Original Article

Detection of Antimicrobial Resistance in Escherichia coli and Salmonella Isolated from Flies Trapped at Animal and Poultry Farm Premises

Year: 2021 | Month: June | Volume 11 | Issue 3

References (30)

1.Barreiro, C., Albano, H., Silva, J. and Teixeira, P. 2013. Role of flies as vectors of foodborne pathogens in rural areas. ISRN Microbiol., 7: 718780.

View at Google Scholar

2.Blaak, H., Hamidjaja, R.A., van Hoek, A.H., de Heer, L., de Roda Husman, A.M. and Schets, F.M. 2014. Detection of extended-spectrum beta-lactamase (ESBL)-producing Escherichia coli on flies at poultry farms. Appl. Environ. Microbiol., 80(1): 239-246.

View at Google Scholar

3.Clemente, L., Manageiro, V., Correia, I., Amaro, A., Albuquerque, T., Themudo, P., Ferreira, E. and Caniça, M. 2019. Revealing mcr-1-positive ESBL-producing Escherichia coli strains among Enterobacteriaceae from food-producing animals (bovine, swine and poultry) and meat (bovine and swine), Portugal, 2010-2015. Int. J. Food. Microbiol., 296: 37-42.

View at Google Scholar

4.Clinical Laboratory Standard Institute (CLSI). 2017. Performance standards for antimicrobial susceptibility testing. 27th Ed., CLSI supplement M100 Clinical and Laboratory Standards Institute, Wayne, PA.

View at Google Scholar

5.Collinet-Adler, S., Babji, S., Francis, M., Kattula, D., Premkumar, P. S., Sarkar, R., Mohan, V.R., Ward, H., Kang, G., Balraj, V. and Naumova, E.N. 2015. Environmental factors associated with high fly densities and diarrhea in Vellore, India. Appl. Environ. Microbiol., 81(17): 6053-6058.

View at Google Scholar

6.Dierikx, C., van der Goot, J., Fabri, T., van Essen-Zandbergen, A., Smith, H. and Mevius, D. 2013. Extended-spectrum-β- lactamase- and AmpC-β-lactamase-producing Escherichia coli in Dutch broilers and broiler farmers. J. Antimicrob. Chemother., 68(1): 60-67.

View at Google Scholar

7.El Garch, F., de Jong, A., Bertrand, X., Hocquet, D. and Sauget, M. 2018. mcr-1-like detection in commensal Escherichia coli and Salmonella spp. from food-producing animals at slaughter in Europe. Vet. Microbiol., 213: 42-46.

View at Google Scholar

8.Fukuda, A., Usui, M., Okubo, T., Tagaki, C., Sukpanyatham, N. and Tamura Y. 2018. Co-harboring of cephalosporin (bla)/ colistin (mcr) resistance genes among Enterobacteriaceae from flies in Thailand. FEMS Microbiol. Lett., 365(16): fny178.

View at Google Scholar

9.Hald, B., Skovgård, H., Bang, D.D., Pedersen, K., Dybdahl, J., Jespersen, J.B. and Madsen, M. 2004. Flies and Campylobacter infection of broiler flocks. Emerg. Infect. Dis., 10(8): 1490-1492.

View at Google Scholar

10.Hernández, M., Iglesias, M.R., Rodríguez-Lázaro, D., Gallardo, A., Quijada, N., Miguela-Villoldo, P., Campos, M.J., Píriz, S., López-Orozco, G., de Frutos, C., Sáez, J. L., Ugarte-Ruiz, M., Domínguez, L. and Quesada, A. 2017. Co-occurrence of colistin-resistance genes mcr-1 and mcr-3 among multidrugresistant Escherichia coli isolated from cattle, Spain, September 2015. Euro Surveillance., 22(31): 30586.

View at Google Scholar

11.Holt, P.S., Geden, C.J., Moore, R.W. and Gast, R.K. 2007. Isolation of Salmonella enterica serovar Enteritidis from houseflies (Musca domestica) found in rooms containing Salmonella serovar Enteritidis-challenged hens. Appl. Environ. Microbiol., B 19): 6030-6035.

View at Google Scholar

12.Holt, P.S., Geden, C.J., Moore, R.W. and Gast, R.K. 2007. Isolation of Salmonella enterica serovar Enteritidis from houseflies (Musca domestica) found in rooms containing Salmonella serovar Enteritidis-challenged hens. Appl. Environ. Microbiol., B 19): 6030-6035.

View at Google Scholar

13.Huang, X., Yu, L., Chen, X., Zhi, C., Yao, X., Liu, Y., Wu, S., Guo, Z., Yi, L., Zeng, Z. and Liu, J. H. 2017. High Prevalence of Colistin Resistance and mcr-1 Gene in Escherichia coli Isolated from Food Animals in China. Front. Microbiol., 8: 562.

View at Google Scholar

14.Huang, X., Yu, L., Chen, X., Zhi, C., Yao, X., Liu, Y., Wu, S., Guo, Z., Yi, L., Zeng, Z. and Liu, J. H. 2017. High Prevalence of Colistin Resistance and mcr-1 Gene in Escherichia coli Isolated from Food Animals in China. Front. Microbiol., 8: 562.

View at Google Scholar

15.Irrgang, A., Roschanski, N., Tenhagen, B.A., Grobbel, M., Skladnikiewicz-Ziemer, T., Thomas, K., Roesler, U. and Käsbohrer, A. 2016. Prevalence of mcr-1 in E. coli from livestock and food in Germany, 2010-2015. PloS One, 11(7): e0159863.

