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Bovine monoclonal alloantibodies to blood group antigens prepared by murine x bovine or (murine x bovine) x bovine interspecies fusions.

In order to obtain monoclonal alloantibodies against bovine blood group antigens, lymph node cells from calves immunized with bovine red blood cells (RBC) were fused with either murine NSO/1 myeloma cells or a HAT sensitive murine x bovine heterohybridoma cell line. Both fusion partners resulted in heterohybridoma cell lines, producing monoclonal alloantibodies against bovine red blood cell antigens. Several clones produced antibodies against identical antigens and some of these clones have been further analysed. The antibodies produced by these selected cell lines have been compared with conventional polyclonal antisera used in bovine blood typing service. Thus extensive tests--including the ISAG Comparison Tests 1989/90 and 1991/92--have proved that monoclonal alloantibodies specific for the internationally recognized bovine red cell antigens A2, I1, O1, Q, A', B', Q', C1, R1, X1, S and Z have been produced. The Q, A', B', and C1 antibodies react weakly with certain phenogroups, whereas the A2, I1, O1, Q', R1, X1, S and Z antibodies have proved to be excellent blood typing reagents and have now substituted the polyclonal antisera in routine bovine blood typing in our laboratory.

Animals↗

Prevalence of antibodies to bovine respiratory syncytial virus, bovine viral diarrhea virus, bovine herpesvirus-1, and bovine parainfluenza-3 virus in sheep and goats in Quebec.

Serum samples were collected from 1,075 clinically normal sheep and goats from 77 flocks in 7 agricultural regions of Quebec from June to August 1982. Sheep and goats were tested for antibodies to bovine respiratory syncytial virus, bovine viral diarrhea virus, and bovine herpes-virus-1 by the indirect fluorescent antibody technique and for parainfluenza-3 virus by the hemagglutination inhibition test. The prevalence of antibodies in animals to respiratory syncytial virus was 31%; to bovine viral diarrhea virus, 22.2%; to bovine herpesvirus-1, 10.8%; and to parainfluenza-3 virus, 23.2%. Antibodies prevailed in similar proportions in young (less than 1 year) and adult (greater than 1 year) animals.

Animals↗

Hydrogen exchange kinetics of bovine pancreatic trypsin inhibitor beta-sheet protons in trypsin-bovine pancreatic trypsin inhibitor, trypsinogen-bovine pancreatic trypsin inhibitor, and trypsinogen-isoleucylvaline-bovine pancreatic trypsin inhibitor.

Hydrogen exchange rates of six beta-sheet peptide amide protons in bovine pancreatic trypsin inhibitor (BPTI) have been measured in free BPTI and in the complexes trypsinogen-BPTI, trypsinogen-Ile-Val-BPTI, bovine trypsin-BPTI, and porcine trypsin-BPTI. Exchange rates in the complexes are slower for Ile-18, Arg-20, Gln-31, Phe-33, Tyr-35, and Phe-45 NH, but the magnitude of the effect is highly variable. The ratio of the exchange rate constant in free BPTI to the exchange rate constant in the complex, k/kcpIx, ranges from 3 to much greater than 10(3). Gln-31, Phe-45, and Phe-33 NH exchange rate constants are the same in each of the complexes. For Ile-18 and Tyr-35, k/kcpIx is much greater than 10(3) for the trypsin complexes but is in the range 14-43 for the trypsinogen complexes. Only the Arg-20 NH exchange rate shows significant differences between trypsinogen-BPTI and trypsinogen-Ile-Val-BPTI and between porcine and bovine trypsin-BPTI.

Animals↗

Testing the possibility to protect bovine PrPC transgenic Swiss mice against bovine PrPSc infection by DNA vaccination using recombinant plasmid vectors harboring and expressing the complete or partial cDNA sequences of bovine PrPC.

