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Original Research

Prevalence and Risk Factors of Mastitis and Isolation, Identification and Antibiogram of Staphylococcus Species from Mastitis Positive Zebu Cows in Toke Kutaye, Cheliya, and Dendi Districts, West Shewa Zone, Oromia, Ethiopia

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Pages 987-998 | Published online: 12 Mar 2021

References

  • CSA. Central Statistical Authority, Federal Democratic Republic of Ethiopia, Statistical Abstract. 2010.
  • FAO. Milking, Milk Production Hygiene, and Udder Health. Animal Production and Health Paper. 2003.
  • Sharma N, Maiti S, Sharma KK. Prevalence, etiology, and antibiogram of microorganisms associated with sub-clinical mastitis in buffaloes in durg, Chhattisgarh State (India). Int J Dairy Sci. 2007;2(2):145–151. doi:10.3923/ijds.2007.145.151
  • Getaneh AM, Gebremedhin EZ. Meta-analysis of the prevalence of mastitis and associated risk factors in dairy cattle in Ethiopia. Trop Anim Health Prod. 2017;49(4):697–705. doi:10.1007/s11250-017-1246-328185209
  • Zeryehun T, Aya T, Bayecha R. Study on prevalence, bacterial pathogens and associated risk factors of bovine mastitis in smallholder dairy farms in and around Addis Ababa, Ethiopia. J Anim Plant Sci. 2013;23(1):50–55.
  • Abebe R, Hatiya H, Abera M, Megersa B, Asmare K. Bovine mastitis: prevalence, risk factors and isolation of Staphylococcus aureus in dairy herds at Hawassa milk shed, South Ethiopia. BMC Vet Res. 2016;12(1):270. doi:10.1186/s12917-016-0905-327912754
  • Derib BT, Birhanu BT, Sisay T. Isolation and identification of methicilin-resistant Staphylococcus aureus from bovine mastitic milk in and around Wolaita Sodo, Southern Ethiopia. J Vet Sci Res. 2017;2(3):1–11.
  • Zeryehun T, Abera G. Prevalence and bacterial isolates of mastitis in dairy farms in selected districts of Eastern Hararghe Zone, Eastern Ethiopia. J Vet Med. 2017;2017:6498618. doi:10.1155/2017/649861828352648
  • Radostits OM, Gay CC, Hinchcliff KW, Constable PD. Mastitis in Veterinary Medicine: Text Textbook of the Disease of Cattle, Horse, Sheep, Pigs, and Goats. 10th ed. London: Elsevier; 2007.
  • Fetsch A, Johler S. Staphylococcus aureus as a foodborne pathogen. Curr Clin Microbiol Rep. 2018;5(2):88–96. doi:10.1016/B978-0-12-809671-0.00001-2
  • Simojoki H, Salomäki T, Taponen S, Iivanainen A, Pyörälä S. Innate immune response in experimentally induced bovine intramammary infection with Staphylococcus simulans and S. epidermidis. Vet Res. 2011;42(1):49. doi:10.1186/1297-9716-42-4921414189
  • Gizaw F, Kekeba T, Teshome F, et al. Distribution and antimicrobial resistance profile of coagulase-negative staphylococci from cattle, equipment, and personnel on a dairy farm and abattoir settings. Heliyon. 2020;6(3):e03606. doi:10.1016/j.heliyon.2020.e0360632258466
  • CLFDO. Cheliya Districts Livestock and Fishery Development Office; the Annual Report. Cheliya, Ethiopia; 2016.
  • TLFDO. Toke Kutaye Districts Livestock and Fishery Development Office, the Annual Report. Toke Kutaye, Ethiopia; 2016.
  • DLFDO. Dendi Districts Livestock and Fishery Development Office; the Annual Report. Dendi, Ethiopia; 2016.
  • Thrusfield M. Veterinary Epidemiology; Describing Disease Occurrence. 3rd ed. Blackwell Publishing; 2005.
  • Girma S, Mammo A, Bogele K, Sori T, Tadesse F, Jibat T. Study on the prevalence of bovine mastitis and its major causative agents in West Hararghe zone, Doba district, Ethiopia. J Vet Med Anim Health. 2012;4(8):116–123. doi:10.5897/JVMAH12.016
  • Belachew T. Bovine mastitis: prevalence, isolation of bacterial species involved and its antimicrobial susceptibility test around Debrezeit, Ethiopia. J Vet Sci Technol. 2016;7(06):2. doi:10.4172/2157-7579.1000396
  • Tassew A, Negash M, Demeke A, Feleke A, Tesfaye B, Sisay T. Isolation, identification, and drug resistance patterns of methicillin-resistant Staphylococcus aureus from mastitic cow’s milk from selected dairy farms in and around Kombolcha, Ethiopia. J Vet Med Anim Health. 2015;8(11):1–10. doi:10.5897/JVMAH2015.0422
  • Quinn PJ, Carter ME, Markey B, Carter GR. Clinical Veterinary Microbiology. Spain: Mosby Elsevier Limited; 1999.
  • Quinn PJ, Carter ME, Markey BK, Carter GR. Veterinary Microbiology Microbial Diseases- Bacterial Causes of Bovine Mastitis. 8th ed. London: Mosby International Limited; 2002.
  • Quinn PJ, Markey B, Donnelly WJ, Leonard FC, Maghire D. Veterinary Microbiology and Microbial Disease. London: Blackwell Science, Ltd; 2005.
  • Tallent S, Hait J, Bennett RW, Lancette GA. Bacteriological Analytical Manual. USA; 2001.
