Antibiotic resistance patterns of staphylococcus aureus in chicken farms: Implications for health resilience in Indonesia
DOI:
https://doi.org/10.58524/app.sci.def.v1i2.169Keywords:
Antibiotics, Chicken, Health resilience, Resistance, Staphylococcus aureusAbstract
Health resilience refers to an individual's or a community's ability to withstand and recover from various health challenges and crises. Antibiotic resistance poses a significant threat to health resilience due to its impact on the effectiveness of antibiotics. The urgency of the issue of multidrug bacterial resistance in public health is a concern. The phenomenon discussed in this paper is related to the environment that becomes resistant to the antibiotic Staphylococcus aureus which causes high morbidity and mortality in animals such as chickens. In this study, there were three levels of antibiotic resistance based on clear zone media culture, namely resistance, intermediates, and sensitivity with each antibiotic totaling nine chicken cloacal swab samples. The purpose of this study was to determine the pattern of the significance of antibiotic resistance in S. aureus in three chicken farms in West Java Province (Bogor, Parung, and Sukabumi). This study used secondary data from previous studies and analyzed with nonparametric statistical methods using the Kruskal Wallis Test (One Way ANOVA). The results of the analysis showedalmost all gave a resistant response characterized by the absence of a clear zone in bacterial culture media treated with the same antibiotic in all chicken cloaca swab samples taken from farms in Bogor, Parung, and Sukabumi. Thus, resulting in the same resistance pattern. This indicates the pattern of the resilience of resistance in West Java is the same because the ecological conditions and living standards of the community are almost the same. These results may illustrate important concerns for the possibility of other regions in Indonesia having similar patterns of antibiotic resistance, so antibiotic use must adhere to appropriate guidelines to combat further antibiotic-resistant strains.
References
Access, O. (2011). Staphylococcus aureus. 8688, 1–7.
Agustina, D., Mufida, D., Rizki, H., & Dharmawan, D. (2019). Antibiotic Sensitivity Test on Staphylococcus aureus Detected in Sputum of Patients with Pneumonia Treated in Hospitals. Journal of Agromedicine and Medical Sciences, 5(1), 20-24.
https://doi.org/10.19184/ams.v5i1.9267
Aisyah, M. A., Putri, D. A., Chandra, Y., Syazali, M., Machmud, A., & Rachmawati, R. N. (2023). Mixed linear model for investigating food security during the covid-19 pandemic: Panel data for rice consumption in indonesia. International Journal of Applied Mathematics, Sciences, and Technology for Defense. 1(1), 29-36.
https://doi.org/10.58524/app.sci.def.v1i1.174
Wijiati, A. M., Afiff, U., & Mustika, A. A. (2021). Pola resistensi Staphylococcus koagulase positif yang diisolasi dari burung lovebird terhadap beberapa antibiotik. ARSHI Veterinary Letters, 5(1), 15–16.
https://doi.org/10.29244/avl.5.1.15-16
Badan Pusat Statistika. 2022. Populasi Ternak Unggas di Jawa Barat (ekor) Tahun 2020-2022. Retrieved from https://jabar.bps.go.id/indicator/158/258/1/populasi-ternak-unggas-di-jawa-barat.html (15) [15 Juni 2023]
Bounar-kechih, S., Hamdi, M. T., Aggad, H., Meguenni, N., & Cantekin, Z. (2018). Carriage Methicillin-Resistant Staphylococcus aureus in Poultry and Cattle in Northern Algeria. Veterinary Medicine International, 2018, 1-6.
https://doi.org/10.1155/2018/4636121
Cuny, C., Wieler, L. H., & Witte, W. (2015). Livestock-Associated MRSA: The Impact on Humans. Antibiotics, 4(4), 521–543.
https://doi.org/10.3390/antibiotics4040521
Ditjen PKH (Direktorat Jenderal Peternakan dan KesehatanHewan). 2018. Berdampak negatif bagi kesehatan, pemerintah larang penggunakan AGP pada ternak. Retrieved from https://ditjenpkh.pertanian.go.id/berita/734-berdampak-negatif-bagi-kesehatan-pemerintah-larang-penggunakan-agp-pada-ternak#! [15 Juni 2023]
Gajdács, M. (2019). The continuing threat of methicillin-resistant Staphylococcus Aureus. Antibiotics, 8(2), 52.
https://doi.org/10.3390/antibiotics8020052
Hermana, N. S. P., Afiff, U., Safika, S., Indrawati, A., & Pasaribu, F. H. (2021). Antibiotic resistant Pattern and resistant gene identification of Staphylococcus aureus from chicken farm in Bogor. Jurnal Veteriner, 22(2), 262–270.
https://doi.org/10.19087/jveteriner.2021.22.2.262
Lade, H., & Kim, J. S. (2021). Bacterial targets of antibiotics in methicillin-resistant Staphylococcus aureus. Antibiotics, 10(4), 398.
https://doi.org/10.3390/antibiotics10040398
Nadzifah, N., Sjofjan, O., Djunaidi, I. H., Pascasarjana, M., Peternakan, F., Malang, U. B., Peternakan, D. F., & Malang, U. B. (2019). Kajian residu antibiotik pada karkas broiler dari beberapa kemitraan di kabupaten Blitar. 20(2), 165–171.
https://doi.org/10.21776/ub.jtapro.2019.020.02.9
Pertanian, K., & Indonesia, R. (2017). Kajian Residu Antibiotika pada Produk Ternak Unggas di Indonesia. 05(1), 29–33.
Ramirez, A. A. (2018). Use of antibiotics in broiler production : Global impacts and alternatives. Animal Nutrition, 4, 170–178.
https://doi.org/10.1016/j.aninu.2018.03.002
Santika, I. K. J., Januartha, K., Pinatih, P., Nengah, N., & Fatmawati, D. (2014). Pola Kepekaan Methicillin-Resistant Staphylococcus aureus terhadap Antibiotika di RSUP Sanglah pada Agustus 2013-Oktober 2013. E-Jurnal Medika Udayana, 3(7).
https://ojs.unud.ac.id/index.php/eum/article/view/9816
Wongsuvan, G., Wuthiekanun, V., Hinjoy, S., Day, P. J. N., & Limmathurotsakul, D. (2018). Antibiotic use in poultry: a survey of eight farms in Thailand. 96(2), 94–100.
2471/BLT.17.195834
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