The objective of this study was to investigate the molecular mechanisms of neurobiological processes involved in the degeneration of the central nervous system. The bovine spongiform encephalopathy (BSE) was used as experimental model system for investigation of transmissible spongiform encephalopathy (TSE). The experimental strategy was to evaluate the possibility for protection of bovine PrP(C) transgenic mice against a bovine PrP(Sc) infection by DNA vaccination using the complete or partial cDNA sequences of the bovine prion protein. Three recombinant plasmids pCR3.1-EX-PrP-BSE-C20 (C20), pCR3.1-EX-PrP-BSE-90-235-C4 (C4), and pCR3.1-EX-PrP-BSE-106-131-C14 (C14) were constructed. These mammalian expression vectors harbor complete (C20) or partial (C4 and C14) cDNA sequences of the Bos taurus PrP(C) (BTPrP(C)) encoding for amino acid residues 1-264 (C20), 90-235 (C4), and 106-131 (C14) of the BTPrP(C). Transgenic mice harboring and expressing BTPrP(C) were generated using the donor strain C57/CBA, receptor strain Swiss mouse, and recombinant plasmid MoPrPXho-boPrP. Crossing of positive transgenic mice to bovine PrP and negative to murine PrP with 129/OLA (murine PrP-/-) and C57BL6x129/OLA (murine PrP+/-) mice was carried out to amplify the colony of transgenic mice termed bovine PrP(C) transgenic Swiss mice (BTPrP-TgM). The capabilities of C20, C4, and C14 to express the corresponding cDNA sequence of BTPrP(C) in vitro and in vivo were confirmed prior to DNA vaccination of the BTPrP-TgM using NIH 3T3 cells and BALB/c mice, respectively. In order to prove the capability of the constructed expression vectors to protect BTPrP-TgM in vivo against a BSE infection 80 female BTPrP-TgM were vaccinated intramuscularly and subcutaneously with DNA of the plasmids C20, C4, C14, and parental vector pCR3.1 (100 microg DNA corresponding to about 26-30 pmol DNA/animal and application) in four groups (each consists of 20 animals). DNA vaccination was followed by three additional boosters. The vaccinated animals (15 animals of each group) were challenged twice per oral with homogenates of brain material obtained from BSE cattle containing the infectious PrP(Sc) (100 microl/animal which corresponds to 15 mg of a 15% brain homogenate). The first and second challenge experiments were performed 76-83 and 181 days post DNA vaccination, respectively. A part of the vaccinated animals (3-5 animals of each group) that served as internal negative control were mock infected using the brain homogenate of healthy cattle or Phosphate saline buffer (PBS). A variety of symptoms and clinical pictures were observed during the monitoring of DNA vaccinated animals. However, the observed diseases seem to be similar in all experimental animal groups. After an observation period of 14 months post the second challenge experiment the remaining animals (some animals died or were sacrificed when moribund during the study) were sacrificed after expiration of the experimental schedule. The right hemisphere of the brain and a half of the spleen tissue of the individual animals were used for detection of PrP(Sc) by Western blot analysis. The misfolded bovine PrP(Sc) was not detected in the brain or spleen tissues of those animals that were vaccinated with DNA of C20, which was able to express the complete bovine PrP(C) protein in vitro and in vivo. In contrast, the bovine PrP(Sc) was detected in the brain or spleen tissues of animals that were DNA vaccinated with DNA of the parental vector pCR3.1, with DNA of C4, or with DNA of C14. The results of these studies underline that the constructed expression vector C20 possesses the protective capacity to inhibit the formation of misfolded bovine PrP(Sc) in BTPrP-TgM under the conditions used. A delay of occurrence of TSE-specific symptoms in the majority of the vaccinated animals seems to be due to the prolonged incubation time of BSE infection.

Amino Acid Sequence↗

Microtiter tests for detecting antibody in bovine serum to parainfluenza 3 virus, infectious bovine rhinotracheitis virus, and bovine virus diarrhea virus.

