipopolysaccharide of Brucella abortus strain 99 (antigen); biotinylated anti-bovine immunoglobulin G (detection antibody); avidin-horseradish peroxidase (conjugate); and O-phenylenediamine dihydrochloride (chromogen). The test results were interpreted using the IAEA software EDI version 2.1.1, which was modified for use in the A-B ELISA. The cut-off percentage positivity value was established using 500 brucellosis-positive and 500 brucellosis-negative serum samples, confirmed with reference to the sample data using the indirect ELISA kit. The overall specificity of A-B ELISA was 98.8% and overall sensitivity was 98.2%. Field validation of the A-B ELISA kit was undertaken in six laboratories in India. Screening of 7,040 cattle and 678 buffalo serum samples from 12 states revealed serological evidence of brucellosis in 8.7% of cattle and 10.2% of buffalo. This kit proved to be robust and performed with a similar sensitivity and specificity to the indirect ELISA. The kit can be supplied at a lower cost than current commercial ELISA kits.

Animals↗

Evaluation of antigen-coating procedures of enzyme-linked immunosorbent assay method for detection of trypanosomal antibodies.

Research was undertaken to improve the antigen-coating step of indirect enzyme-linked immunosorbent assay (ELISA) method through the use of polystyrene 96-well plates precoated with antigenically stabile crude trypanosomal antigens. The plates were precoated with antigens, air dried and sealed before being packed in plastic bags with silica gel desiccant packets. Such plates stored at +4 and +37 degrees C provided an assay performance, which was superior to that of plates freshly coated with antigens from a frozen stock. Antigen-precoated plates consistently proved stable after storage up to +50 degrees C for at least 1 year. The accuracy of the assay was not affected, i.e. trypanosomal antibody-positive sera were clearly discriminated from trypanosomal antibody-negative negative sera. In contrast, lyophilized trypanosomal antigens lacked stability on storage at +37 degrees C for longer than 1 month. It was concluded that the routine use of antigen precoated polystyrene plates for the enzyme immunoassay technique will contribute to improved assay robustness at an acceptable diagnostic proficiency. The modified coating procedure will also provide an improved quality assurance and standardization procedure for the assay, which is required to allow the reliable detection of trypanosomal antibodies and comparison of data from different laboratories.

Animals↗

Detection of Trypanosoma congolense antibodies with indirect ELISAs using antigen-precoated microtitre plates.

The study reports the performance of four indirect enzyme-linked immunosorbent assays (ELISAs) for antibody (AB) detection using microtitre plates which were precoated with native or heat/detergent denatured antigens (AGs) from Trypanosoma congolense (T.c.) and T. vivax (T.v.), and stored for between 1 to 206 days at +37 degrees C. Bovine serum samples were obtained by sequential bleeding of 3-months old T.c.-infected bulls and their uninfected cohorts, as well as by a single bleeding of uninfected adult cattle. The first day of AB detection, and observations on samples after this (defined as estimated ELISA sensitivity), depended on the cut-off value in the specific ELISAs. Cut-off values from pre- and early post-infection samples of individual animals demonstrated a seroconversion in all ELISAs on average after 10-15 days post-infection (dpi). The AB detection was delayed in the T.c. native and denatured AG-based ELISAs using cut-off points from uninfected cohort cattle (16.5 dpi, 19.3 dpi) and the adult cattle population (22.1 dpi, 25.0 dpi). The T.v. AG-based ELISAs however lacked crossreactiviy to T.c. ABs. The estimated sensitivity of each T.c. AG-based ELISA was above 96% throughout, but significantly lower for the T.c. native AG-based ELISA (91.1%) when the adult cattle derived cut-off point was used (p<0.01). The sensitivity of the phase contrast buffy coat technique was similar to the T.c. AG-based ELISAs, but significantly lower when the T.c. denatured AG-based ELISA was used at the adult cattle derived cut-off point (p<0.05). The implications of the results and future research aspects on ELISAs to detect trypanosomal ABs and AGs are discussed.

Animals↗

Identification of unacceptable background caused by non-specific protein adsorption to the plastic surface of 96-well immunoassay plates using a standardized enzyme-linked immunosorbent assay procedure.