  • BD-Phoenix™, Becton D. Phoenix company TM system user manual, laboratory procedure. USA2006–2008:20–25.
  • CLSI. Performance Standards for Antimicrobial Susceptibility Testing; Twenty-Fifth Informational Supplement. CLSI; 2015:64–70.
  • Falagas ME, Koletsi PK, Bliziotis IA. The diversity of definitions of multidrug-resistant (MDR) and pandrug-resistant (PDR) Acinetobacter baumannii and Pseudomonas aeruginosa. J Med Microbiol. 2006;55(12):1619–1629. doi:10.1099/jmm.0.46747-017108263
  • Magiorakos AP, Srinivasan A, Carey R, et al. Multidrug-resistant, extensively drug‐resistant and pandrug-resistant bacteria: an international expert proposal for interim standard definitions for acquired resistance. Clin Microbiol Infect. 2012;18(3):268–281. doi:10.1111/j.1469-0691.2011.03570.x21793988
  • Stata statistical software [computer program]. Version 11. USA; 2009.
  • Bitew M, Tafere A, Tolosa T. Study on bovine mastitis in dairy farms of Bahir Dar and its environs. J Anim Vet Adv. 2010;9(23):2912–2917. doi:10.3923/javaa.2010.2912.2917
  • Beriso K, Tamir B, Feyera T. Characterization of smallholder cattle milk production system in Aleta Chukko District, southern Ethiopia. J Adv Dairy Res. 2015;1–8. doi:10.4172/2329-888X.1000132
  • Workineh S, Bayleyegn M, Mekonnen H, Potgieter L. Prevalence and etiology of mastitis in cows from two major Ethiopian dairies. Trop Anim Health Prod. 2002;34(1):19–25. doi:10.1023/a:101372962637711887418
  • Dego OK, Tareke F. Bovine mastitis in selected areas of southern Ethiopia. Trop Anim Health Prod. 2003;35(3):197–205. doi:10.1023/A:102335281175112797409
  • Abunna F, Fufa G, Megersa B, Regassa A. Bovine mastitis: prevalence, risk factors and bacterial isolation in small-holder dairy farms in Addis Ababa City, Ethiopia. Glob Vet. 2013;10(6):647–652. doi:10.5829/idosi.gv.2013.10.6.7349
  • Belayneh R, Belihu K, Tesfaye A. Microbiological study on bacterial causes of bovine mastitis and its antibiotics susceptibility patterns in East Showa Zone, Akaki District, Ethiopia. J Vet Med Anim Health. 2014;6(4):116–122. doi:10.5897/JVMAH2013.0272
  • Eriskine R. Intramuscular administration of ceftiofur sodium versus intramammary infusion of penicillin/novobiocin for treatment of Streptococcus agalactiae mastitis in dairy cows. J Am Vet Med Assoc. 2001;208:258–260.
  • Tamime AY. Milk Processing and Quality Management. Blackwell Publishing Ltd; 2009.
  • Brinda M, Herman V, Fodor I. Phenotypic characterization of coagulase-negative staphylococci isolated from mastitic milk in cows. Lucrari Stiintifice Medicine Veterinara. 2010;43:97–101.
  • Al-Thani RF, Al-Ali F. Incidences and antimicrobial susceptibility profile of Staphylococcus species isolated from animals in different Qatari farms. Afr J Microbiol Res. 2012;6(48):7454–7458. doi:10.5897/AJMR12.1270
  • Turutoglu H, Ercelik S, Ozturk D. Antibiotic resistance of Staphylococcus aureus and coagulase-negative staphylococci isolated from bovine mastitis. Bull Vet Inst Pulawy. 2006;50(1):41.
  • Soares LC, Pereira IA, Pribul BR, Oliva MS, Coelho SMO, Souza MMS. Antimicrobial resistance and detection of mecA and blaZ genes in coagulase-negative Staphylococcus isolated from bovine mastitis. Pesqui Vet Bras. 2012;32(8):692–696. doi:10.1590/S0100-736X2012000800002
  • Miragaia M. Factors contributing to the evolution of mecA-mediated β-lactam resistance in staphylococci: update and new insights from whole genome sequencing (WGS). Front Microbiol. 2018;9:2723. doi:10.3389/fmicb.2018.0272330483235
  • Antonov NK, Garzon MC, Morel KD, Whittier S, Planet PJ, Lauren CT. High prevalence of mupirocin resistance in Staphylococcus aureus isolates from a pediatric population. Antimicrob Agents Chemother. 2015;59(6):3350–3356. doi:10.1128/aac.00079-1525824213
  • Werckenthin C, Cardoso M, Martel J-L, Schwarz S. Antimicrobial resistance in staphylococci from animals with particular reference to bovine Staphylococcus aureus, porcine Staphylococcus hyicus, and canine Staphylococcus intermedius. Vet Res. 2001;32(3–4):341–362. doi:10.1051/vetres:200112911432424
  • Nemeghaire S, Argudín MA, Fessler AT, Hauschild T, Schwarz S, Butaye P. The ecological importance of the Staphylococcus sciuri species group as a reservoir for resistance and virulence genes. Vet Microbiol. 2014;171(3–4):342–356. doi:10.1016/j.vetmic.2014.02.00524629775
  • Frey Y, Rodriguez JP, Thomann A, Schwendener S, Perreten V. Genetic characterization of antimicrobial resistance in coagulase-negative staphylococci from bovine mastitis milk. J Dairy Sci. 2013;96(4):2247–2257. doi:10.3168/jds.2012-609123415536