Prevalence of Bovine Respiratory Disease in Dairy Calves: A Comparative Study of Clinical Signs and Thoracic Ultrasound Screening
Subject Areas : Diagnostic Radiology, Ultrasonography, Scintigraphy, CT Scan, MRI and related topicsSeyedAli Saadatnia 1 , Gholamreza Mohamadi 2 * , Ali Mirshahi 3
1 - Department of clinical sciences, faculty of veterinary medicine, ferdowsi university of Mashhad, Mashhad, Iran.
2 - Department of Clinical Science, Health and prevention of livestock diseases, Faculty of Veterinary Medicine, Ferdowsi University of Mashhad, Mashhad, Iran
3 - Department of Clinical Sciences, Faculty of Veterinary Medicine, Ferdowsi University of Mashhad, Iran
Keywords: Thoracic Ultrasonography, Dairy Calves, Early Diagnosis, Bovine Respiratory Disease (BRD),
Abstract :
Background: Bovine respiratory disease (BRD) is a leading health issue in dairy calves, significantly impacting animal welfare and farm economics.
Objectives: This study aims to evaluate the prevalence of BRD in a dairy herd, comparing the diagnostic effectiveness of clinical signs and thoracic ultrasound (TUS) screening.
Methods: A cohort of dairy herd calves was assessed using both diagnostic approaches (clinical signs and TUS). Clinical signs were evaluated based on observable indicators such as coughing, nasal discharge and abnormal breathing patterns. Concurrently, TUS was used to detect pulmonary abnormalities indicative of respiratory pathology. The prevalence rates determined by each method were analyzed.
Results: This study underscores the importance of advanced diagnostic tools in the early identification and control of BRD in calves, advocating for a more comprehensive approach to calf health management. In this cross-sectional study, we investigated the prevalence of bovine respiratory disease (BRD) in a cohort of 230 dairy calves using thoracic ultrasound (TUS) and clinical signs. Our findings indicate a significant discrepancy between the two diagnostic methods, with TUS identifying a prevalence rate of 62%, while clinical signs suggested a rate of 21%. This disparity highlights the potential for underdiagnosis when relying solely on clinical observations.
Conclusions: Our findings reveal that while clinical signs provide a rapid assessment tool for on-farm diagnosis, TUS provides higher accuracy and quality and revealing subclinical cases not readily diagnosed through clinical observation alone. The integration of TUS into routine veterinary examinations could enhance the early detection and management of BRD, potentially reducing the economic burden of the disease and improving the overall health status of dairy herds.
1. Radaelli, E., Luini, M., Loria, G. R., Nicholas, R. A. J., & Scanziani, E. Bacteriological, serological, pathological and immunohistochemical studies of Mycoplasma bovis respiratory infection in veal calves and adult cattle at slaughter. Research in Veterinary Science. 2008; 85 (2), 282–290. https://doi.org/10.1016/j.rvsc.2007.11.012.
2. Buczinski S, Borris ME, Dubuc J. Herd-level prevalence oر گله های شیری f the ultrasonographic lung lesions associated with bovine respiratory disease and related environmental risk factors. J Dairy Sci. 2018;101(3):2423–32. http://dx.doi.org/10.3168/jds.2017-13459.
3. McGuirk, S. M. Disease management of dairy calves and heifers. Vet. Clin. North Am. Food Anim. Pract. 2008; 24:139–153. https://doi .org/10.1016/j.cvfa.2007.10.003.
4. Hayes CJ, McAloon CG, Carty CI, Ryan EG, Mee JF, O’Grady L. The effect of growth rate on reproductive outcomes in replacement dairy heifers in seasonally calving, pasture-based systems. J Dairy Sci. 2019;102(6):5599–611. https://doi.org/10.3168/jds.2018-16079.
5. Gelsinger SL, Heinrichs AJ, Jones CM. A meta-analysis of the effects of preweaned calf nutrition and growth on first-lactation performance. J Dairy Sci. 2016;99(8):6206–14. https://doi.org/10.3168/jds.2015-10744.
6. Van De Stroet DL, D\’\iaz JAC, Stalder KJ, Heinrichs AJ, Dechow CD. Association of calf growth traits with production characteristics in dairy cattle. J Dairy Sci. 2016;99(10):8347–55. https://doi.org/10.3168/jds.2015-10738.
7. Love WJ, Lehenbauer TW, Van Eenennaam AL, Drake CM, Kass PH, Farver TB, et al. Sensitivity and specificity of on-farm scoring systems and nasal culture to detect bovine respiratory disease complex in preweaned dairy calves. J Vet Diagnostic Investig. 2016;28(2):119–28. https://doi.org/10.1177/1040638715626204.
8. Guterbock WM. The impact of BRD: The current dairy experience. Anim Heal Res Rev. 2014;24(6):130–4. https://doi.org/10.1017/S1466252314000140
9. Buczinski S, Forté G, Francoz D, Bélanger AM. Comparison of thoracic auscultation, clinical score, and ultrasonography as indicators of bovine respiratory disease in preweaned dairy calves. J Vet Intern Med. 2014;28(1):234–42. https://doi.org/10.1111/jvim.12251.