A standardized enzyme-linked immunosorbent assay (ELISA) was used to examine the capacity of immunoassay plates to prevent non-specific protein binding under blocking conditions. Data from 16 types of 96-well microtitre plate from seven commercial sources, are described. Plates were evaluated with respect to their capacity to adsorb a conjugated antibody in diluent buffer containing non-ionic detergent Tween 20 (0.05%) and skimmed milk proteins (5%). Plates with an absorbance value of > or = 0.05, in not more than one well, were defined as within acceptable limits. Major problems were seen in high binding gamma-irradiated polystyrene plates, from all sources, where only < or = 30% of plates were acceptable. These showed high, randomly distributed, non-specific binding, with some wells showing absorbance values > 2.0. Similar results were obtained when high binding plates were repeatedly gamma-irradiated, and after gamma-irradiation of low binding polystyrene plates. For high binding, non- gamma-irradiated polystyrene plates, approximately 70% of plates were acceptable. Better results (86-100% acceptability) were observed for all low binding polystyrene plates. Only one source in three provided acceptable, low binding, polyvinylchloride plates. This paper confirms a widely held view that non-specific binding to certain plates could be a serious factor in both the development and application of ELISAs. Therefore, the test protocol described is proposed as an additional quality control method for certifying ELISA plates by commercial companies.

Adsorption↗

Pitfalls in the application of enzyme-linked immunoassays for the detection of circulating trypanosomal antigens in serum samples.

The experimental infection of two goats with Trypanosoma vivax trypanosomes provided samples for analysis using parasitology techniques and antigen-detection enzyme-linked immunosorbent assays (ELISAs) for T. vivax, T. congolense and T. brucei. Clinical, parasitological and serological findings were monitored during the course of infection to identify problems in the application of these ELISAs. The data clearly showed that the ELISAs examined were entirely unsuitable for the reliable detection of trypanosomal antigen. Consequently, research strategies pertinent to the development of a new generation of both antigen and antibody ELISAs are outlined considering the problems encountered. These were (1) the reactivity of the reagents; (2) the specificity of the reagents; (3) the nature of the test sample, e.g. the compartmentalisation of trypanosomes between plasma, serum and red blood cells; (4) possible interference with the ELISA through immune complexing; and (5) the biology of the host/trypanosome relationship to gain an understanding of fluctuations in trypanosomes in the systemic circulation.

Animals↗

Detection of viruses in livestock.

Diseases caused by viruses are a constant and major problem for livestock production world wide. The diseases range from highly contagious acute forms with high mortality, to chronic disabling diseases with an insidious effect on production. Such diseases cannot be regarded as static in nature due to the highly mutable nature of viruses and their direct selection at the host level and indirect selection in vectors, inducing changes in pathogenicity. Considerable efforts are needed to control these diseases including accurate and rapid diagnosis using both classical and emerging technologies. The methods used are based on both serological and molecular biological based methods. The ELISA and use of monoclonal antibodies are significant in the serological field whereas the Polymerase Chain reaction (PCR) and its direct and indirect uses for identifying (sequencing) and amplification of gene products, is vital to both research and applied fields. Both areas have to be used in a complementary way in the diagnosis of virus diseases.

Animals↗

Rinderpest: at war with the disease of war.

Rinderpest, the legendary cattle plague, has caused devastating losses for centuries and remains the biggest threat to sustainable livestock production in developing countries. Strenuous efforts are now being made to achieve global eradication of this viral disease, a goal made feasible through the use of attenuated live vaccines developed in the 1950s. Their use almost resulted in eradication in the 1970s but left several foci of disease from where the plague then re-emerged. Recent mass vaccination has resulted in the limitation of disease to parts of Africa, Pakistan, Afghanistan, the Middle East and India. Confirmation of the disease status of the countries has been aided by developments in serological techniques through exploitation of monoclonal antibodies (in Enzyme Linked Immunosorbent Assay-ELISA) and by advances in molecular biology such as in the use of polymerase reaction technologies (PCR). This has extended into the development of new recombinant vaccines. It is anticipated that eradication will be complete by the year 2010. This would be only the second example, after smallpox in man, of the eradication of a viral disease. The picture shows a scene of devastation during the Great Rinderpest Pandemic of 1889-1897 in South Africa. The disease swept through the African continent killing virtually all the cattle and wild ungulates.

