Prevalence of colistin resistance and antibacterial resistance in commensal Escherichia coli from chickens: An assessment of the impact of regulatory intervention in South Africa
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[1] V. Naidoo,et al. Do Pathogenic Escherichia coli Isolated from Gallus gallus in South Africa Carry Co-Resistance Toward Colistin and Carbapenem Antimicrobials? , 2023, Foodborne pathogens and disease.
[2] Q. Luo,et al. Prevalence of colistin resistance gene mcr-1 in Escherichia coli isolated from chickens in central China, 2014 to 2019. , 2022, Journal of global antimicrobial resistance.
[3] A. De Cesare,et al. The resistome of commensal Escherichia coli isolated from broiler carcasses “produced without the use of antibiotics”a , 2022, Poultry science.
[4] V. Naidoo,et al. Antimicrobial resistance and mcr-1 gene in Escherichia coli isolated from poultry samples submitted to a bacteriology laboratory in South Africa , 2021, Veterinary world.
[5] The European Union Summary Report on Antimicrobial Resistance in zoonotic and indicator bacteria from humans, animals and food in 2018/2019 , 2021, EFSA journal. European Food Safety Authority.
[6] B. Tenhagen,et al. Phenotypical antimicrobial resistance data of clinical and non-clinical Escherichia coli from poultry in Germany between 2014 and 2017 , 2020, PloS one.
[7] S. Essack,et al. Molecular Epidemiology of Antibiotic-Resistant Escherichia coli from Farm-to-Fork in Intensive Poultry Production in KwaZulu-Natal, South Africa , 2020, Antibiotics.
[8] I. Samanta,et al. Antimicrobial Resistance in Agri-Food Chain and Companion Animals as a Re-emerging Menace in Post-COVID Epoch: Low-and Middle-Income Countries Perspective and Mitigation Strategies , 2020, Frontiers in Veterinary Science.
[9] M. Mabelebele,et al. The Current Status of the Alternative Use to Antibiotics in Poultry Production: An African Perspective , 2020, Antibiotics.
[10] J. Dewulf,et al. Antimicrobial resistance prevalence in commensal Escherichia coli from broilers, fattening turkeys, fattening pigs and veal calves in European countries and association with antimicrobial usage at country level. , 2020, Journal of medical microbiology.
[11] P. Nordmann,et al. Occurrence of CTX-M-15 and MCR-1-producing Enterobacterales in pigs, Portugal; evidences of direct links with antibiotic selective pressure. , 2020, International journal of antimicrobial agents.
[12] T. V. Van Boeckel,et al. Global trends in antimicrobial resistance in animals in low- and middle-income countries , 2019, Science.
[13] Allison White,et al. Critical Importance of a One Health Approach to Antimicrobial Resistance , 2019, EcoHealth.
[14] X. Xia,et al. Association of colistin residues and manure treatment with the abundance of mcr-1 gene in swine feedlots. , 2019, Environment international.
[15] P. Collignon,et al. One Health—Its Importance in Helping to Better Control Antimicrobial Resistance , 2019, Tropical medicine and infectious disease.
[16] M. Anjum,et al. Molecular epidemiology of isolates with multiple mcr plasmids from a pig farm in Great Britain: the effects of colistin withdrawal in the short and long term , 2018, The Journal of antimicrobial chemotherapy.
[17] K. Nagy,et al. The European Union summary report on antimicrobial resistance in zoonotic and indicator bacteria from humans, animals and food in 2016 , 2018, EFSA journal. European Food Safety Authority.
[18] M. Mendelson,et al. A situational analysis of current antimicrobial governance, regulation, and utilization in South Africa. , 2017, International journal of infectious diseases : IJID : official publication of the International Society for Infectious Diseases.
[19] V. Naidoo,et al. Veterinary antimicrobial stewardship in South Africa , 2017 .
[20] E. Claas,et al. Prevalence of colistin resistance gene (mcr-1) containing Enterobacteriaceae in feces of patients attending a tertiary care hospital and detection of a mcr-1 containing, colistin susceptible E. coli , 2017, PloS one.
[21] F. Meyer,et al. Price formation and competitiveness of the South African broiler industry in the global context , 2017 .
[22] Yongning Wu,et al. China bans colistin as a feed additive for animals. , 2016, The Lancet. Infectious diseases.
[23] A. Zavascki,et al. Letter to the editor: Escherichia coli harbouring mcr-1 gene isolated from poultry not exposed to polymyxins in Brazil. , 2016, Euro surveillance : bulletin Europeen sur les maladies transmissibles = European communicable disease bulletin.
[24] V. Perreten,et al. Colistin Resistance Gene mcr-1 in Avian-Pathogenic Escherichia coli in South Africa , 2016, Antimicrobial Agents and Chemotherapy.
[25] M. Landgraf,et al. Silent dissemination of colistin-resistant Escherichia coli in South America could contribute to the global spread of the mcr-1 gene. , 2016, Euro surveillance : bulletin Europeen sur les maladies transmissibles = European communicable disease bulletin.
[26] Marc Mendelson,et al. The World Health Organization Global Action Plan for antimicrobial resistance. , 2015, South African medical journal = Suid-Afrikaanse tydskrif vir geneeskunde.
[27] Marius Gilbert,et al. Global trends in antimicrobial use in food animals , 2015, Proceedings of the National Academy of Sciences.
[28] M. van Vuuren,et al. A survey of antimicrobial usage in animals in South Africa with specific reference to food animals. , 2012, Journal of the South African Veterinary Association.
[29] M. Kuskowski,et al. Associations between multidrug resistance, plasmid content, and virulence potential among extraintestinal pathogenic and commensal Escherichia coli from humans and poultry. , 2012, Foodborne pathogens and disease.
[30] M. Henton,et al. Part VI. Antibiotic management and resistance in livestock production. , 2011, South African medical journal = Suid-Afrikaanse tydskrif vir geneeskunde.
[31] M. Horstkotte,et al. Evaluation of the MicroScan ESBL plus confirmation panel for detection of extended-spectrum beta-lactamases in clinical isolates of oxyimino-cephalosporin-resistant Gram-negative bacteria. , 2004, The Journal of antimicrobial chemotherapy.
[32] M. Vuuren,et al. Towards the establishment and standardization of a veterinary antimicrobial resistance surveillance and monitoring programme in South Africa. , 2004, The Onderstepoort journal of veterinary research.
[33] Pereira,et al. Prevalence of , 2021 .
[34] S. S. Lewerin,et al. ”The Swedish experience” – a summary on the Swedish efforts towards a low and prudent use of antibiotics in animal production , 2020 .
[35] Clinical,et al. Performance standards for antimicrobial susceptibility testing , 2019 .