Microneutralization tests for detection of antibody in bovine serum to three bovine viruses are described. The Madin-Darby bovine kidney cell line was used with parainfluenza 3 virus (PI 3), whereas serially cultivated bovine embryonic kidney cells were used for infectious bovine rhinotracheitis virus and bovine virus diarrhea virus. Comparison of micro-hemagglutination-inhibition (HI) with micro-serum-neutralization (SN) tests for PI 3 showed the SN test to be more sensitive, more specific, and therefore more useful than the HI test for detecting antibody. Although the effect of trypsin-periodate treatment of serum was to reduce the HI titer of numerous sera by a twofold dilution, sufficient evidence could not be found to indicate that nonspecific HI inhibitors to PI 3 are present in bovine sera.

Animals↗

Development of Eimeria bovis in vitro: suitability of several bovine, human and porcine endothelial cell lines, bovine fetal gastrointestinal, Madin-Darby bovine kidney (MDBK) and African green monkey kidney (VERO) cells.

Several bovine, human and porcine endothelial cell lines, bovine fetal gastrointestinal cells (BFGC), Madin-Darby bovine kidney (MDBK) and African green monkey kidney (VERO) cells were exposed in vitro to sporozoites of Eimeria bovis. Parasites invaded all cells used and changed their shape to more stumpy forms within 12 h. Sporozoites left their host cells and invaded new ones frequently within the first 12 h post-infection. Further development took place only in bovine cells, although parasites survived in the other cells for at least 3 weeks. Within the non-bovine cells, conspicuously enlarged parasitophorous vacuoles developed in VERO cells and reached a diameter of 15-20 microm. The best development to first generation schizonts with regard both to time required to mature, to schizont size and to merozoite yields was observed in BFGC, followed by bovine umbilical vein and bovine spleen lymphatic endothelial cells. MDBK cells were less suitable. The life cycle was completed (development of oocysts) only occasionally in BFGC. Results are considered under several aspects. Thus, infected VERO cells may represent a suitable tool for studying the parasitophorous vacuole, while infected endothelial cells represent a system quite narrow to the in vivo situation and should allow basic studies on parasite/host cell interactions and BFGC can be used for the mass production of E. bovis first generation merozoites.

Animals↗

Trypsin treatment of bovine embryos after in vitro exposure to infectious bovine rhinotracheitis virus or bovine herpesvirus-4.

The objectives of this study were to evaluate the efficacy of trypsin treatment for the removal/inactivation of infectious bovine rhinotracheitis virus (IBRV) adhering to zona pellucida-intact (ZP-I) bovine embryos and to determine if bovine herpesvirus-4 (BHV-4) adheres to ZP-I bovine embryos. When adherence of BHV-4 was demonstrated, an additional objective was to determine whether trypsin treatment removes or inactivates this virus. A total of 139 ZP-I embryos was collected from superovulated donor cows at 7 d after estrus. Embryos were exposed to 10(6) to 10(7) plaque-forming units (pfu) of either IBRV or BHV-4 for 1 to 2 h. Subsequently, approximately equal numbers of embryos exposed to each virus were either washed 12 times and the washes and embryos examined for the presence of infectious virus, or they were treated with trypsin and the embryos examined for the presence of infectious virus. Although the fourth wash was the last positive wash, an average of 18 pfu of virus was detected from each of six groups (a total of 24 embryos) after exposure to IBRV and washing. Infectious bovine rhinotracheitis virus was not isolated from any of nine trypsin-treated groups (a total of 43 embryos). The seventh wash was the last positive wash for any group after exposure to BHV-4, yet an average of 2 pfu of virus was detected from each of six groups (a total of 29 embryos) after washing. No BHV-4 was isolated from any of eight trypsin-treated groups (a total of 43 embryos). The study confirmed previous reports that IBRV adheres to the bovine ZP after in vitro exposure and that trypsin treatment is effective in keeping ZP-I embryos free of this virus. Adherence of BHV-4 to ZP-I bovine embryos was demonstrated for the first time. Trypsin treatment was also effective in removing this herpesvirus.