Animals↗

Quantification of whole virus particles (146S) of foot-and-mouth disease virus in the presence of virus subunits (12S), using monoclonal antibodies in a sandwich ELISA.

This paper describes a method for the specific quantification of whole virions of foot-and-mouth disease (146S) in the presence of virus subunits (12S). The method involves the use of virus neutralising monoclonal antibodies directed against a linear epitope of the VP1 loop region of a type O virus. The monoclonal antibodies were used as both capture and detecting reagents (labelled with horse radish peroxidase) in a sandwich ELISA. Such monoclonal antibodies also have the advantage that they do not detect viruses containing proteolytically cleaved VP1, thus the assay system is ideal for estimation of whole particles in vaccine manufacture where the immunogenicity of the vaccine depends on virus integrity (whole virions being present) and uncleaved capsid protein. VP1. Other combinations of different anti-type O FMD virus monoclonal antibodies used as capture and detecting reagents were also examined. The system could be adapted to on-line continuous testing of virus being produced during a manufacturing run allowing maximisation of virus yield and quality control.

Animals↗

Antigenic analysis of SAT 2 serotype foot-and-mouth disease virus isolates from Zimbabwe using monoclonal antibodies.

This paper compares strains of foot-and-mouth disease (FMD) serotype SAT (South African Territories) 2 viruses isolated from Zimbabwe and other African countries using monoclonal antibodies (MAb). A sandwich-ELISA was used to examine the relative binding of anti-SAT 2 MAb to the various viruses. The MAb-binding profiles of viruses isolated from field samples were compared using hierarchical cluster analysis. Viruses were obtained from game animals, mainly African buffalo (Syncerus caffer) which is the natural host and reservoir for SAT serotypes in Africa, and from cattle showing clinical signs of FMD, as well as from animals suspected of carrying the virus subclinically. Some isolates have been adapted for use as vaccine strains. The results showed that most of the Zimbabwe isolates collected between 1989 and 1992 were an antigenically closely-related group. Although differences were observed between Zimbabwe isolates collected between 1989 and 1992 and those collected in 1987, there was no correlation with the different MAb binding patterns within the 1987 group and the epidemiological information received from the field. Similar profiles were observed for many SAT 2 viruses, including viruses isolated over a 50-year period and from geographically distant areas. This indicates an inherent stability in antigenic profiles of SAT 2 viruses. The MAb panel was capable of assessing antigenic variation, since very different profiles were obtained for some isolates. The work also allowed comparison and characterization of anti-type SAT 2 MAb from different laboratories. The findings are discussed with reference to selection of vaccine strains.

Animals↗

Serological study of type A Indian foot-and-mouth disease virus isolates.

The antigenic relationship of sixty type A foot-and-mouth disease (FMD) viruses isolated between 1968 and 1993 has been determined with reference to a post-vaccinal bovine serum produced against type A IND 17/82. A micro-neutralization test and ELISA were used to compare isolates. Analysis of the results indicated that there was a positive correlation between the data from the two methods. The study indicated that type A IND 17/82 had a broad immunogenic spectrum and could be considered as a candidate vaccine strain for incorporation in FMD vaccines in India.

Animals↗

Characterization of monoclonal antibodies against a type SAT 2 foot-and-mouth disease virus.