View at Google Scholar

16.Issa, R. 2019. Musca domestica acts as transport vector hosts. Bull. Nat. Res. Centre., 43: 73.

View at Google Scholar

17.Junqueira, A., Ratan, A., Acerbi, E., Drautz-Moses, D.I., Premkrishnan, B., Costea, P.I., Linz, B., Purbojati, R. W., Paulo, D.F., Gaultier, N.E., Subramanian, P., Hasan, N.A., Colwell, R.R., Bork, P., Azeredo-Espin, A., Bryant, D.A. and Schuster, S.C. 2017. The microbiomes of blowflies and houseflies as bacterial transmission reservoirs. Sci. Rep., 7(1): 16324.

View at Google Scholar

18.Lindeberg, Y.L., Egedal, K., Hossain, Z.Z., Phelps, M., Tulsiani, S., Farhana, I., Begum, A. and Jensen, P.K.M. 2018. Can Escherichia coli fly? The role of flies as transmitters of E. coli to food in an urban slum in Bangladesh. Trop. Med. Int. Health, 23(1): 2-9.

View at Google Scholar

19.Malhotra-Kumar, S., Xavier, B.B., Das, A.J., Lammens, C., Hoang, H.T., Pham, N.T. and Goossens, H. 2016. Colistinresistant Escherichia coli harbouring mcr-1 isolated from food animals in Hanoi, Vietnam. Lancet Infect. Dis., 16(3): 286-297.

View at Google Scholar

20.Marshall, B.M. and Levy, S.B. 2011. Food animals and antimicrobials: impacts on human health. Clin. Microbiol. Rev., 24(4): 718-733.

View at Google Scholar

21.Mellor, K.C., Petrovska, L., Thomson, N.R., Harris, K., Reid, S. and Mather, A.E. 2019. Antimicrobial Resistance Diversity Suggestive of Distinct Salmonella Typhimurium Sources or Selective Pressures in Food-Production Animals. Front. Microbiol., 10: 708.

View at Google Scholar

22.Nazari, M., Mehrabi, T., Hosseini, S. M., and Alikhani, M. Y. 2017. Bacterial contamination of adult house flies (Musca domestica) and sensitivity of these bacteria to various antibiotics, captured from Hamadan city, Iran. J. Clin. Diagn. Res., 11 (4): DC04-DC07.

View at Google Scholar

23.Onwugamba, F.C., Fitzgerald, J.R., Rochon, K., Guardabassi, L., Alabi, A., Kühne, S., Grobusch, M.P. and Schaumburg, F. 2018. The role of ‘filth flies’ in the spread of antimicrobial resistance. Travel. Med. Infect. Dis., 22: 8-17.

View at Google Scholar

24.Principe, L., Piazza, A., Mauri, C., Anesi, A., Bracco, S., Brigante, G., Casari, E., Agrappi, C., Caltagirone, M., Novazzi, F., Migliavacca, R., Pagani, L. and Luzzaro, F. 2018. Multicenter prospective study on the prevalence of colistin resistance in Escherichia coli: relevance of mcr-1- positive clinical isolates in Lombardy, Northern Italy. Infect. Drug Resist., 11: 377-385.

View at Google Scholar

25.Rebelo, A.R., Bortolaia, V., Kjeldgaard, J.S., Pedersen, S.K., Leekitcharoenphon, P., Hansen, I.M., Guerra, B., Malorny, B., Borowiak, M., Hammerl, J.A., Battisti, A., Franco, A., Alba, P., Perrin-Guyomard, A., Granier, S. A., De Frutos Escobar, C., Malhotra-Kumar, S., Villa, L., Carattoli, A. and Hendriksen, R.S. 2018. Multiplex PCR for detection of plasmid-mediated colistin resistance determinants, mcr-1, mcr-2, mcr-3, mcr- 4 and mcr-5 for surveillance purposes. Euro Surveillance., 23(6): 17-00672.

View at Google Scholar

26.Sen, S.K. and Fletcher, T.B. 1962. Veterinary Entomology and Acarology for India. 1st Ed., Indian council of Agricultural Research, New Delhi.

View at Google Scholar

27.Singh, S., Pathak, A., Kumar, A., Rahman, M., Singh, A., Gonzalez-Zorn, B. and Prasad, K.N. 2018. Emergence of chromosome-borne colistin resistance gene mcr-1 in clinical isolates of Klebsiella pneumoniae from India. Antimicrob. Agents Chemother., 62(2): e01885-17.

View at Google Scholar

28.Sobur, M.A., Ievy, S., Haque, Z.F., Nahar, A., Zaman, S.B. and Rahman, M.T. 2019. Emergence of colistinresistant Escherichia coli in poultry, house flies, and pond water in Mymensingh, Bangladesh. J. Adv. Vet. Anim. Res., 6(1): 50-53.

View at Google Scholar

29.Wang, C., Feng, Y., Liu, L., Wei, L., Kang, M. and Zong, Z. 2020. Identification of novel mobile colistin resistance gene mcr-10. Emerg. Microbes. Infect., 9(1): 508-516.

View at Google Scholar

30.Zhang, J., Wang, J., Chen, L., Yassin, A.K., Kelly, P., Butaye, P., Li, J., Gong, J., Cattley, R., Qi, K. and Wang, C. 2017. Housefly (Musca domestica) and Blow Fly (Protophormia terraenovae) as vectors of bacteria carrying colistin resistance genes. Appl. Environ. Microbiol., 84(1): e01736-17.

View at Google Scholar

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