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Canadian Journal of Veterinary Research logoLink to Canadian Journal of Veterinary Research
. 1998 Oct;62(4):257–261.

The association of titers to bovine coronavirus with treatment for bovine respiratory disease and weight gain in feedlot calves.

S W Martin 1, E Nagy 1, P E Shewen 1, R J Harland 1
PMCID: PMC1189491  PMID: 9798090

Abstract

The association between bovine respiratory disease (BRD) and antibody titers to bovine coronavirus (BCV) was studied in 604 calves (19 different groups in 4 different feedlots from 2 provinces). Almost all calves had antibody titers on arrival in the Alberta feedlot and 82% of the calves had an antibody titer on arrival at the Ontario feedlots; titers in calves in Alberta were almost twice as high as those in calves in Ontario. The incidence of infection, in the first mo after arrival as judged by seroconversion, ranged from 61% to 100%; titer increases were much greater in calves in Ontario feedlots. Titer variables were not significantly related to BRD, except on a within-group basis (group was a confounding variable for BCV-BRD associations). Given control of group effects, calves with an antibody titer on arrival appeared to be protected against BRD for the first 28 d in the feedlot, and the association was reasonably linear over the range of titers. Each titer unit on arrival decreased the risk of BRD by about 0.8x (odds ratio). Titer change was not strongly related to the risk of BRD and the relationship was not linear over the range of titer changes. Titer change was strongly and negatively correlated with titer on arrival, and titer change was not significantly related to BRD in the presence of arrival titers. Arrival titer retained its relationship with BRD in the presence of titer data for other putative pathogens. Each higher unit of titer to BCV on arrival increased the 28-day weight gain (controlling for group, initial weight and the occurrence of BRD) by slightly more than 1 kg. Titer change was associated with decreased weight gain, when initial titer was not in the model. The lack of a linear or multivariable association between BCV titer change and BRD, and weight gain, may indicate that BCV is not a major pathogen; or, its lack of significance may merely be due to its strong correlation with arrival titer. Given the associations found in this study, particularly the interprovincial differences in arrival titers, more and different approaches to studying the possible effects of BCV on BRD are in order.

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Selected References

These references are in PubMed. This may not be the complete list of references from this article.

  1. Allen J. W., Viel L., Bateman K. G., Nagy E., Røsendal S., Shewen P. E. 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. Can J Vet Res. 1992 Oct;56(4):281–288. [PMC free article] [PubMed] [Google Scholar]
  2. Carman P. S., Hazlett M. J. Bovine coronavirus infection in Ontario 1990-1991. Can Vet J. 1992 Dec;33(12):812–814. [PMC free article] [PubMed] [Google Scholar]
  3. Ganaba R., Bélanger D., Dea S., Bigras-Poulin M. A seroepidemiological study of the importance in cow-calf pairs of respiratory and enteric viruses in beef operations from northwestern Quebec. Can J Vet Res. 1995 Jan;59(1):26–33. [PMC free article] [PubMed] [Google Scholar]
  4. Harland R. J., Potter A. A., van Drunen-Littel-van den Hurk S., Van Donkersgoed J., Parker M. D., Zamb T. J., Janzen E. D. The effect of subunit or modified live bovine herpesvirus-1 vaccines on the efficacy of a recombinant Pasteurella haemolytica vaccine for the prevention of respiratory disease in feedlot calves. Can Vet J. 1992 Nov;33(11):734–741. [PMC free article] [PubMed] [Google Scholar]
  5. Heckert R. A., Saif L. J., Hoblet K. H., Agnes A. G. A longitudinal study of bovine coronavirus enteric and respiratory infections in dairy calves in two herds in Ohio. Vet Microbiol. 1990 Apr;22(2-3):187–201. doi: 10.1016/0378-1135(90)90106-6. [DOI] [PMC free article] [PubMed] [Google Scholar]
  6. Heckert R. A., Saif L. J., Mengel J. P., Myers G. W. Isotype-specific antibody responses to bovine coronavirus structural proteins in serum, feces, and mucosal secretions from experimentally challenge-exposed colostrum-deprived calves. Am J Vet Res. 1991 May;52(5):692–699. [PubMed] [Google Scholar]
  7. Heckert R. A., Saif L. J., Myers G. W., Agnes A. G. Epidemiologic factors and isotype-specific antibody responses in serum and mucosal secretions of dairy calves with bovine coronavirus respiratory tract and enteric tract infections. Am J Vet Res. 1991 Jun;52(6):845–851. [PubMed] [Google Scholar]
  8. Martin S. W., Harland R. J., Bateman K. G., Nagy E. The association of titers to Haemophilus somnus, and other putative pathogens, with the occurrence of bovine respiratory disease and weight gain in feedlot calves. Can J Vet Res. 1998 Oct;62(4):262–267. [PMC free article] [PubMed] [Google Scholar]
  9. Shewen P. E., Wilkie B. N. Vaccination of calves with leukotoxic culture supernatant from Pasteurella haemolytica. Can J Vet Res. 1988 Jan;52(1):30–36. [PMC free article] [PubMed] [Google Scholar]
  10. Storz J., Stine L., Liem A., Anderson G. A. Coronavirus isolation from nasal swab samples in cattle with signs of respiratory tract disease after shipping. J Am Vet Med Assoc. 1996 May 1;208(9):1452–1455. [PubMed] [Google Scholar]
  11. Walter S. D., Feinstein A. R., Wells C. K. Coding ordinal independent variables in multiple regression analyses. Am J Epidemiol. 1987 Feb;125(2):319–323. doi: 10.1093/oxfordjournals.aje.a114532. [DOI] [PubMed] [Google Scholar]

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