10. Holschbach CL, Raabis SM, Ollivett TL. Effect of antibiotic treatment in preweaned Holstein calves after experimental bacterial challenge with Pasteurella multocida. J Dairy Sci. 2019;102(12):11359–69. https://doi.org/10.3168/jds.2019-16992.
11. Rademacher RD, Buczinski S, Tripp HM, Edmonds MD, Johnson EG. Systematic thoracic ultrasonography in acute bovine respiratory disease of feedlot steers: impact of lung consolidation on diagnosis and prognosis in a case-control study. Bov Pract. 2014;48(1):1–10. https://doi.org/ https://doi.org/10.21423/bovine-vol48no1p1-10.
12. Ollivett TL, Buczinski S. On-Farm Use of Ultrasonography for Bovine Respiratory Disease. Vet Clin North Am - Food Anim Pract. 2016;32(1):19–35. https://doi.org/10.1016/j.cvfa.2015.09.001.
13. Babkine M, Blond L. Ultrasonography of the Bovine Respiratory System and Its Practical Application. Vet Clin North Am - Food Anim Pract. 2009;25(3):633–49. https://doi.org/10.1016/j .cvfa.2009.07.001.
14. Rabeling B, Rehage J, Döpfer D, Scholz H. Ultrasonographic findings in calves with respiratory disease. Vet Rec. 1998;143(17):468–71. https://doi.org/10.1136/vr.143.17.468.
15. Ollivett TL, Caswell JL, Nydam D V., Duffield T, Leslie KE, Hewson J, et al. Thoracic Ultrasonography and Bronchoalveolar Lavage Fluid Analysis in Holstein Calves with Subclinical Lung Lesions. J Vet Intern Med. 2015;29(6):1728–34. https://doi .org/10.1111/jvim.13605.
16. Cramer MC, Ollivett TL. Growth of preweaned, group-housed dairy calves diagnosed with respiratory disease using clinical respiratory scoring and thoracic ultrasound—A cohort study. J Dairy Sci. 2019;102(5):4322–31. http://dx.doi.org/10.3168/jds.2018-15420.
17. Jung C, Bostedt H. Thoracic ultrasonography technique in newborn calves and description of normal and pathological findings. Vet Radiol \& Ultrasound. 2004;45(4):331–5. https://doi.org/10.1111/j.1740-8261.2004.04063.
18. Adams EA, Buczinski S. Short communication: Ultrasonographic assessment of lung consolidation postweaning and survival to the first lactation in dairy heifers. J Dairy Sci. 2016;99(2):1465–70. https://doi.org/10.3168/jds.2015-10260.
19. Braun U, Pusterla N, Flückiger M. Ultrasonographic findings in cattle with pleuropneumonia. Vet Rec. 1997;141(1):12–7. https://doi.org/10.1136/vr.141.1.12.
20. Buczinski S, Buathier C, Bélanger AM, Michaux H, Tison N, Timsit E. Inter-rater agreement and reliability of thoracic ultrasonographic findings in feedlot calves, with or without naturally occurring bronchopneumonia. J Vet Intern Med. 2018;32(5):1787–92. https://doi.org/10.1111/jvim.15257.
21. Ollivett T. Understanding the diagnosis and risk factors for respiratory disease in dairy calves. PhD thesis. Department of Population Medicine, The University of Guelph. Guelph, Canada. 2014; (May).
22. Lee FCY, Jenssen C, Dietrich CF. A common misunderstanding in lung ultrasound: The comet tail artefact. Med Ultrason. 2018;20(3):379–84. http://dx.doi.org/10.11152/mu-1573.
23. Teixeira AGV, McArt JAA, Bicalho RC. Thoracic ultrasound assessment of lung consolidation at weaning in Holstein dairy heifers: Reproductive performance and survival. J Dairy Sci [Internet]. 2017;100(4):2985–91. http://dx.doi.org/10.3168/jds.2016-12016.
24. Dunn TR, Ollivett TL, Renaud DL, Leslie KE, LeBlanc SJ, Duffield TF, et al. The effect of lung consolidation, as determined by ultrasonography, on first-lactation milk production in Holstein dairy calves. J Dairy Sci. 2018;101(6):5404–10. http://dx.doi.org/10.3168/jds.2017-13870
25. Sáadatnia, A.; Mohammadi, G.R.; Azizzadeh, M.; Mirshahi, A.; Mohieddini, A.A.; Buczinski, S. Effect of Ultrasonographic Lung Consolidation on Health and Growth in Dairy Calves: A Longitudinal Study. J Dairy Sci. 2023, S0022-0302(23)00494-0, http://dx.doi.org/10.3168/jds.2023-23296.
26. Pardon B, Buczinski S, Deprez PR. Accuracy and inter-rater reliability of lung auscultation by bovine practitioners when compared with ultrasonographic findings. Vet Rec. 2019;185(4):1–4, https://doi.org/10.1136/vr.105238.
27. Cuevas-Gómez I, McGee M, Sánchez JM, O’Riordan E, Byrne N, McDaneld T, et al. Association between clinical respiratory signs, lung lesions detected by thoracic ultrasonography and growth performance in pre‐weaned dairy calves. Ir Vet J. 2021;74(1):1–9, http://dx.doi.org/10.1186/s13620-021-00187-1.