Vol. 24 No. 1b (2024): Special Issue
Open Access
Peer Reviewed

Antibibiotics Susceptibility Testing Against Staphylococcus Aureus from Nasal Isolates in Food Handlers in Canteen of Mataram University

Authors

Ni Wayan Puspa Wijaya Suryantarini , Nurmi Hasbi , Rahmah Dara Ayunda

DOI:

10.29303/jbt.v24i1b.7891

Published:

2024-12-07

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Abstract

Staphylococcal food poisoning is caused by bacteria Staphylococcus aureus that contaminate food such as through transmission from the nose of the food handlers. Severe bacterial food poisoning requires appropriate antibiotic therapy. This study aims to test the susceptibility and compare the diameter of the inhibition zones of several antibiotics against S. aureus. The study is an experimental analytical consisting of sterilization of materials and antibiotics sensitivity testing using disc diffusion technique with replication. Statistical tests were carried out using the SPSS One Way ANOVA and Post Hoc Test. The result showed that S. aureus was still sensitive to four antibiotics with the average diameter for gentamicin, ciprofloxacin, clindamycin, and chloramphenicol were 17.7 mm, 28.95 mm, 23.58 mm, and 23.08 mm, respectively. Statistical tests showed a significant difference in the diameter of inhibition zone from four antibiotics (p < .05). Ciprofloxacin produced the largest inhibition zone and gentamicin produced the smallest zone, while clindamycin and chloramphenicol did not show a significant difference (p > .05). It can be concluded that the four antibiotics are still suitable to treat diseases such as food poisoning caused by S. aureus. Personal hygiene of food handlers is important to prevent transmission of disease through food. Prevention of antibiotic resistance is carried out by paying attention to the appropriate use of antibiotics in the community. Further research with the larger size of sample and other antibiotics using different techniques is needed.

Keywords:

Antibiotic, inhibition zone diameter, sensitivity, Staphylococcus aureus.

References

Admi, M., Sitorus, A. A., Rinidar, Sutriana, A., Rosmaidar, & Sugito. (2021). The Sensitivity Level of Gentamicin, Chloramphenicol and Penicillin Inhibiting the Growth of Pseudomonas aeruginosa Bacteria Isolate From Aceh Bull Prepunce. Jurnal Medika Veterinaria, 15(1), 1–6. https://doi.org/10.21157/j.med.vet..v14i2.20856

Afifah, N., & Yuliani, R. (2017). Aktivitas Antibakteri Kombinasi Gentamisin dan Ekstrak 10 Tanaman Obat Terhadap Bakteri Pseudomonas aeruginosa dan Methicillin Resistant Staphylococcus aureus (MRSA) [Universitas Muhammadiyah Surakart]. https://eprints.ums.ac.id/55755/

Afnidar. (2014). Fitokimia dan Uji Aktivitas Antibakteri Ekstrak Kalus Tumbuhan Sernai (Wedelia biflora (L)DC.). JESBIO, III(4). https://www.neliti.com/publications/77770/fitokimia-dan-uji-aktivitas-antibakteri-ekstrak-kalus-tumbuhan-sernai-wedelia-bi#cite

Afzal, M., Vijay, A. K., Stapleton, F., & Willcox, M. D. P. (2021). Susceptibility of Ocular Staphylococcus aureus to Antibiotics and Multipurpose Disinfecting Solutions. Antibiotics (Basel), 10(10). https://doi.org/10.3390/antibiotics10101203

Al-Zoubi, M. S., Al-Tayyar, I. A., Hussein, E., Jabali, A. Al, & Khudairat, S. (2015). Antimicrobial susceptibility pattern of Staphylococcus aureus isolated from clinical specimens in Northern area of Jordan. Iran J Microbiol, 7(5), 265–272. https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4695508/

Alharbi, N. S. (2020). Screening of antibiotic-resistant staphylococci in the nasal cavity of patients and healthy individuals. Saudi Journal of Biological Sciences, 27(1), 100–105. https://doi.org/10.1016/j.sjbs.2019.05.008

Alvarez, L. A., Sijpe, G. Van de, Desmet, S., Metsemakers, W.-J., Spriet, I., Allegaert, K., & Rozenski, J. (2022). Ways to Improve Insights into Clindamycin Pharmacology and Pharmacokinetics Tailored to Practice. Antibiotics, 11(5), 701. https://www.mdpi.com/2079-6382/11/5/701#

Ambachew, A., Gebrecherkos, T., & Ayalew, G. (2022). Prevalence and Clindamycin Resistance Profile of Staphylococcus aureus and Associated Factors among Patients Attending the University of Gondar Comprehensive Specialized Hospital, Gondar, Northwest Ethiopia. Interdiscip Perspect Infect Dis, 2022. https://doi.org/10.1155/2022/6503929

Basit, A., Sari, R., & Luliana, S. (2019). Optimasi Aktivitas Antibakteri Rutin Daun Singkong (Manihot esculenta Crantz)-Gentamicin Sulfat terhadap Bakteri Staphylococcus aureus. Jurnal Untan, 4(1). https://jurnal.untan.ac.id/index.php/jmfarmasi/article/view/32951

BC Centre for Disease Control. (2023). Staphylocococcus aureus (food poisoning). BC Centre for Disease Control. http://www.bccdc.ca/health-info/diseases-conditions/staphylocococcus-aureus

Budiyanto, R., Satriawan, N. E., & Suryani, A. (2021). Identifikasi dan Uji Resistensi Staphylococcus aureus terhadap Antibiotik (Chloramphenicol dan Cefotaxime Sodium) dari Pus Infeksi Piogenik di Puskesmas Proppo. Jurnal Kimia Riset, 6(2), 154–162. https://doi.org/10.20473/jkr.v6i2.30694

