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Antimicrobico-resistenza in un’ottica One Health

Bibliografia

 

1. Adedeji, W.A. 2016. The treasure called antibiotics. Ann. Ib. Postgrad. Med. 4(2):56-57. PMID: 28337088; PMCID: PMC5354621.

2. Aminov, R.I. 2010. A brief history of the antibiotic era: lessons learned and challenges for the future. Front. Microbiol. 8;1: 134. doi: 10.3389/fmicb.2010.00134.

3. Armstrong, G.L., Conn, L.A, Pinner, R.W. 1999. Trends in infectious disease mortality in the United States during the 20th century. JAMA. 1999 6;281(1):61-6. doi: 10.1001/jama.281.1.61.

4. Blondeau, J.M., Hansen, G., Metzler, K., Hedlin, P. 2004. The Role of PK/PD Parameters to Avoid Selection and Increase of Resistance: Mutant Prevention Concentration. J Chemother. 16 Suppl 3:1-19. doi: 10.1080/1120009x.2004.11782371.

5. Bozzo,G., Corrente, M., Testa, G., Casalino, G., Dimuccio, M.M., Circella, E., Brescia, N., Barrasso, R., Celentano,F.E. 2021. Animal Welfare, Health and the Fight against Climate Change: One Solution for Global Objectives. Agriculture. 11(12):1248. doi.org/10.3390/agriculture11121248.

6. Browne, K., Chakraborty, S., Chen, R., Willco, M.D., Black D,S., Walsh, W.R., Kumar, N. 2020. A New Era of Antibiotics: The Clinical Potential of Antimicrobial Peptides. Int. J. Mol. Sci. 24;21(19):7047. doi: 10.3390/ijms21197047.

7. Butaye, P., Devriese, L.A.,  Haesebrouck, F. 2003. Antimicrobial growth promoters used in animal feed: effects of less well known antibiotics on gram-positive bacteria. Clin. Microbiol. Rev. 16(2):175-88. doi: 10.1128/CMR.16.2.175-188.2003.

8. Clemente, JC., Pehrsson, E.C., Blaser, M.J., Sandhu, K., Gao, Z., Wang, B., Magris, M., Hidalgo, G., Contreras, M., Noya-Alarcón, Ó., Lander, O., McDonald, J., Cox, M., Walter, J., Oh, P.L., Ruiz, J.F, Rodriguez, S., Shen, N., Song, S.J., Metcalf, J., Knight, R., Dantas, G., Dominguez-Bello, M.G. 2015. The microbiome of uncontacted Amerindians. Sci Adv. 3;1(3):e1500183. doi: 10.1126/sciadv.1500183.

9. Council of European Union. Council Regulation 1831/2003 of 22 September 2003 on Additives for Use in Animal Nutrition. Available online: https://eur-lex.europa.eu/legal content/EN/TXT/?uri=CELEX%3A32003R1831 (accessed on 18 October 2003).

10. Council of European Union. Council Regulation 2019/6 of 11 December 2018 on Veterinary Medicinal Products and Repealing Directive 2001/82/EC. Available online: https://eur-lex.europa.eu/legal-content/en/ALL/?uri=CELEX:32019R0006 (accessed on 27 January 2019).

11. Dadgostar, P. 2019.  Antimicrobial Resistance: Implications and Costs. Infect. Drug Resist. 20;12:3903-3910. doi: 10.2147/IDR.S234610.

12. De Briyne, N., Atkinson, J., Pokludová, L., Borriello, S.P., Price, S. 2013. Factors influencing antibiotic prescribing habits and use of sensitivity testing amongst veterinarians in Europe. Vet. Rec.  16;173(19):475. doi: 10.1136/vr.101454.

13. Decreto Legislativo 7 dicembre 2023, Adeguamento della normativa nazionale alle disposizioni del regolamento (UE) 2019/6 del Parlamento europeo e del Consiglio dell'11 dicembre 2018 relativo ai medicinali veterinari. n. 218.  GU n. 2 del 3-1-2024. (accessed on December 26th 2024).