Journal Article↗

Bovine costimulator. II. Generation and maintenance of a bovine costimulator-dependent bovine lymphoblastoid cell line.

Bovine peripheral blood leukocytes, activated with concanavalin A, were cultured in bovine costimulator-containing conditioned medium prepared in a totally defined, serum-free medium. A population of leukocytes subsequently grew exponentially. These bovine cells had the morphology of lymphoblasts, were negative for chloroacetate esterase, slightly positive for conspecific esterases, and highly peanut agglutinin-positive. These data suggested that the bovine leukocytes were of the T-cell lineage and that the active factor in the costimulator-containing conditioned medium might be the bovine equivalent of interleukin 2. A quantitative microassay, subsequently developed, revealed that the lymphoblastoid cell line was costimulator-dependent and lectin-independent. Further utilization of the microassay supported this contention and strengthened the concept of a bovine interleukin 2-dependent bovine T-cell line: Phytohemagglutin-M, phytohemagglutinin-P, and concanavalin A induced active factor from peripheral blood leukocytes, while lipopolysaccharide, a potent inducer of Interleukin 1 in other systems, failed to induce activity; and both T-cells and macrophages were required for optimal factor activity. Finally, a means by which to optimize production of the active moiety, utilizing lymph node cells, as opposed to peripheral blood leukocytes, was examined.

Animals↗

Effects of bovine follicular fluid and partially purified bovine inhibin on FSH and LH release by bovine pituitary cells in culture.

We have established a dispersed bovine pituitary cell culture system to study the effects of charcoal-extracted bovine follicular fluid (BFF) or bovine inhibin, partially purified by immunoaffinity chromatography (IPI), on the spontaneous release of follicle-stimulating hormone (FSH) and luteinizing hormone (LH). Pituitary cells were plated at 0.25, 0.5 or 1 x 10(6) viable cells/well (c/w) and incubated for 48 h. The medium was replaced and BFF (0, 0.54, 2.7, 13.7, 68.7 or 343.5 micrograms protein) or IPI (0, 0.01, 0.06, 0.29, 1.45 or 7.25 micrograms protein) added to the cultures and the incubation was continued for 48 h. Concentrations of FSH and LH in spent medium were determined by RIA and data analyzed by ANOVA with means compared by Student-Neuman-Keuls (SNK) test. We have shown an increase in spontaneous FSH and LH release attributable to both number of bovine pituitary cells plated and to the length of incubation. The addition of BFF reduced spontaneous FSH release over 48 h incubation. The dose-dependent inhibition curves observed in culture in which different numbers of cells were plated, indicates that inhibition was greater when 1 x 10(6) c/w were plated compared to 0.25 or 0.5 x 10(6) c/w. Bovine follicular fluid at 0.45 micrograms of protein (equivalent to 0.01 microliters of BFF) incubated with 1 x 10(6) c/w, suppressed FSH release by 10.6% compare to control. Maximal suppression of 34.1% was obtained with 50 micrograms (equivalent to 1.56 microliters of BFF). Immunopurified bovine inhibin at 1.45 micrograms tended to suppress FSH release and at 7.25 micrograms significantly reduced FSH release. Neither BFF nor IPI had a measurable effect on LH release. We conclude that BFF and IPI suppress the spontaneous release of FSH from bovine pituitary cells in culture in a dose-dependent manner, without concomitant suppression of LH release.

Animals↗

Inhibition of rat and bovine trypsins and chymotrypsins by soybean, bovine basic pancreatic, and bovine colostrum trypsin inhibitors.

1. Bovine (Bos taurus) trypsin and trypsin activity in rat (Rattus norvegicus) pancreatic extract were inhibited by soybean trypsin inhibitor and by bovine basic pancreatic and colostrum inhibitors. 2. Bovine alpha-chymotrypsin was inhibited by soybean and bovine basic pancreatic inhibitors but only weakly by colostrum inhibitor. 3. Chymotrypsin activity in rat pancreatic extract was due to at least three different components against all of which the inhibitors were largely ineffective. 4. It is concluded that bovine colostrum inhibitor has a more limited inhibition spectrum than the phylogenetically related basic pancreatic inhibitor which, in turn, is less active against rat than against bovine enzymes.

