Resistance of strongylid nematodes to anthelmintic drugs and driving factors at Czech goat farms
Language English Country Great Britain, England Media electronic
Document type Journal Article
Grant support
LTC19018
Ministerstvo Školství, Mládeže a Tělovýchovy
PubMed
33663490
PubMed Central
PMC7934424
DOI
10.1186/s12917-021-02819-8
PII: 10.1186/s12917-021-02819-8
Knihovny.cz E-resources
- Keywords
- Caprine gastrointestinal nematodes, Control, Dual resistance, Farmer experience, In vitro test, Stocking rate,
- MeSH
- Anthelmintics pharmacology MeSH
- Benzimidazoles MeSH
- Nematoda drug effects growth & development MeSH
- Ivermectin MeSH
- Goats MeSH
- Larva MeSH
- Drug Resistance * MeSH
- Dairying methods MeSH
- Nematode Infections drug therapy veterinary MeSH
- Goat Diseases drug therapy parasitology MeSH
- Surveys and Questionnaires MeSH
- Animals MeSH
- Check Tag
- Animals MeSH
- Publication type
- Journal Article MeSH
- Geographicals
- Czech Republic MeSH
- Names of Substances
- Anthelmintics MeSH
- benzimidazole MeSH Browser
- Benzimidazoles MeSH
- Ivermectin MeSH
BACKGROUND: Strongylid nematode infections may negatively affect both animal health and welfare, with deleterious consequences for livestock productivity. Many farmers in recent decades have relied on anthelmintics as the sole strategy of control, but the intensive use of these chemotherapeutics has led to the development of anthelmintic resistance (AR). Knowledge of both the efficacy of anthelmintics and factors promoting AR are essential to effectively control nematode infections, but no information on these topics for goats in the Czech Republic (CR) is available. This survey aimed to determine the occurrence of AR at Czech goat farms and to identify risk factors for the development of AR. A total of 24 herds of dairy goats across the CR were evaluated using in vitro tests for detecting AR, and a questionnaire survey was carried out to evaluate factors associated with AR. RESULTS: Resistance against benzimidazoles was confirmed at 18 (75%) farms, and the level of resistance was high in four (22%) of the affected herds based on the egg hatch test. Ivermectin-resistant nematodes were detected in 13 (54%) herds using the larval development test; Teladorsagia/Trichostrongylus and Haemonchus were the predominant types of resistant larvae. Eight (62%) of the affected herds were evaluated as highly resistant to ivermectin. Eleven (46%) of the herds were resistant to both benzimidazoles and ivermectin. This report is the first on dual AR in the CR. A univariate logistic regression analysis indicated that a high stocking rate and farmer inexperience were significantly associated with ivermectin and benzimidazole resistance, respectively. CONCLUSIONS: The results of our survey suggest that AR is widespread amongst herds of dairy goats in the CR, likely due to inappropriate practices of pasture and health management. AR may be an issue for expanding dairy-goat production in the CR in the near future unless both veterinary practitioners and farmers widely adopt strategies to prevent the development of AR.
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