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1.
Aust Vet J ; 101(6): 230-247, 2023 Jun.
Article in English | MEDLINE | ID: covidwho-2255938

ABSTRACT

Bovine respiratory disease (BRD) has been identified as the most significant infectious disease of feedlot cattle in eastern Australia.1 Bovine respiratory disease causes economic loss due to medication costs, mortalities, excessive feed inputs associated with increased time on feed, reduced sale prices and associated labour costs. Bovine respiratory disease is a complex multifactorial condition with multiple animal, environmental and management risk factors predisposing cattle to illness. A range of microorganisms are implicated in BRD with at least four viral and five bacterial species commonly involved individually or in combination. The viruses most commonly associated with BRD in Australia are bovine herpesvirus 1 (BHV1), bovine viral diarrhoea virus (BVDV or bovine pestivirus), bovine parainfluenza 3 virus (PI3) and bovine respiratory syncytial virus (BRSV). More recently, bovine coronavirus has been identified as a potential viral contributor to BRD in Australia.2 A number of bacterial species have also been recognised as important to the BRD complex; these include Mannheimia haemolytica, Pasteurella multocida, Histophilus somni, Trueperella pyogenes and Mycoplasma bovis. Although one or more of the pathogens listed above can be isolated from clinical cases of BRD, there is no evidence that infection alone causes serious illness. This indicates that, in addition to specific infectious agents, other factors are crucial for the development of BRD under field conditions. These can be categorised as environmental, animal and management risk factors. These risk factors are likely to exert their effects through multiple pathways including reductions in systemic and possibly local immunity. For example, stressors such as weaning, handling at saleyards, transport, dehydration, weather conditions, dietary changes, comingling and pen competition might reduce the effectiveness of the immune system. Reduced immunocompetence can allow opportunistic infection of the lower airways with potential pathogens leading to the development of BRD. The objective of this paper is to critically review the evidence for management practices aimed at reducing the incidence of BRD in Australian feedlot cattle. Predisposing factors (Table 1) largely beyond the control of most feedlots, such as weather and exposure to respiratory viruses, are discussed separately, but these factors can generate indirect prevention responses that are discussed under the preventative practices categories. The current practices are classified as either animal preparation practices (Table 2) or feedlot management practices (Table 3).


Subject(s)
Bovine Respiratory Disease Complex , Cattle Diseases , Animals , Cattle , Australia/epidemiology , Bovine Respiratory Disease Complex/epidemiology , Bovine Respiratory Disease Complex/prevention & control , Bovine Respiratory Disease Complex/microbiology , Cattle Diseases/epidemiology , Cattle Diseases/microbiology , Cattle Diseases/prevention & control , Diarrhea Viruses, Bovine Viral , Incidence , Mannheimia haemolytica
2.
Vet Microbiol ; 280: 109701, 2023 May.
Article in English | MEDLINE | ID: covidwho-2239145

ABSTRACT

A hierarchical cluster analysis was used to classify outbreaks of bovine respiratory disease (BRD; n = 156) in natural groups according to the detection of nine pathogens (parainfluenza 3 virus (PI-3), bovine respiratory syncytial virus (BRSV), bovine coronavirus (BCV), bovine viral diarrhea virus (BVDV), and bovine herpesvirus 1 (BHV-1), Mannheimia haemolytica, Pasteurella multocida, Histophilus somni, and Mycoplasma bovis. Pathogens were detected by individual q-PCRs. Two clusters were identified. Cluster 1 was characterized by a relatively high frequency (40-72%) of four BRD-associated viruses, supporting their primary involvement in BRD. Cluster 2 was characterized by frequencies of PI-3, BRSV, or BVDV below 10% each. P. multocida and M. haemolytica were detected with high frequencies in both clusters (P > 0.05), while M. bovis and H. somni showed a significantly higher frequency in cluster 1and 2, respectively. Outbreaks in cluster 1 were associated with preweaning calves younger than 5 months (OR 2.2; 95% CI 1.1-4.5) and with cold months, whereas cluster 2 was associated with fattening calves older than 5 months after arrival to feedlots and without any seasonality. Thus, in addition to the classic epidemiological BRD pattern characterized by the primary involvement of viruses occurring preferably during winter and affecting young calves, there is a second pattern in which viruses would be less relevant, affecting mainly calves older than 5 months at any time of the year. This study allows a better understanding of the BRD epidemiology, which can be useful when implementing management and prophylaxis measures for a better control of this disease.


