BM_2025v16n6

Bioscience Methods 2025, Vol.16, No.6, 299-307 http://bioscipublisher.com/index.php/bm 3 06 Aboshady H., Mandonnet N., Stear M., Arquet R., Bédèrina M., Sarry J., Tosser-Klopp G., Klopp C., Johansson A., Jonas E., and Bambou J., 2019, Transcriptome variation in response to gastrointestinal nematode infection in goats, PLoS ONE, 14(6): e0218719. https://doi.org/10.1371/journal.pone.0218719 Alam M., Omar A., Faruque M., Notter D., Periasamy K., Mondal M., Sarder M., Shamsuddin M., Cao J., Du X., Wu Z., and Zhao S., 2019, Single nucleotide polymorphisms in candidate genes are significantly associated with resistance to Haemonchus contortus infection in goats, Journal of Animal Science and Biotechnology, 10: 30. https://doi.org/10.1186/s40104-019-0327-8 Álvarez I., Fernández I., SoudréA., Traore A., Pérez-Pardal L., Sanou M., Tapsoba S., Menéndez-Arias N., and Goyache F., 2019, Identification of genomic regions and candidate genes of functional importance for gastrointestinal parasite resistance traits in Djallonkésheep of Burkina Faso, Archives Animal Breeding, 62: 313-323. https://doi.org/10.5194/aab-62-313-2019 Arzık Y., Kızılaslan M., Behrem S., Piel L., White S., and Çınar M., 2025, Exploring genetic factors associated with Moniezia spp., tapeworm resistance in central anatolian merino sheep via GWAS Approach, Animals, 15(6): 812. https://doi.org/10.3390/ani15060812 Chan A., Kaenkaew C., Pakdee W., Sungpradit S., and Thaenkham U., 2025, Emergence of dual drug-resistant strongylids in goats: first phenotypic and genotypic evidence from Ratchaburi Province central Thailand, BMC Veterinary Research, 21(1): 245. https://doi.org/10.1186/s12917-025-04700-4 Costa K., Araujo A., De Souza Fonseca P., Silva H., Menegatto L., De Freitas L., Cardoso C., Filho C., Otto P., Da Costa R., Stafuzza N., and Paz C., 2025, Genetic parameters and haplotype-based genome-wide association study of indicator traits for gastrointestinal parasite resistance in Santa Ines sheep, Veterinary Parasitology, 337: 110498. https://doi.org/10.1016/j.vetpar.2025.110498 D'Amico G., Potărniche A., Tucă B., and Györke A., 2025, Occurrence of internal parasites and anthelmintic resistance in goats, Animals, 15(7): 1024. https://doi.org/10.3390/ani15071024 De La Chevrotière C., Bambou J., Arquet R., Jacquiet P., and Mandonnet N., 2012, Genetic analysis of the potential role of IgA and IgE responses against Haemonchus contortus in parasite resistance of Creole goats, Veterinary Parasitology, 186(3-4): 337-343. https://doi.org/10.1016/j.vetpar.2011.11.071 Durigan M., Cardoso-Silva C., Ciampi-Guillardi M., Toledo-Silva G., Mori G., Franco R., and Souza A., 2018, Molecular genotyping diversity studies and high-resolution molecular markers unveiled by microsatellites in Giardia duodenalis, PLoS Neglected Tropical Diseases, 12(11): e0006928. https://doi.org/10.1371/journal.pntd.0006928 Elieser S., Hartati H., Nasrulloh M., Hutasoit R., Herliatika A., and Handiwirawan E., 2024, Resistance of boer and kacang goats and their crosses to Haemonchus contortus infection, Journal of Animal and Feed Sciences, 35(1): 29-41. https://doi.org/10.22358/jafs/192243/2024 Estrada-Reyes Z., Tsukahara Y., Amadeu R., Goetsch A., Gipson T., Sahlu T., Puchala R., Wang Z., Hart S., and Mateescu R., 2019, Signatures of selection for resistance to Haemonchus contortus in sheep and goats, BMC Genomics, 20(1): 735. https://doi.org/10.1186/s12864-019-6150-y Heckendorn F., Bieber A., Werne S., Saratsis A., Maurer V., and Stricker C., 2017, The genetic basis for the selection of dairy goats with enhanced resistance to gastrointestinal nematodes, Parasite, 24: 33. https://doi.org/10.1051/parasite/2017033 Huang W.Z., and Hong Z.M., 2025, Observation of immune gene expression in goats under FMD virus infection, Molecular Microbiology Research, 15(1): 10-17. https://doi.org/10.5376/mmr.2025.15.0002 Kalaldeh A., Gibson J., Lee S., Gondro C., and Van Der Werf J., 2019, Detection of genomic regions underlying resistance to gastrointestinal parasites in Australian sheep, Genetics Selection Evolution, 51: 37. https://doi.org/10.1186/s12711-019-0479-1 Kalule F., Vudriko P., Nanteza A., Ekiri A., Alafiatayo R., Betts J., Betson M., Mijten E., Varga G., and Cook A., 2023, Prevalence of gastrointestinal parasites and molecular identification of beta-tubulin mutations associated with benzimidazole resistance in Haemonchus contortus in goats from selected districts of Uganda, Veterinary Parasitology Regional Studies and Reports, 42: 100889. https://doi.org/10.1016/j.vprsr.2023.100889 Mpofu T., Nephawe K., and Mtileni B., 2020, Correlates of resistance to gastro-intestinal parasites infection in South African communal indigenous goat populations, American Journal of Animal and Veterinary Sciences, 15: 176-184. https://doi.org/10.3844/ajavsp.2020.176.184 Mpofu T., Nephawe K., and Mtileni B., 2022, Prevalence and resistance to gastrointestinal parasites in goats: a review, Veterinary World, 15: 2442-2452. https://doi.org/10.14202/vetworld.2022.2442-2452 Ndaba B., Faber E., Marufu M., Pretorius A., and Tshilwane S., 2025, RNA‐sequencing in elucidating immune responses to Haemonchus contortus infection in small ruminants: systematic review, Parasite Immunology, 47(5): e70009. https://doi.org/10.1111/pim.70009

RkJQdWJsaXNoZXIy MjQ4ODYzNA==