Animals↗

Recombinant bovine GM-CSF primes superoxide production but not degranulation induced by recombinant bovine interleukin-1 beta in bovine neutrophils.

Bovine neutrophil activation, superoxide production, and beta-glucosaminadase release induced by various biological stimuli were examined. Platelet-activating factor (PAF) and recombinant bovine interleukin-1 beta (r-BoIL-1 beta) induced superoxide production and beta-glucosaminadase release in bovine neutrophils. When these two responses were compared, the dose requirement for maximum activation was similar for PAF (1 x 10(-6) M). However, the concentration of r-BoIL-1 beta required for the maximum degranulation (2.5 x 10(-7) M) was 100-fold higher than that for the maximum superoxide production (2.5 x 10(-9) M). Furthermore, pretreatment of cells with recombinant bovine granulocyte-macrophage colony-stimulating factor (r-BoGM-CSF) enhanced both superoxide production and beta-glucosaminidase release induced by PAF. In contrast, whereas superoxide production induced by r-BoIL-1 beta was enhanced by r-BoGM-CSF priming, beta-glucosaminidase release induced by r-BoIL-1 beta was significantly reduced by pretreatment with r-BoGM-CSF. CL 184,005, a PAF antagonist, inhibited PAF-induced glucosaminidase release and superoxide production but did not inhibit r-BoIL-1 beta-induced superoxide production and degranulation. In addition, it did not inhibit the priming effect of r-BoGM-CSF on r-BoIL-1 beta-induced superoxide production. These results suggest that (1) PAF and r-BoIL-1 beta activate bovine neutrophils by different mechanisms, (2) r-BoGM-CSF primes superoxide production and degranulation induced by PAF, (3) r-BoGM-CSF primes superoxide production but not degranulation induced by r-BoIL-1 beta, and (4) the priming effect of r-BoGM-CSF is not mediated by PAF.

Animals↗

Production of a monoclonal antibody that recognizes bovine stem cell factor (SCF) and its use in the detection and quantitation of native soluble bovine SCF in fetal bovine serum.

Stem cell factor (SCF) is a pluritropic hematopoietic cytokine that acts predominantly on the proliferation and differentiation of hematopoietic progenitor cells. SCF has long been thought to be present in fetal bovine serum (FBS) as an endogenous factor that stimulates the growth of hematopoietic progenitor cells in FBS-supplemented cultures. To detect and quantitate bovine SCF in FBS, we produced a monoclonal antibody (mAb) by immunizing mice with recombinant soluble bovine SCF protein, which was expressed in insect cells by using a baculovirus system. Using the mAb, we purified native soluble bovine SCF from FBS by immunoaffinity chromatography. Western blot analysis revealed that the purified SCF protein had a molecular weight of 33 kDa. In addition, an enzyme-linked immunosorbent assay (ELISA) incorporating the mAb revealed that the levels of native soluble SCF in commercially available FBS were likely to be <100 pg/ml. These results suggest that the concentration of native soluble bovine SCF present in FBS may be insufficient to promote additive biologic effects on the growth of hematopoietic progenitor cells in FBS-supplemented cultures.

Animals↗

Serological titers to bovine herpesvirus 1, bovine viral diarrhea virus, parainfluenza 3 virus, bovine respiratory syncytial virus and Pasteurella haemolytica in feedlot calves with respiratory disease: associations with bacteriological and pulmonary cytological variables.