This paper is the first to describe characterization of monoclonal antibodies (MAbs) against a South African Territories 2 (SAT 2) foot-and-mouth disease virus (isolate Rho 1/48). Twelve MAbs which neutralized homologous virus were characterized in indirect and sandwich ELISA using purified Rho 1/48 virus particles, subunits, trypsin-treated, and chemically denatured virus. All the MAbs inhibited haemagglutination by parental virus. Binding of the MAbs to 73 SAT 2 field isolates was measured in a sandwich ELISA and defined four distinct antigenic regions. Preliminary characterization of escape mutants selected with some of the MAbs using virus neutralization tests, ELISA, and amino acid sequencing is included. MAbs 2, 25, 40, 48 and 64, reacted with a linear epitope on the VP1 loop region. An amino acid change at position 149 (valine to glutamic acid) was detected in mutants selected by MAb 2 and 40 and this eliminated binding and neutralization by all the other MAb. This epitope was conformation-dependent and was conserved in all 73 isolates of SAT 2 examined. Escape mutants isolated with MAb 41 and 44, had changes at positions 156 (glycine to aspartic acid), or 158 (serine to leucine) respectively. These MAbs bound with Rho 1/48 only out of 73 field strain viruses studies and the reactions of MAbs from the other groups was unaltered. MAb 27, 28 and 37 reacted with a conformation-dependent epitope on VP1 which was not conserved in field isolates. All mutants selected by these MAbs had a single amino acid substitution at position 149 (valine to alanine). The same change was always found in field isolates which did not bind MAbs from this group. MAb 11 reacted with a linear epitope associated with amino acids 147 or 148 on VP1 and showed similar binding characteristics to a conformation dependent MAb 7, no amino acid residue changes were found within VP1 for monoclonal antibody 7 mutants.

Amino Acid Sequence↗

Identification of a fifth neutralizable site on type O foot-and-mouth disease virus following characterization of single and quintuple monoclonal antibody escape mutants.

A monoclonal antibody (C3) produced against foot-and-mouth disease virus type O1Caseros was found to neutralize quadrivalent monoclonal antibody escape mutant (G67) of foot-and-mouth disease virus type O1Kaufbeuren. This mutant had been characterized at the sequence level as having distinct changes affecting four non-overlapping neutralizable sites. The C3 monoclonal antibody was used to prepare a quintuple escape mutant from the G67 and a single escape mutant from the parental O1Kaufbeuren viruses. Polyclonal post-vaccinated and infected cattle sera as well as polyclonal mouse and guinea-pig sera, which neutralized the quadrivalent mutant, no longer neutralized the quintuple mutant, indicating that a fifth site had been identified and that changing the fifth site eliminated all neutralization. The site was characterized using serological techniques and found to be conformationally dependent, trypsin-sensitive and independent of sites previously characterized by monoclonal antibodies. Amino acid sequencing comparing parental, single C3 and quintuple mutants showed that a single change from a glutamine to a histidine, at amino acid 149 in the structural protein VP1, (1D) characterized the C3 mutation. The fifth site probably represents a conformational epitope which is formed due to the interaction of the VP1 loop region with other surface amino acids.

Amino Acid Sequence↗

The use of monoclonal antibodies in the molecular typing of animal viruses.

Monoclonal antibodies (MAbs) are biological reagents which have a definite structure. They identify epitopes with total specificity. Such specificity is based on the exact physico-chemical structure of antigens. Thus MAbs provide a unique link between chemical structure and antigenic properties and can give great insight into the functional properties of biological agents. The author describes a number of applications of MAbs in the characterisation of foot and mouth disease viruses for diagnostic purposes, and in research into the antigenic nature of these viruses.

Animals↗

Protective immune response against foot-and-mouth disease.

The causative agents of foot-and-mouth disease (FMD) are small icosahedral viruses of the Aphthovirus group within the Picornaviridae family. There is no evidence that these viruses infect cells of the immune system or otherwise interfere detrimentally with their function; additionally, it has not been possible to relate cytotoxicity reactions against virus-infected cells to the efficacy of the immune response against FMD virus infection. In contrast, there is a close association between FMD virus antibody and the protective immune response (10, 14, 15, 20, 24, 25, 29-32). Induction of this antibody is dependent on the structure of the viral antigenic sites (7-9, 11, 18) and on the concomitant presence of Th-lymphocyte epitopes (4, 5, 7, 8), although a Th-lymphocyte-independent response has been reported (2). Recent work by Piatti et al. (26) showed that the immune response induced by FMD virus was only Th-lymphocyte dependent when low doses of antigen were used. This latter work was performed in mice, and it is not certain that a similar situation would be found in cattle. As for the major effector immune defense, this relies on the interaction between antibody-virus complexes and the phagocytic cells of the reticuloendothelial system (17, 19).

Animals↗