14. Diana, A., Lorenzi, V., Penasa, M., Magni, E., Alborali, G.L., Bertocchi, L., De Marchi, M. 2020. Effect of welfare standards and biosecurity practices on antimicrobial use in beef cattle. Sci Rep. 1;10(1):20939. doi: 10.1038/s41598-020-77838-w.

15. European Commission. Commission Implementing Regulation (EU) 2022/1255 of 19 July 2022 designating antimicrobials or groups of antimicrobials reserved for treatment of certain infections in humans, in accordance with Regulation (EU) 2019/6 of the European Parliament and of the Council (Text with EEA relevance) https://data.europa.eu/eli/reg_impl/2022/1255/oj. (accessed on December 26th 2024).

16. European Medicine Agency: sales trends (mg/PCU) of antibiotic VMPs for food producing animals https://www.ema.europa.eu/en/documents/report/italy-sales-trends-mgpcu-antibiotic-veterinary-medicinal-products-food-producing-animals-2010-2021_en.pdf. (accessed on December 26th 2024).

17. European Medicine Agency: infographic on categorization of antimicrobials https://fve.org/ema-infographics-on-categorization-of-antimicrobials/ (accessed on June 20th  2020). (accessed on December 26th 2024).

18. European Union. 2022 Special Eurobarometer 522 (EC Eurobarometer). 2022. “Antimicrobial Resistance” Report. 10.2875/16102 https://doi.org/10.2875/16102. (accessed on December 26th 2024).

19. Fleming, A. 1945  Nobel Lecture. NobelPrize.org. Nobel Prize Outreach AB 2024. https://www.nobelprize.org/prizes/medicine/1945/fleming/lecture. (accessed on December 27th 2024).

20. Galgano, M., Capozza, P., Pellegrini, F., Cordisco, M., Sposato, A., Sblano, S., Camero, M., Lanave, G., Fracchiolla, G., Corrente, M., Cirone, F., Trotta, A., Tempesta, M., Buonavoglia, D., Pratelli A.  2022. Antimicrobial Activity of Essential Oils Evaluated In Vitro against Escherichia coli and Staphylococcus aureus. Antibiotics 20;11(7):979. doi: 10.3390/antibiotics11070979.

21. García-Díez, J., Moura, D., Grispoldi, L., Cenci-Goga, B., Saraiva, S., Silva, F., Saraiva, C., Ausina, J.  2024. Salmonella spp. in Domestic Ruminants, Evaluation of Antimicrobial Resistance Based on the One Health Approach-A Systematic Review and Meta-Analysis. Vet. Sci. 14;11(7):315. doi: 10.3390/vetsci11070315.

22. Giufrè, M., Mazzolini, E., Cerquetti, M., Brusaferro, S. 2021. CCM2015 One-Health ESBL-producing Escherichia coli Study Group. Extended-spectrum β-lactamase-producing Escherichia coli from extraintestinal infections in humans and from food-producing animals in Italy: a 'One Health' study. Int. J. Antimicrob. Agents. 58(5):106433. doi: 10.1016/j.ijantimicag.2021.106433.

23. Guardabassi. L., Apley, M., Olsen, J.E., Toutain, P.L., Weese, S. 2018. Optimization of Antimicrobial Treatment to Minimize Resistance Selection. Microbiol. Spectr. 6(3):10. doi: 10.1128/microbiolspec.ARBA-0018-2017.

24. Ho, C.S., Wong, C.T.H., Aung, T.T., Lakshminarayan, R., Metha, J.S., Rauz, S., McNally, A., Kintses, B., Peacock, S.J., de la Fuente-Nunez, C., Hancock, R.E.W., Ting, D.S.J. 2024. Antimicrobial resistance: a concise update. Lancet Microbe. 12:100947. doi: 10.1016/j.lanmic.2024.07.010.

25. Hollis, A., Maybarduk, P.  2015. Antibiotic Resistance Is a Tragedy of the Commons That Necessitates Global Cooperation. J. Law Med. Ethics. 43 Suppl 3:33-7. doi: 10.1111/jlme.12272.

