Bibliografia
1. Ablondi, M., Dadousis, C., Vasini, M., Eriksson, S., Mikko, S., and Sabbioni, A. (2020a). Genetic diversity and signatures of selection in a native Italian horse breed based on SNP data. Anim. (Basel) 10, 1005. doi:10.3390/ani10061005
2. Ablondi, M., Summer, A., Vasini, M., Simoni, M., and Sabbioni, A. (2020b). Genetic parameters estimation in an Italian horse native breed to support the conversion from agricultural uses to riding purposes. J. Anim. Breed. Genet. 137, 200-210. doi:10.1111/jbg.12425
3. Ablondi, M., Vasini, M., Beretti, V., Superchi, P., and Sabbioni, A. (2018). Exploring genetic diversity in an Italian horse native breed to develop strategies for preservation and management. J. Anim. Breed. Genet. 135, 450-459. doi:10.1111/jbg.12357
4. Alexander, D. H., Novembre, J., and Lange, K. (2009). Fast model-based estimation of ancestry in unrelated individuals. Genome Res. 19, 1655-1664. doi:10.1101/gr.094052.109
5. Bailey, E., Petersen, J. L., and Kalbfleisch, T. S. (2022). Genetics of Thoroughbred racehorse performance. Annu. Rev. Anim. Biosci. 10, 131-150. doi:10.1146/annurev-animal-020420-035235
6. Barbato, M., Orozco-terWengel, P., Tapio, M., and Bruford, M. W. (2015). SNeP: A tool to estimate trends in recent effective population size trajectories using genome-wide SNP data. Front. Genet. 6, 109. doi:10.3389/fgene.2015.00109
7. Barcaccia, G., Felicetti, M., Galla, G., Capomaccio, S., Cappelli, K., Albertini, E., et al. (2013). Molecular analysis of genetic diversity, population structure and inbreeding level of the Italian Lipizzan horse. Livest. Sci. 151, 124-133. doi:10.1016/j.livsci.2012.11.022
8. Bigi, D., and Perrotta, G. (2012). Genetic structure and differentiation of the Italian catria horse. J. Hered. 103, 134-139. doi:10.1093/jhered/esr121
9. Bigi, D., and Zanon, A. (2008). Atlante delle razze autoctone. Bovini, equini, ovicaprini, suini allevati in italia. Italy: Edagricole.
10. Bruzzone, A., Iamartino, D., Blasi, M., and Pilla, F. (2003). The Pentro horse: Genetic characterization by microsatellite markers. Italian J. Animal Sci. 2, 223-230. doi:10.4081/ijas.2003.223
11. Cardinali, I., Lancioni, H., Giontella, A., Capodiferro, M. R., Capomaccio, S., Buttazzoni, L., et al. (2016). An overview of ten Italian horse breeds through mitochondrial DNA. PLOS ONE 11, e0153004. doi:10.1371/journal.pone.0153004
12. Criscione, A., Mastrangelo, S., D’Alessandro, E., Tumino, S., Di Gerlando, R., Zumbo, A., et al. (2022). Genome-wide survey on three local horse populations with a focus on runs of homozygosity pattern. J. Anim. Breed. Genet. 139, 540-555. doi:10.1111/jbg.12680
13. Criscione, A., Moltisanti, V., Chies, L., Marletta, D., and Bordonaro, S. (2015). A genetic analysis of the Italian Salernitano horse. Animal 9, 1610-1616. doi:10.1017/S1751731115001019
14. Dovc, P., Kavar, T., Sölkner, H., and Achmann, R. (2006). Development of the Lipizzan horse breed. Reprod. Domest. Anim. 41, 280-285. doi:10.1111/j.1439-0531.2006.00726.x
15. Druml, T., Baumung, R., and Sölkner, J. (2008). Morphological analysis and effect of selection for conformation in the Noriker draught horse population. Livest. Sci. 115, 118-128. doi:10.1016/j.livsci.2007.06.015
16. Eusebi, P. G., Martinez, A., and Cortes, O. (2020). Genomic tools for effective conservation of livestock breed diversity. Diversity 12, 8. doi:10.3390/d12010008
17. Felicetti, M., Lopes, M. S., Verini-Supplizi, A., Machado, Ada C., Silvestrelli, M., Mendonça, D., et al. (2010). Genetic diversity in the Maremmano horse and its relationship with other European horse breeds. Anim. Genet. 41 (2), 53-55. doi:10.1111/j.1365-2052.2010.02102.x
