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Biomedical subjects

S R Bolin

Publications and source records attributed to S R Bolin.

At least 73 records · Page 4Linked to original sources

Immunologic and virologic findings in a bull chronically infected with noncytopathic bovine viral diarrhea virus.

Depressed lymphocyte blastogenesis in response to mitogen stimulation, depressed iodination of protein by neutrophils, and enhanced ingestion of Staphylococcus aureus by neutrophils were detected in a bull with chronic bovine viral diarrhea (BVD). Before developing chronic BVD, the bull was vaccinated with a killed cytopathic BVD virus. Neutralizing antibodies specific for the vaccine virus were detected in serum specimens obtained from the bull immediately before death. A noncytopathic BVD virus was isolated from the spleen after death. The immunologic and virologic findings in this bull supported reported research findings on the pathogenetic mechanisms involved in chronic BVD and mucosal disease.

Animals↗

Frequency of association of noncytopathic bovine viral diarrhea virus with mononuclear leukocytes from persistently infected cattle.

All mononuclear leukocytes and T lymphocyte-enriched and B lymphocyte-enriched subpopulations of mononuclear leukocytes collected from 8 cows persistently infected with 1 of 3 isolates of noncytopathic bovine viral diarrhea virus were tested for association with virus. For all persistently infected cows, approximately 4.4% of all mononuclear leukocytes, 5.4% of T lymphocyte-enriched, and 2.1% of B lymphocyte-enriched subpopulations of mononuclear leukocytes were associated with virus. Differences between leukocyte populations in percentages of leukocytes associated with virus were real (P less than 0.05). Among virus isolates, significant differences in percentages of leukocytes associated with virus were not detected.

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Lymphocyte blastogenesis and neutrophil function in cattle persistently infected with bovine viral diarrhea virus.

Neutrophil function and mononuclear cell proliferative responses to mitogens were determined in healthy cattle and in cattle persistently infected with bovine viral diarrhea (BVD) virus. Uptake of [3H]thymidine by resting and mitogen-stimulated peripheral blood mononuclear cells was significantly lower in cattle persistently infected with BVD virus than in healthy cattle. Neutrophils from cattle persistently infected with BVD virus had significantly impaired capability to ingest Staphylococcus aureus, but were normal in respect to random migration under agarose, cytochrome C reduction, iodination, and antibody-dependent cell-mediated cytotoxicity. Impairment of neutrophil function in cattle persistently infected with BVD virus differs from impairment of neutrophil function reported in healthy cattle mounting an immune response to recent BVD virus infection.

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Isolation of cytopathic and noncytopathic bovine viral diarrhea virus from the spleen of cattle acutely and chronically affected with bovine viral diarrhea.

Both cytopathic and noncytopathic bovine viral diarrhea virus (BVDV) were isolated from 16 of 17 bovine spleens representing 11 herds that had experienced acute BVD and from 12 of 21 bovine spleens from 1 herd affected with chronic BVD. It was concluded that isolation of cytopathic and noncytopathic BVDV from the same spleen probably indicates that an animal with a persistent, noncytopathic BVDV infection was superinfected with a cytopathic BVDV. The prevalence (greater than 70%) of 2 viruses in the spleen of cattle with acute or chronic BVD suggested that persistent infection with noncytopathic BVDV may be an important factor in the pathogenesis of BVD.

Animals↗

Mastitis associated with ovine progressive pneumonia virus infection in sheep.

Eighteen ewes were experimentally infected with ovine progressive pneumonia virus and their mammary glands were examined for lesions and virus at 2.5 to 10 years postinoculation. Lesions were seen in 14 of 18 sheep; virus was isolated from 4 of 8 sheep. Lesion consisted of an interstitial accumulation of lymphocytes with periductal lymphoid nodules, and epithelial vacuolation and necrosis at the site of the lymphoid nodules.

Animals↗

Severe clinical disease induced in cattle persistently infected with noncytopathic bovine viral diarrhea virus by superinfection with cytopathic bovine viral diarrhea virus.

Eight healthy cattle that were persistently infected with noncytopathic bovine viral diarrhea virus (BVDV) were inoculated with cell culture fluids that contained noncytopathic or cytopathic BVDV. A severe disease occurred after inoculation with cytopathic BVDV. The clinical signs, lesions, and immune response were consistent with those of clinical BVDV infections.

Animals↗

Pathologic effects of intrauterine deposition of pseudorabies virus on the reproductive tract of swine in early pregnancy.

