Author:
Mohamed Suffian Nurul Suhana,Nor Amdan Nur Asyura,Bakon Sophia Karen,Mohd Hatta Siti Khairiyah,Mohamad Jamil Norashirene,Rasol Rafidah
Abstract
Introduction: Escherichia coli is a typical microflora found in the intestines of livestock, but regular exposure to antibiotics puts them under selection pressure to acquire antibiotic resistance. This study aimed to identify and characterise the antibiotic resistance profile of E. coli isolated in cow faeces collected from Tobiar Modern farm located in Kedah, Malaysia. Materials and methods: The antibiotic susceptibility test (AST) was conducted to assess the sensitivity of E. coli isolates to tetracycline (30 µg/mL), erythromycin (15 µg/mL) and ampicillin (10 µg/mL) using disk diffusion method followed by Minimum Inhibitory Concentration (MIC) assay. For molecular identification of selected resistant isolates, 16S rDNA gene sequencing was carried out. Results: Six (Isolates A1, P1, P2, P3, P4, and P5) out of 30 isolates were identified as E. coli based on their colonial morphological characteristics. The tests for catalase, indole, MR, TSI, and lactose fermentation all yielded positive results for the isolates, whereas the tests for oxidase, citrate, and VP yielded negative results. All six isolates were found to be erythromycin resistant. The Isolate P4 was observed as a multidrug resistant (MDR) bacterial strain since it exhibited resistance to all tested antibiotics. The MDR Isolate P4 is identified as E. coli strain LWY24 using molecular identification with a 99.7% identity rate. Conclusion: This study offers important preliminary information on the incidence of antibiotic-resistant bacteria (ARB) on this particular local livestock farm. This data is useful for developing plans to reduce the prevalence of ARB in livestock.
Publisher
Universiti Putra Malaysia
Reference25 articles.
1. 1. Singh AK, Das S, Singh S, Gajamer VR, Pradhan N, Lepcha YD, Tiwari HK. Prevalence of antibiotic resistance in commensal Escherichia coli among the children in rural hill communities of Northeast India. PLoS One. 2018;13(6): e0199179.
2. 2. Stein RA, Katz DE. Escherichia coli, cattle and the propagation of disease. FEMS Microbiol Lett. 2017;364(6):1–11.
3. 3. Jing Yu W, Pan T, En Hui C, Li Qin W, Wan Hua L, Juan Juan R, Ning, W, Yuan Hao Q, Hung Jen L. Characterization of antimicrobial resistance and related resistance genes in Escherichia coli strains isolated from chickens in China during 2007-2012. African Journal of Microbiology Research. 2013;7(46):5238–5247.
4. 4. Johura FT, Parveen R, Islam A, Sadique A, Rahim MN, Monira S, Khan AR, Ahsan S, Ohnishi M, Watanabe H, Chakraborty S, George CM, Cravioto A, Navarro A, Hasan B, Alam M. Occurrence of hybrid Escherichia coli strains carrying shiga toxin and heat-stable toxin in livestock of Bangladesh. Front Public Health. 2017; 4:287.
5. 5. Centers for Disease and Prevention. Escherichia coli O26 Infections Linked to Chipotle Mexican Grill Restaurants (Final Update). U.S. Department of Agriculture’s Food Safety and Inspection Service; 2015. Available from http://www.cdc.gov/ecoli/2015/O26-11-15/index.html.