Subject(s)
Cattle Diseases , Diarrhea Viruses, Bovine Viral , Mannheimia haemolytica , Pasteurella multocida , Respiratory Tract Diseases , Animals , Cattle , Cattle Diseases/epidemiology , Respiratory Tract Diseases/veterinary , Pasteurella multocida/genetics , Disease Outbreaks/veterinary , Cluster Analysis
3.
J Vet Med Sci ; 84(11): 1543-1550, 2022 Nov 14.
Article in English | MEDLINE | ID: covidwho-2065087

ABSTRACT

In this study, the viral genome extraction performance of automatic nucleic acid extractors and manual nucleic acid extraction kits was compared. We showed that compared with manual kits, the automatic extractors showed superior genome extraction performance using bovine viral diarrhea virus (BVDV) genome-positive cattle sera and bovine coronavirus/infectious bovine rhinotracheitis virus-spiked cattle nasal swabs. In addition, the subgenotyping of BVDV strains detected in Tokachi Province in Japan during 2016-2017 was performed. Results showed that most of these BVDV strains belonged to subgenotype 1b, while few strains belonged to subgenotypes 1a and 2a. This study showed the high applicability of automatic nucleic acid extractors in extracting multiple viral genomes and the dominant subgenotype of BVDV in Tokachi.


Subject(s)
Bovine Virus Diarrhea-Mucosal Disease , Cattle Diseases , Diarrhea Virus 1, Bovine Viral , Diarrhea Viruses, Bovine Viral , Nucleic Acids , Cattle , Animals , RNA, Viral/genetics , Japan , Genotype , Diarrhea Viruses, Bovine Viral/genetics , Diarrhea/veterinary , Magnetic Phenomena , Diarrhea Virus 1, Bovine Viral/genetics , Phylogeny
4.
Antivir Chem Chemother ; 30: 20402066221103960, 2022.
Article in English | MEDLINE | ID: covidwho-1862063

ABSTRACT

BACKGROUND: Bovine viral diarrhea virus (BVDV), bovine respiratory syncytial virus (BRSV). and bovine coronavirus (BCV) threaten the productivity of cattle worldwide. Development of therapeutics that can control the spread of these viruses is an unmet need. The present research was designed to explore the in vitro antiviral activity of the Nerium oleander derived cardiac glycoside oleandrin and a defined N. oleander plant extract (PBI-05204) containing oleandrin. METHODS: Madin Darby Bovine Kidney (MDBK) cells, Bovine Turbinate (BT) cells, and Human Rectal Tumor-18 (HRT-18) cells were used as in vitro culture systems for BVDV, BRSV and BCV, respectively. Cytotoxicity was established using serial dilutions of oleandrin or PBI-05204. Noncytotoxic concentrations of each drug were used either prior to or at 12 h and 24 h following virus exposure to corresponding viruses. Infectious virus titers were determined following each treatment. RESULTS: Both oleandrin as well as PBI-05204 demonstrated strong antiviral activity against BVDV, BRSV, and BCV, in a dose-dependent manner, when added prior to or following infection of host cells. Determination of viral loads by PCR demonstrated a concentration dependent decline in virus replication. Importantly, the relative ability of virus produced from treated cultures to infect new host cells was reduced by as much as 10,000-fold at noncytotoxic concentrations of oleandrin or PBI-05204. CONCLUSIONS: The research demonstrates the potency of oleandrin and PBI-05204 to inhibit infectivity of three important enveloped bovine viruses in vitro. These data showing non-toxic concentrations of oleandrin inhibiting infectivity of three bovine viruses support further investigation of in vivo antiviral efficacy.


Subject(s)
Diarrhea Viruses, Bovine Viral , Nerium , Respiratory Syncytial Virus, Bovine , Animals , Antiviral Agents/pharmacology , Cardenolides/pharmacology , Cardenolides/therapeutic use , Cattle , Heterocyclic Compounds, 4 or More Rings , Rhinovirus
5.
Comp Immunol Microbiol Infect Dis ; 74: 101581, 2021 Feb.
Article in English | MEDLINE | ID: covidwho-926806