Pseudorabies virus was inoculated into the uterus of 15 gilts within 6 hours after natural breeding, and gilts were necropsied at postbreeding days (PBD) 3, 6, 10, 14, and 28; 3 control gilts were treated similarly, except for inoculation with pseudorabies virus and were necropsied at PBD 6, 10, and 14. Tissues were collected for virus isolation, fluorescent antibody staining, and histopathologic examination. Pseudorabies virus was isolated from the reproductive tract up to day 14. Lesions in the reproductive tract consisted of multifocal to diffuse lymphohistiocytic vaginitis and endometritis, and lymphoplasmacytic aggregates in the corpora lutea. Multiple ulcers were seen in the vagina or endometrium of several gilts at PBD 3, 6, and 10. Corpora lutea of 1 gilt were necrotic at PBD 14 and contained large numbers of inflammatory cells. Focal aggregates of lymphocytes and plasma cells were seen in vagina and endometrium of 3 gilts and in the ovary of 1 gilt at day 28.

Animals↗

Frequency of persistent bovine viral diarrhea virus infection in selected cattle herds.

Sera and blood buffy coat samples were obtained from 3,157 cattle in 66 selected herds. Antibodies to bovine viral diarrhea (BVD) virus were detected in 89% of the serum samples by immunoprecipitation or virus-neutralization tests. Cytopathic or noncytopathic BVD viruses were isolated from blood buffy coat samples from 60 cattle in 6 herds. A second blood buffy coat sample was obtained from 54 of the 60 cattle 2 months after the initial sampling, and BVD virus was isolated again from each cow. The 54 cattle were considered persistently infected with BVD virus. The frequency of persistent infection was 1.7%.

Animals↗

Response of cattle persistently infected with noncytopathic bovine viral diarrhea virus to vaccination for bovine viral diarrhea and to subsequent challenge exposure with cytopathic bovine viral diarrhea virus.

Nine steers persistently infected with noncytopathic bovine viral diarrhea (BVD) virus were allotted into 3 groups (3 cattle/group). Cattle in group A were vaccinated with a modified-live BVD virus vaccine of porcine cell origin, cattle in group B with a modified-live BVD virus vaccine of bovine cell origin, and cattle in group C with a killed BVD virus vaccine of bovine cell origin. Detrimental effects due to vaccination were not seen. Six weeks after vaccination, the steers were challenge exposed with a cytopathic BVD virus. All steers developed mucosal disease after challenge exposure, produced antibodies that neutralized various isolates of BVD virus, and remained persistently infected until death. Steers given killed virus vaccine had a minimal neutralizing-antibody response and developed mucosal disease as quickly as reported for challenge-exposed, nonvaccinated, persistently infected cattle. Steers given modified-live virus vaccines had higher neutralizing-antibody response and longer intervals from challenge exposure to development of mucosal disease. The specificity of the neutralizing-antibody response differed between groups of vaccinated cattle.

Animals↗

Seroepidemiologic survey for antibodies to selected viruses in the respiratory tract of lambs.

A serologic study was conducted to determine the prevalence of antibodies to, and infection rate of, Mastadenovirus ovi 5, M ovi 6, parainfluenza-3 (PI-3) virus, bovine herpesvirus-1 (BHV-1), respiratory syncytial virus (RSV), bovine viral diarrhea (BVD) virus, and ovine progressive pneumonia (OPP) virus in lambs at a ram lamb growth-rate test station. For 2 consecutive years, serum samples were prepared from blood collected from 1- to 2-month-old ram lambs as they entered the test station (1st sample) and again 2 months later (2nd sample). The 1st year, 59 producers submitted 237 lambs; the 2nd year, 65 producers submitted 253 lambs. Microtitration serum virus-neutralization tests were used to determine antibody titers for M ovi 5, M ovi 6, PI-3 virus, BHV-1, and BVD virus. Antibodies to RSV and OPP virus were determined, using indirect hemagglutination and agar-gel immunodiffusion, respectively. Based on results of the 1st blood samples collected, the mean prevalence for both years was as follows: 95% of the lambs were seropositive for M ovi 5; 87.2% for PI-3 virus; 84.5% for RSV; 41.7% for M ovi 6; 8.7% for BVD virus; 5.4% for BHV-1; and 3.3% for OPP virus. Based on the 2-year mean, M ovi 6 had the highest infection rate (207 of 484 [42.8%]) as determined by the number of lambs evaluated having a greater than or equal to 4-fold increase in serum antibody titer from the 1st to the 2nd sampling. Infection rates of the other viruses were: 31.0% for M ovi 5; 15.3% for PI-3 virus; 5.6% for RSV; 0.6% for BVD virus; and 0.4% for BHV-1. One lamb became seropositive for OPP virus the 2nd year.