18. Felsenstein, J. (1993). PHYLIP (phylogeny inference package). version 3.5 c.
19. Fitak, R. R., Antonides, J. D., Baitchman, E. J., Bonaccorso, E., Braun, J., Kubiski, S., et al. (2019). The expectations and challenges of wildlife disease research in the era of genomics: Forecasting with a horizon scan-like exercise. J. Hered. 110, 261-274. doi:10.1093/jhered/esz001
Frantz, L. A., Schraiber, J. G., Madsen, O., Megens, H. J., Cagan, A., Bosse, M., et al. (2015). Evidence of long-term gene flow and selection during domestication from analyses of Eurasian wild and domestic pig genomes. Nat. Genet. 47, 1141-1148. doi:10.1038/ng.3394
20. Fu, M., and Li, Y. (2022). The origin and domestication history of domestic horses and the domestication characteristics of breeds. Yi Chuan= Hered. 44, 216-229. doi:10.16288/j.yczz.21-260
21. Giontella, A., Cardinali, I., Lancioni, H., Giovannini, S., Pieramati, C., Silvestrelli, M., et al. (2020). Mitochondrial DNA survey reveals the lack of accuracy in Maremmano horse studbook records. Anim. (Basel) 10, 839. doi:10.3390/ani10050839
22. Giontella, A., Pieramati, C., Silvestrelli, M., and Sarti, F. M. (2019). Analysis of founders and performance test effects on an autochthonous horse population through pedigree analysis: Structure, genetic variability and inbreeding. Animal 13, 15-24. doi:10.1017/S1751731118001180
23. Kavar, T., Brem, G., Habe, F., Sölkner, J., and Dovč, P. (2002). History of Lipizzan horse maternal lines as revealed by mtDNA analysis. Genet. Sel. Evol. 34, 635-648. doi:10.1186/1297-9686-34-5-635
24. Librado, P., Fages, A., Gaunitz, C., Leonardi, M., Wagner, S., Khan, N., et al. (2016). The evolutionary origin and genetic makeup of domestic horses. Genetics 204, 423-434. doi:10.1534/genetics.116.194860
25. Librado, P., Khan, N., Fages, A., Kusliy, M. A., Suchan, T., Tonasso-Calvière, L., et al. (2021). The origins and spread of domestic horses from the Western Eurasian steppes. Nature 598, 634-640. doi:10.1038/s41586-021-04018-9
26. Mancin, E., Ablondi, M., Mantovani, R., Pigozzi, G., Sabbioni, A., and Sartori, C. (2020). Genetic variability in the Italian heavy draught horse from pedigree data and genomic information. Anim. (Basel) 10, 1310. doi:10.3390/ani10081310
27. McCue, M. E., Bannasch, D. L., Petersen, J. L., Gurr, J., Bailey, E., Binns, M. M., et al. (2012). A high density SNP array for the domestic horse and extant perissodactyla: Utility for association mapping, genetic diversity, and phylogeny studies. PLOS Genet. 8, e1002451. doi:10.1371/journal.pgen.1002451
28. Milanesi, M., Capomaccio, S., Vajana, E., Bomba, L., Garcia, J. F., Ajmone-Marsan, P., et al. (2017). Bite: an R package for biodiversity analyses. bioRxiv, 181610.
29. Park, S. D., Magee, D. A., McGettigan, P. A., Teasdale, M. D., Edwards, C. J., Lohan, A. J., et al. (2015). Genome sequencing of the extinct Eurasian wild aurochs, Bos primigenius, illuminates the phylogeography and evolution of cattle. Genome Biol. 16, 234. doi:10.1186/s13059-015-0790-2
30. Petersen, J. L., Mickelson, J. R., Cothran, E. G., Andersson, L. S., Axelsson, J., Bailey, E., et al. (2013). Genetic diversity in the modern horse illustrated from genome-wide SNP data. PLOS ONE 8, e54997. doi:10.1371/journal.pone.0054997
31. Pickrell, J., and Pritchard, J. (2012). Inference of population splits and mixtures from genome-wide allele frequency data. PLoS Genet. 8, e1002967. doi:10.1371/journal.pgen.1002967
32. Purcell, S., Neale, B., Todd-Brown, K., Thomas, L., Ferreira, M. A., Bender, D., et al. (2007). Plink: A tool set for whole-genome association and population-based linkage analyses. Am. J. Hum. Genet. 81, 559-575. doi:10.1086/519795
33. Wallner, B., Vogl, C., Shukla, P., Burgstaller, J. P., Druml, T., and Brem, G. (2013). Identification of genetic variation on the horse Y chromosome and the tracing of male founder lineages in modern breeds. PLOS ONE 8, e60015. doi:10.1371/journal.pone.0060015
34. Zuccaro, A., Bordonaro, S., Criscione, A., Guastella, A. M., Perrotta, G., Blasi, M., et al. (2008). Genetic diversity and admixture analysis of Sanfratellano and three other Italian horse breeds assessed by microsatellite markers. Animal 2, 991-998. doi:10.1017/S1751731108002255
TORNA INDIETRO
Dolore e disfunzione cervicale equina: patologia, diagnosi e trattamento
L'interesse per il rachide cervicale come causa di dolore o disfunzione sta diventando sempre più importante per molti ippiatri. Molti cavalli vengono infatti visitati per scarse prestazioni, mentre altri presenteranno comportamenti anomali, talora pericolosi.
Corsi FAD per ippiatri:
- Le micosi delle tasche gutturali
- Ciclo estrale e diagnosi di gravidanza
- Iter diagnostico del cavallo in colica
I corsi, che non erogano crediti formativi, sono accessibili dalla piattaforma e-learning nella sezione "Eventi non accreditati"