Acute and convalescent serum samples were taken from 59 calves with signs of respiratory disease (cases) and 60 clinically normal animals (controls) during their first month in the feedlot. Sera were analyzed for antibodies to bovine parainfluenza 3 (PI3) virus by hemagglutination inhibition, to bovine viral diarrhea (BVD) virus, bovine respiratory syncytial (BRS) virus and bovine herpesvirus 1 (BHV1) by virus neutralization, and to Pasteurella haemolytica by indirect agglutination (PhIA) and cytotoxin neutralization (PhCN) tests. There was minimal evidence of serological activity to BHV1. Serological activity to the other agents occurred commonly and the prevalence of acute titers and their mean values was similar in case and control groups. Mean convalescent PI3 and P. haemolytica (PhIA) titers were higher in controls than cases (p < 0.01) but, otherwise, convalescent titers did not differ between groups. The incidence of seroconversion was similar in both groups for all agents except for PI3 virus which was more frequent in controls than cases (p < 0.0001). There was a positive association between PhIA and CN seroconversion and isolation of P. haemolytica from bronchoalveolar lavage (BAL) fluid (p < 0.1). The measure of agreement (kappa) between seroconversion with the P. haemolytica PhIA and PhCN tests was 0.51. Bacteriological and cytological evaluations of the respiratory tract were made using BAL. No associations were evident between serological titers and pulmonary cytology. A multivariate logistic analysis was used to evaluate associations between disease status and serological, bacteriological and cytological data. Cases were positively associated with the presence of neutrophils and Pasteurella multocida in BAL fluid and negatively associated with PI3 virus and PhIA seroconversion.

Acute Disease↗

Maternally derived humoral immunity to bovine viral diarrhea virus (BVDV) 1a, BVDV1b, BVDV2, bovine herpesvirus-1, parainfluenza-3 virus bovine respiratory syncytial virus, Mannheimia haemolytica and Pasteurella multocida in beef calves, antibody decline by half-life studies and effect on response to vaccination.

The passive immunity transferred to calves from their dams was investigated in a beef herd to determine half-life of antibody, estimated time to seronegative status and effect on immunization. One hundred two beef calves in a commercial ranch under standard management conditions were utilized. Samples were collected at branding (day 0). This was the first possible date to collect samples postcalving. This was approximately 2 months postcalving, and days 95 and 116. The calves were divided into two groups: vaccinates (51) and nonvaccinates (51). The calves were vaccinated with a commercial inactivated viral vaccine containing bovine viral diarrhea virus (BVDV)1a, BVDV2, bovine herpesvirus-1 (BHV-1), parainfluenza-3 virus (PI-3V), and bovine respiratory syncytial virus (BRSV) on days 0 and 95. Half of the vaccinated and unvaccinated calves also received one dose of an experimental Mannheimia haemolytica and Pasteurella multocida vaccine at day 95. Serums were tested for neutralizing antibody titers to BVDV1a, BVDV1b, BVDV2, BHV-1, PI-3V, and BRSV. Antibodies were detected by ELISA to M. haemolytica whole cell, M. haemolytica leukotoxin, and P. multocida outer membrane protein (OMP). The mean half-life of viral antibodies in nonvaccinated calves to each virus was: BVDV1a, 23.1 days (d); BVDV1b, 22.8 d; BVDV2, 22.9 d; BHV-1, 21.2 d; PI-3V, 30.3 d; and BRSV, 35.9 d. The mean half-life of viral antibodies was greater for vaccinates than for nonvaccinates for all viruses except BRSV. The calculated mean time to seronegative status for nonvaccinates based on titers at day 0 was: BVDV1a, 192.2 d; BVDV1b, 179.1 d; BVDV2, 157.8 d; BHV-1, 122.9 d; PI-3V, 190.6 d; and BRSV, 186.7 d. There was an active immune response after vaccination with two doses to all the viruses, except BRSV. Mean antibody titers of vaccinates at day 116 were statistically higher than nonvaccinates for all viruses except BRSV. However on an individual calf basis there were few seroconversions (four-fold rise or greater to BVDV1a, BVDV1b, BVDV2, PI-3V, or BRSV; or two-fold rise for BHV-1) in the presence of viral antibodies. The predicted time of seronegative status for a group of calves for vaccination programs may not be appropriate as there may be a range of titers for all calves at day 0. In this study the range for BVDV1a was 16-16,384; BVDV1b, 8-8192; BVDV2, 0-8192; BHV-1, 0-935; PI-3V, 8-2048; and BRSV, 8-4096. Using the half-life of 23 d for BVDV1a, the time thereafter for seronegative status would be 46 and 299 d compared to the calculated date of 192.2 d using the mean of estimated time to seronegative status for all the calves. There was an active humoral response in the vaccinated calves to M. haemolytica and P. multocida. Cowherd humoral immunity based on serum antibodies should be monitored as it may relate to transfer of maternal antibodies to calves. Exceptionally high levels of viral antibodies transferred to calves could interfere with the antibody response to vaccination.