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Effects of bovine viral diarrhea virus on the percentages and absolute numbers of circulating B and T lymphocytes in cattle.

The percentage and absolute numbers of circulating B and T lymphocytes were determined for 10 healthy cattle by labeling mononuclear cells with anti-bovine immunoglobulin or peanut agglutinin. The cattle were then inoculated with a cytopathogenic isolate of bovine viral diarrhea (BVD) virus, and B- and T-lymphocyte populations were again quantitated at given intervals. Seemingly, BVD virus caused a decrease in the absolute numbers of B and T lymphocytes and in the percentage of T lymphocytes. Although these effects lasted through 7 days, all of the cattle recovered from infection and had detectable BVD virus-neutralizing antibodies in their sera 17 days after exposure.

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Pseudorabies virus infection of six- and ten-day-old porcine embryos.

Nine susceptible gilts were exposed to pseudorabies virus (PrV) by intrauterine inoculation immediately after breeding. Embryos were collected from each of three gilts on days 3, 6, and 10 following exposure to PrV. The number of embryos collected from each gilt was compared with the number of corpora lutea (CL). On days 6 and 10, there were substantially fewer embryos collected than there were CL. The embryos were examined for the presence of viral particles by electron microscopy. PrV was observed in embryos collected at 6 and 10 days following exposure of the gilts. The fluids used to flush the embryos from the uterus during collection were tested for PrV by virus isolation and direct fluorescent antibody procedures. PrV was isolated from the uterine-flush fluids of one of three gilts at each time of embryo collection.

Journal Article↗

Differentiation of cytopathic and noncytopathic isolates of bovine viral diarrhea virus by virus neutralization.

Soluble antigens of cytopathic and noncytopathic isolates of bovine viral diarrhea virus were resolved by high-performance liquid gel-permeation chromatography into 4 major and 3 minor peaks. The 2 peaks with the larger molecular weights (240,000 and 140,000 daltons) were immunogenic when inoculated into rabbits. Virus neutralizing antibodies were specific for the homologous virus. The soluble antigens were determined to be greater than 100,000 daltons by filtration.

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Production of cattle immunotolerant to bovine viral diarrhea virus.

Inoculation of bovine virus diarrhea virus into 58 to 125 day old fetuses of bovine virus diarrhea virus seropositive pregnant cows, or inoculation of bovine virus diarrhea virus into seronegative cows 42 to 114 days pregnant, may produce clinically normal calves which are persistently infected with the specific isolate of bovine virus diarrhea virus yet seronegative to the homologous and heterologous isolates. Reinoculation of these persistently infected cattle with their homologous isolate produced no neutralizing antibody response to bovine virus diarrhea virus. These persistently infected cattle were immunocompetent as they developed neutralizing serotiters to infectious bovine rhinotracheitis, parainfluenza-3 viruses and agglutinating serotiters to Pasteurella hemolytica .

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Pseudorabies virus, porcine parvovirus, and porcine enterovirus interactions with the zona pellucida of the porcine embryo.

Porcine embryos (n = 93) were incubated on cell monolayers that had been previously inoculated with pseudorabies virus, porcine parvovirus (PPV), or each of 2 porcine enteroviruses. After 2, 24, or 48 hours of incubation, the embryos were fixed in glutaraldehyde and examined by electron microscopic procedures. It was found that pseudorabies virus adsorbed to the zona pellucida (ZP) and entered sperm tracks in the ZP. The PPV and both enteroviruses entered pores in the ZP and were associated with sperm that were at or near the outer surface of the ZP. In addition, PPV was seen enmeshed in cellular debris on the outer surface of the ZP. Evidence of a productive viral infection of the blastomeres of the embryos was not found.

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Total protein and immunoglobulins G1, G2, and M in serum of calves persistently infected with bovine viral diarrhea virus.

Total serum protein and immunoglobulins (Ig) G1, G2, and M concentrations were investigated in 11 calves persistently infected with bovine viral diarrhea virus. These calves were allowed to suckle from their dams until weaned. A gradual increase in total protein was observed from birth to 12 months of age. There was a wide variation in Ig concentrations in pre- and postcolostrum sera. The IgG1 increased from the time of delivery of the calves to the 5th month, decreased by the 10th month, and then stabilized through the 12th month. The IgG2 increased from birth to 10 months and remained stable through 12 months. The IgM increased from birth to the 11th month, and then decreased sharply by the 12th month.

Aging↗