ABSTRACT

In this study, primary and immortalized bovine intestinal epithelial cells (BIECs) were characterized for the expression of surface carbohydrate moieties. Primary BIEC-c4 cells showed staining greater than 90 % for 16 lectins but less than 50 % staining for four lectins. Immortalized BIECs showed significantly different lectin binding profile for few lectins compared to BIEC-c4 cells. BIEC-c4 cells were studied for infectivity to E. coli, Salmonella enterica, bovine rotavirus, bovine coronavirus, and bovine viral diarrhea virus. Bovine strain E. coli B41 adhered to BIEC-c4 cells and Salmonella strains S. Dublin and S. Mbandaka showed strong cell invasion. BIEC-c4 cells were susceptible to bovine rotavirus. LPS stimulation upregulated IL-10, IL-8, and IL-6 expression and Poly I:C upregulated TLR 8 and TLR 9 expression. This study provides important knowledge on the glycoconjugate expression profile of primary and immortalized BIECs and infectivity and immune responses of primary BIECs to bacterial and viral pathogens or ligands.


Subject(s)
Cell Line , Epithelial Cells/immunology , Epithelial Cells/microbiology , Lectins/metabolism , Toll-Like Receptors/immunology , Animals , Cattle , Coronavirus, Bovine , Diarrhea Viruses, Bovine Viral , Escherichia coli , Immunity , Interleukins/immunology , Rotavirus , Salmonella enterica
6.
Vet Clin North Am Food Anim Pract ; 36(2): 321-332, 2020 Jul.
Article in English | MEDLINE | ID: covidwho-825203

ABSTRACT

Advances in viral detection in bovine respiratory disease (BRD) have resulted from advances in viral sequencing of respiratory tract samples. New viruses detected include influenza D virus, bovine coronavirus, bovine rhinitis A, bovine rhinitis B virus, and others. Serosurveys demonstrate widespread presence of some of these viruses in North American cattle. These viruses sometimes cause disease after animal challenge, and some have been found in BRD cases more frequently than in healthy cattle. Continued work is needed to develop reagents for identification of new viruses, to confirm their pathogenicity, and to determine whether vaccines have a place in their control.


Subject(s)
Cattle Diseases/virology , Coronavirus, Bovine/genetics , Diarrhea Viruses, Bovine Viral/genetics , Genetic Testing/veterinary , Herpesvirus 1, Bovine/genetics , Respiratory Tract Diseases/veterinary , Animals , Cattle , Coronavirus, Bovine/isolation & purification , Diarrhea Viruses, Bovine Viral/isolation & purification , Genomics/methods , Herpesvirus 1, Bovine/isolation & purification , Respiratory Tract Diseases/virology
7.
J Vet Diagn Invest ; 32(4): 513-526, 2020 Jul.
Article in English | MEDLINE | ID: covidwho-683369

ABSTRACT

Bovine coronaviruses (BoCVs) have been found in respiratory tissues in cattle and frequently associated with bovine respiratory disease (BRD); however, pathogenesis studies in calves are limited. To characterize the pathogenesis and pathogenicity of BoCV isolates, we used 5 different BoCV strains to inoculate colostrum-deprived calves, ~ 2-5 wk of age. Later, to determine if dual viral infection would potentiate pathogenicity of BoCV, calves were inoculated with BoCV alone, bovine viral diarrhea virus (BVDV) alone, or a series of dual-infection (BVDV-BoCV) schemes. A negative control group was included in all studies. Clinical signs and body temperature were monitored during the study and samples collected for lymphocyte counts, virus isolation, and serology. During autopsy, gross lesions were recorded and fixed tissues collected for histopathology and immunohistochemistry; fresh tissues were collected for virus isolation. Results suggest increased pathogenicity for isolate BoCV OK 1776. Increased body temperature was found in all virus-inoculated groups. Lung lesions were present in calves in all dual-infection groups; however, lesions were most pronounced in calves inoculated with BVDV followed by BoCV inoculation 6 d later. Lung lesions were consistent with mild-to-moderate interstitial pneumonia, and immunohistochemistry confirmed the presence of BoCV antigen. Our studies demonstrated that BVDV-BoCV dual infection may play an important role in BRD pathogenesis, and timing between infections seems critical to the severity of lesions.


Subject(s)
Antibodies, Viral/blood , Bovine Virus Diarrhea-Mucosal Disease/virology , Coronavirus, Bovine/isolation & purification , Diarrhea Virus 1, Bovine Viral/isolation & purification , Respiratory Tract Diseases/veterinary , Animals , Bovine Virus Diarrhea-Mucosal Disease/pathology , Cattle , Colostrum , Diarrhea/veterinary , Diarrhea Viruses, Bovine Viral/immunology , Female , Pregnancy , Respiratory Tract Diseases/pathology , Respiratory Tract Diseases/virology
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