26. Hoekstra, J., Zomer, A.L., Rutten, V.P.M.G., Benedictus, L., Stegeman, A., Spaninks, M.P., Bennedsgaard, T.W., Biggs, A., De Vliegher, S., Mateo, D.H., Huber-Schlenstedt, R., Katholm, J., Kovács, P., Krömker, V., Lequeux, G., Moroni, P., Pinho, L., Smulski, S., Supré, K., Swinkels, J.M., Holmes, M.A., Lam, T.J.G.M., Koop, G.  2020. Genomic analysis of European bovine Staphylococcus aureus from clinical versus subclinical mastitis. Sci. Rep. 23;10(1):18172. doi: 10.1038/s41598-020-75179-2.

27. Holman,  D.B., McAllister, T.A., Topp, E., Wright, A.D., Alexander, T.W. 2015. The nasopharyngeal microbiota of feedlot cattle that develop bovine respiratory disease. Vet. Microbiol. 2015 22;180(1-2):90-95. doi: 10.1016/j.vetmic.2015.07.031.

28. Intorre, L., Vanni, M., Meucci, V., Tognetti, R., Cerri, D., Turchi, B., Cammi, G., Arrigoni, N., Garbarino, C.  2013. Antimicrobial resistance of Staphylococcus aureus isolated from bovine milk in Italy from 2005 to 2011. Large Anim. Rev. 19:287-291.

29. Jamrozik, E., Heriot, G.S. 2022. Ethics and antibiotic resistance. Br. Med. Bull. 21;141(1):4-14. doi: 10.1093/bmb/ldab030.

30. Jukes, T.H., Williams W.L. 1953. Nutritional effects of antibiotics. Pharmacol. Rev.  5(4):381-420. PMID: 13120335.

31. Kirchhelle, C.  2018. Swann Song: Antibiotic Regulation in British Livestock Production (1953-2006). Bull Hist Med. 2018;92(2):317-350. doi: 10.1353/bhm.2018.0029.

32. Laumay, F., Benchetrit, H., Corvaglia., A.R, van der Mee-Marquet, N., François, P.  2021. The Staphylococcus aureus CC398 Lineage: An Evolution Driven by the Acquisition of Prophages and Other Mobile Genetic Elements. Genes. 12(11):1752. https://doi.org/10.3390/genes12111752.

33. Lees, O., Svendsen, O., Wiuff, C.  Strategies to minimise the impact of antimicrobial treatment on the selection of resistant bacteria. In Guardabassi L., Jensen L.B.,  Kruse, H. (Eds.):Guide to Antimicrobial use in Animals, Blackwell Publishing, 2008; pp. 77-101.

34. Li, X., Mowlaboccus, S., Jackson, B., Cai, C., Coombs, G.W.  2024. Antimicrobial resistance among clinically significant bacteria in wildlife: An overlooked one health concern. Int. J. Antimicrob. Agents. 64(3):107251. doi: 10.1016/j.ijantimicag.2024.107251.

35. Lillo, E., Cordisco. M., Trotta, A., Greco, G., Carbonari, A., Rizzo, A., Sciorsci, R.L., Corrente,M. 2023. Evaluation of antibacterial oxygen/ozone mixture in vitro activity on bacteria isolated from cervico-vaginal mucus of cows with acute metritis. Theriogenol.15;196:25-30. doi: 10.1016/j.theriogenology.2022.10.031.

36. Locatelli, C., Scaccabarozzi, L., Pisoni, G., Moroni, P.  2010. CTX-M1 ESBL-producing Klebsiella pneumoniae subsp. pneumoniae isolated from cases of bovine mastitis. J. Clin. Microbiol. 48(10):3822-3. doi: 10.1128/JCM.00941-10.

37. Ma, T., McAllister, T.A., Guan, L.L. 2021.A review of the resistome within the digestive tract of livestock. J. Anim. Sci. Biotechnol. 11;12(1):121. doi: 10.1186/s40104-021-00643-6.