Animals↗

Demonstration and quantitation of immunoglobulins in bovine serum, follicular fluid, and uterine and vaginal secretions with reference to bovine viral diarrhea and infectious bovine rhinotracheitis.

Immunoglobulin concentrations (IgG, IgM, and IgA) in bovine serum, follicular fluid, and uterine and vaginal secretions were determined. The specificities of IgG, IgM, and IgA for virus-neutralizing antibody against bovine viral diarrhea (BVD) and infectious bovine rhinotracheitis (IBR) viruses were also examined. High concentrations of IgG were present in both serum and follicular fluid. The IgG, IgM, and IgA concentrations were low in uterine and vaginal secretions. There was more IgG in the uterus during estrus than at any other time. Virus-neutralizing antibodies against BVD and IBR in serum of cows were mainly the IgG class. There was positive correlation between serum and follicular fluid virus-neutralizing antibody titers fro BVD and IBR. These antibodies may provide some protection for recently ovulated ova.

Animals↗

Serological responses in calves to vaccines against bovine respiratory syncytial, infectious bovine rhinotracheitis, bovine viral diarrhoea and parainfluenza-3 viruses.

The Istituto Superiore di Sanità (ISS), the National Veterinary Services Laboratory in Italy, is in charge of assessing the quality, safety and efficacy of veterinary vaccines before and after licensing. To evaluate the relative potency of several vaccines against bovine respiratory syncytial virus (BRSV), infectious bovine rhinotracheitis virus (IBRV), bovine viral diarrhoea virus (BVDV) and parainfluenza-3 virus (PI3V), the serological responses in vaccinated calves were studied. Vaccination with any of the vaccines under study induced specific antibody titres against the different viral antigens. The differences of the mean antibody titres within and among the test group vaccines were statistically significant. The results confirm and support those obtained by other authors in similar studies, suggesting that serological responses in vaccinated calves can be used as a helpful means of assessing the relative potency of vaccines against viral respiratory diseases of cattle. The criteria allowing such an evaluation are discussed.

Animals↗

Serological detection of multiple retroviral infections in cattle: bovine leukemia virus, bovine syncytial virus and bovine visna virus.

Individual experimental animals used in our studies on bovine leukemia virus (BLV) are routinely screened for the presence of antibodies to the three bovine lymphotropic retroviruses. We utilized these screening methods to examine frozen sera from eight herds for antibodies to BLV, bovine visna virus (BVV) and bovine syncytial virus (BSV). Serum samples from 235 animals in four dairy and four beef herds were analyzed. Detection methods used included indirect fluorescent antibody tests of virus-infected cell cultures (BLV, BSV, BVV) and agar gel immunodiffusion (BLV). Sera from the BLV-infected animals in the dairy herds showed the highest single (50%, 49/97) and multiple (30%, 29/97) infections compared with 5% (7/138) and less than 1% (1/138), respectively in the beef herds. Single BVV infections were not detected in the dairy herds, but 11% (11/97) of the sera contained antibodies to BVV plus BLV or BSV. Five sera from beef cattle had antibodies only to BVV and four were obtained from one herd. Only one beef serum of the 138 tested demonstrated multiple antibodies (BLV, BVV).

Animals↗