Bibliografia
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Brizuela, J., Kajeekul, R., Roodsant, T.J., Riwload, A., Boueroy, P., Pattanapongpaibool, A., Thaipadungpanit, J., Jenjaroenpun, P., Wongsurawat, T., Batty, E.M., Van Der Putten, B.C.L., Schultsz, C., Kerdsin, A., 2023. Streptococcus suis outbreak caused by an emerging zoonotic strain with acquired multi-drug resistance in Thailand. Microb. Genom. 9. https://doi.org/10.1099/mgen.0.000952.
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Cucco, L., Panicci`a, M., Massacci, F.R., Morelli, A., Ancora, M., Mangone, I., Di Pasquale, A., Luppi, A., Vio, D., Camm`a, C., Magistrali, C.F., 2022. New sequence types and antimicrobial drug–resistant strains of streptococcus suis in diseased pigs, Italy, 2017–2019. Emerg. Infect. Dis. 28, 139–147. https://doi.org/10.3201/ eid2801.210816.
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Mader, R., Damborg, P., Amat, J.-P., Bengtsson, B., Bour´ely, C., Broens, E.M., Busani, L., Crespo-Robledo, P., Filippitzi, M.-E., Fitzgerald, W., Kaspar, H., Madero, C.M., Norstr¨om, M., Nyk¨asenoja, S., Pedersen, K., Pokludova, L., Urdahl, A.M., Vatopoulos, A., Zafeiridis, C., Madec, J.-Y., on behalf of EU-JAMRAI, 2021. Building the European Antimicrobial Resistance Surveillance network in veterinary medicine (EARS-Vet). Eurosurveillance 26. https://doi.org/10.2807/1560-7917. ES.2021.26.4.2001359.
Maes, D., Sibila, M., Kuhnert, P., Segal´es, J., Haesebrouck, F., Pieters, M., 2018. Update on Mycoplasma hyopneumoniae infections in pigs: knowledge gaps for improved disease control. Transbound. Emerg. Dis. 65, 110–124. https://doi.org/10.1111/ tbed.12677.
Meng, X.-J., Thiel, V., 2020. Emerging and re-emerging porcine viruses. Virus Res. 290, 198198. https://doi.org/10.1016/j.virusres.2020.198198.
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Moreno, L.Z., Da Costa, B.L.P., Matajira, C.E.C., Gomes, V.T.M., Mesquita, R.E., Silva, A. P.S., Moreno, A.M., 2016. Molecular and antimicrobial susceptibility profiling of Streptococcus dysgalactiae isolated from swine. Diagn. Microbiol. Infect. Dis. 86, 178–180. https://doi.org/10.1016/j.diagmicrobio.2016.07.020.
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Pallar´es, F., A˜n´on, J., Rodríguez-G´omez, I., G´omez-Laguna, J., Fabr´e, R., S´anchez- Carvajal, J., Ruedas-Torres, I., Carrasco, L., 2021. Prevalence of mycoplasma-like lung lesions in pigs from commercial farms from Spain and Portugal. Porc Health Manag 7, 26. https://doi.org/10.1186/s40813-021-00204-3.
Petrin, S., Orsini, M., Massaro, A., Olsen, J.E., Barco, L., Losasso, C., 2023. Phenotypic and genotypic antimicrobial resistance correlation and plasmid characterization in Salmonella spp. isolates from Italy reveal high heterogeneity among serovars. Front. Public Health 11, 1221351. https://doi.org/10.3389/fpubh.2023.1221351.
Romani-Cremaschi, U., Zoppi, S., Mattioda, V., Audino, T., Marsili, L., Varello, K., Iulini, B., Marra, C., Zoccola, R., Battistini, R., Dondo, A., Garibaldi, F., Berio, E., Pautasso, A., Rosso, M., Ascheri, D., Casalone, C., Grattarola, C., Giorda, F., 2023. Morganella morganii septicemia and concurrent renal crassicaudiasis in a Cuvier’s beaked whale (Ziphius cavirostris) stranded in Italy. Front. Mar. Sci. 9, 1058724. https://doi.org/10.3389/fmars.2022.1058724.
Schediwy, M., Balmer, S., Bredtmann, C., Hadorn, D., Bless, P., Rosato, G., Sydler, T., Harisberger, M., Graage, R., Saura-Martinez, H., Posthaus, H., Gurtner, C., 2018. Reviving post-mortem diagnostics as a tool to increase porcine herd health and strengthen early detection of pig diseases – the PathoPig project 2014-2016. SAT 160, 375–384. https://doi.org/10.17236/sat00164.
Soliani, L., Rugna, G., Prosperi, A., Chiapponi, C., Luppi, A., 2023. Salmonella infection in pigs: disease, prevalence, and a link between swine and human health. Pathogens 12, 1267. https://doi.org/10.3390/pathogens12101267.
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Uru´en, C., García, C., Fraile, L., Tommassen, J., Arenas, J., 2022. How Streptococcus suis escapes antibiotic treatments. Vet. Res 53, 91. https://doi.org/10.1186/s13567-022- 01111-3.
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TORNA INDIETROEradicazione di M. hyopneumoniae nel suino: gli strumenti ci sono
I metodi storicamente impiegati per ridurre l’incidenza delle infezioni da M. hyopneumoniae non sembrano attualmente funzionare adeguatamente. I programmi di controllo per questo microrganismo si dividono in due macrocategorie: i programmi che prevedono l’eradicazione dell’agente patogeno e quelli che non la prevedono; a quest’ultima categoria appartengono le strategie che si basano su tre concetti: gestione, prevenzione e trattamento.