38. Mandujano-Hernández, A., Martínez-Vázquez. A.V., Paz-González, A.D., Herrera-Mayorga, V., Sánchez-Sánchez, M., Lara-Ramírez, E.E., Vázquez, K., de Jesús de Luna-Santillana, E., Bocanegra-García, V., Rivera, G. 2024. The Global Rise of ESBL-Producing Escherichia coli in the Livestock Sector: A Five-Year Overview. Animals 27;14(17):2490. doi: 10.3390/ani14172490.

39. Martínez, J.L. 2008.  Antibiotics and antibiotic resistance genes in natural environments. Science. (2008) 321:365–7. 10.1126/science.1159483. doi.org/10.1126/science.1159483

40. Ministero della Salute. Classy farm. Sistema informatico del Ministero della Salute per il monitoraggio degli allevamenti e la loro caratterizzazione in base al rischio. https://www.classyfarm.it/index.php. (accessed on December 27th 2024).

41. Ministero della Salute. Direzione generale della sanità animale e dei farmaci veterinari. Sistema informativo nazionale della Farmacosorveglianza. Ricetta veterinaria elettronica. https://www.ricettaveterinariaelettronica.it/index.html. (accessed on December 27th 2024).

42. Munk, P., Yang, D., Röder, T., Maier, L., Petersen, T.N., Duarte, A.S.R., Clausen, P.T.L.C., Brinch ,C., Van Gompel, L., Luiken, R., Wagenaar, J.A., Schmitt, H., Heederik, D.J.J., Mevius, D.J., Smit, L.A.M.; EFFORT Consortium,  Bossers, A., Aarestrup, F.M. 2024.  The European livestock resistome. mSystems. 16;9(4):e0132823. doi: 10.1128/msystems.01328-23.

43. Naranjo-Lucena, A., Slowey, R. 2023. Antimicrobial resistance in bovine mastitis pathogens: A review of genetic determinants and prevalence of resistance in European countries. J. Dairy Sci.106(1):1-23. doi: 10.3168/jds.2022-22267.

44. Noyes NR, Yang, X, Linke, L.M., Magnuson, R.J., Dettenwanger, A., Cook, S., Geornaras, I., Woerner, D.E., Gow, S.P., McAllister, T.A., Yang, H., Ruiz, J., Jones, K.L., Boucher, C.A., Morley, P.S., Belk, K.E.  2016. Resistome diversity in cattle and the environment decreases during beef production. Elife. r 8;5:e13195. doi: 10.7554/eLife.13195.

45. Panchal, J., Patel, A., Patel, S., Goswami, D. 2024 Understanding mastitis: Microbiome, control strategies, and prevalence - A comprehensive review. Microb. Pathog. 187:106533. doi: 10.1016/j.micpath.2023.106533.

46. Paramasivam, R., Gopal, D.R., Dhandapani, R., Subbarayalu, R., Elangovan, M.P., Prabhu, B., Veerappan, V., Nandheeswaran, A., Paramasivam, S., Muthupandian, S. 2023. Is AMR in Dairy Products a Threat to Human Health? An Updated Review on the Origin, Prevention, Treatment, and Economic Impacts of Subclinical Mastitis. Infect. Drug Resist. 6;16:155-178. doi: 10.2147/IDR.S384776.

47. Perry, J., Waglechner, N., Wright, G.  2016. The Prehistory of Antibiotic Resistance. Cold Spring Harb. Perspect.  Med. 1;6(6):a025197. doi: 10.1101/cshperspect.a025197.

48. Pires, A.J., Pereira, G., Fangueiro, D., Bexiga, R., Oliveira, M. 2024. When the solution becomes the problem: a review on antimicrobial resistance in dairy cattle. Future Microbiol.  2;19(10):903-929. doi: 10.2217/fmb-2023-0232.

49. Pratelli, A., Cirone, F., Capozza, P., Trotta, A., Corrente, M., Balestrieri, A., Buonavoglia, C.  2021. Bovine respiratory disease in beef calves supported long transport stress: An epidemiological study and strategies for control and prevention. Res. Vet. Sci. 135:450-455. doi: 10.1016/j.rvsc.2020.11.002.

Rollin, B.  2001. Ethics, science and antimicrobial resistance.  J. Agric. Environ. Ethics. 14 (1):29-37. 

50. Singer, R.S., Porter, L.J., Thomson, D.U., Gage, M., Beaudoin, A., Wishnie, J.K. 2019. Raising Animals Without Antibiotics: U.S. Producer and Veterinarian Experiences and Opinions. Front. Vet. Sci. 6; 6: 452. doi: 10.3389/fvets.2019.00452.

51. Sneeringer, S.; Bowman, M., Clancy, M. 2019. The U.S. and EU Animal Pharmaceutical Industries in the Age of Antibiotic Resistance. Dep. Agric. Econ. Res. Serv. 2019, 264-280. DOI: 10.22004/ag.econ.290026.

52. Swann, M.M. 1969. Report of the Joint Committee on the use of Antibiotics in Animal Husbandry and Veterinary Medicine https://wellcomecollection.org/works/cqvewh54. (accessed on December 27th 2024).

53. Threlfall, E.J.  2002. Antimicrobial drug resistance in Salmonella: problems and perspectives in food- and water-borne infections. FEMS Microbiol. Rev. 26(2):141-8. doi: 10.1111/j.1574-6976.2002.tb00606.x.

54. Touza-Otero, L., Landin, M., Diaz-Rodriguez, P.  2024. Fighting antibiotic resistance in the local management of bovine mastitis. Biomed. Pharmacother. 170:115967. doi: 10.1016/j.biopha.2023.115967.

55. Trotta, A., Cirilli, M., Marinaro, M., Bosak, S., Diakoudi, G., Ciccarelli, S., Paci, S., Buonavoglia, D., Corrente, M. 2021. Detection of multi-drug resistance and AmpC β-lactamase/extended-spectrum β-lactamase genes in bacterial isolates of loggerhead sea turtles (Caretta caretta) from the Mediterranean Sea. Mar. Pollut. Bull.164:112015. doi: 10.1016/j.marpolbul.2021.112015. Epub 2021 Jan 26. PMID: 33513540.

56. Vikram, A., Rovira, P., Agga, G.E., Arthur, T.M., Bosilevac, J.M., Wheeler, T.L., Morley P.S., Belk, K.E., Schmidt, J.W. 2017. Impact of “Raised without Antibiotics” Beef Cattle Production Practices on Occurrences of Antimicrobial Resistance. Appl. Environ.  Microbiol. 83:e01682-17.doi.org/10.1128/AEM.01682-17

57. Vogwill, T., MacLean, R.C. 2015.  The genetic basis of the fitness costs of antimicrobial resistance: a meta-analysis approach. Evol. Appl. 8(3):284-95. doi: 10.1111/eva.12202.

58. Waseem, H., Williams, M.R., Jameel, S., Hashsham, S.A.  2018. Antimicrobial Resistance in the Environment. Water Environ. Res. 1;90(10):865-884. doi: 10.2175/106143018X15289915807056.

59. World Organisation for Animal Health.  2021. OIE Annual Report on Antimicrobial Agents Intended for Use in Animals. Available online: https://www.oie.int/app/uploads/2021/05/a-fifth-annual-report-amr.pdf (accessed on  December 9th 2021).

60. World Health Organisation. 2024 WHO List of Medically Important Antimicrobials: a risk management tool for mitigating antimicrobial resistance due to non-human use. https://cdn.who.int/media/docs/default-source/gcp/who-mia-list-2024-lv.pdf. (accessed on December 27th 2024).

61. Zipfel, P.F., Skerka, C.  2022. From magic bullets to modern therapeutics: Paul Ehrlich, the German immunobiologist and physician coined the term 'complement'. Mol. Immunol.150:90-98. doi: 10.1016/j.molimm.2022.08.002.

 

 

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