Carroll, K. C., Morse, S. A., Mietzner, T., & Miller, S. (2016). Jawetz, Melnick & Adelberg’s medical microbiology (27th ed.). Mc Graw Hill Education. https://archive.org/details/jawetzmelnickade0000unse_g5m6

CDC. (2023). Staphylococcal (Staph) Food Poisoning. CDC. https://www.cdc.gov/foodsafety/diseases/staphylococcal.html

Clinical and Laboratory Standards Institute. (2020). Performance Standards for Antimicrobial Susceptibility Testing (30th ed.). https://www.google.com/url?sa=t&source=web&rct=j&opi=89978449&url=https://clsi.org/media/3481/m100ed30_sample.pdf&ved=2ahUKEwi9_aWAhoqHAxWHS2wGHWJBDiUQFnoECA8QAQ&usg=AOvVaw2Sk7V-30QylK8wgImHy9sK

Congdon, S. T., Guaglione, J. A., Ricketts, O. M. A., Murphy, K. V., Anderson, M. G., Trowbridge, D. A., Phillips, Y. A.-A. A. M., Silver, A. M. B., Stanley, A. J., Becker, T. J., & Silver, A. C. (2023). Prevalence and antibiotic resistance of Staphylococcus aureus associated with a college-aged cohort: life-style factors that contribute to nasal carriage. Front. Cell. Infect. Microbiol., 13. https://doi.org/10.3389/fcimb.2023.1195758

Derakhshan, S., Navidinia, M., & Haghi, F. (2021). Antibiotic susceptibility of human-associated Staphylococcus aureus and its relation to agr typing, virulence genes, and biofilm formation. BMC Infectious Diseases. https://bmcinfectdis.biomedcentral.com/articles/10.1186/s12879-021-06307-0

Dilnessa, T., & Bitew, A. (2016). Prevalence and antimicrobial susceptibility pattern of methicillin resistant Staphylococcus aureus isolated from clinical samples at Yekatit 12 Hospital Medical College, Addis Ababa, Ethiopia. BMC Infect Dis, 16. https://doi.org/10.1186/s12879-016-1742-5

Emelda, Safitri, E. A., & Fatmawati, A. (2021). Aktivitas Inhibisi Ekstrak Etanolik Ulva lactuca terhadap Bakteri Staphylococcus aureus. Pharmaceutical Journal of Indonesia, 7(1), 43–48. https://doi.org/10.21776/ub.pji.2021.007.01.7

Faisal, Z. S. S., & Permana, D. (2020). Sensitivitas Antibiotik Paten dan Generik Terhadap Beberapa Bakteri Penyebab Konjungtivitis. Yarsi Journal of Pharmacology, 1(2). https://doi.org/10.33476/yjp.v1i2.2204

Foster, T. J. (2017). Antibiotic resistance in Staphylococcus aureus. Current status and future prospects. FEMS Microbiology Reviews, 41(3), 430–449. https://doi.org/10.1093/femsre/fux007

Hestiyani, R. A. N., & Handini, T. O. (2020). Anti-Methicillin-Resistant Staphylococcus aureus (MRSA) Ekstrak Etanol Daun, Kulit dan Daging Buah Mahkota Dewa (Phaleria macrocarpa). Jurnal Kedokteran Brawijaya, 31(2). https://doi.org/10.21776/ub.jkb.2020.031.02.2

Hooper, D. C., & Jacoby, G. A. (2015). Mechanisms of drug resistance: quinolone resistance. Ann N Y Acad Sci, 1354(1), 12–31. https://doi.org/10.1111/nyas.12830

Hudzicki, J. (2009). Kirby-Bauer Disk Diffusion Susceptibility Test Protocol. American Society for Microbiology. https://asm.org/getattachment/2594ce26-bd44-47f6-8287-0657aa9185ad/Kirby-Bauer-Disk-Diffusion-Susceptibility-Test-Protocol-pdf.pdf

Husen, F., & Ratnaningtyas, N. I. (2022). Uji Daya Hambat Antibiotik Gentamisin Terhadap Bakteri Escherichia coli dan Staphylococcus aureus Menggunakan Metode Cakram. Biotropika, 10(2). https://biotropika.ub.ac.id/index.php/biotropika/article/view/1320/446

Kadariya, J., Smith, T. C., & Thapaliya, D. (2014). Staphylococcus aureus and Staphylococcal Food-Borne Disease: An Ongoing Challenge in Public Health. Biomed Res Int. https://doi.org/10.1155%2F2014%2F827965

Kapoor, G., Saigal, S., & Elongavan, A. (2017). Action and resistance mechanisms of antibiotics: A guide for clinicians. J Anaesthesiol Clin Pharmacol, 33(3), 300–305. https://doi.org/10.4103%2Fjoacp.JOACP_349_15

Kumar, A. R. (2013). Antimicrobial Sensitivity Pattern of Staphyloccocus Aureus isolated From Pus From tertiary Care Hospital, Surendranagar, Gujarat And Issues Related to the Rational Selection of Antimicrobials. Sch. J. App. Med. Sci., 1(5). https://saspublishers.com/media/articles/SJAMS15600-605_iv5qQ0y.pdf

Lasmini, T., H, H., Saphira, A., B, L. D. M., & Margaretta, T. S. (2022). Identifikasi Bakteri Staphylococcus aureus pada Swab Rongga Hidung Penjamah Makanan di Jalan Durian Kota Pekanbaru. Prosiding Rapat Kerja Nasional Asosiasi Institusi Perguruan Tinggi Teknologi Laboratorium Medik Indonesia, 1. https://prosiding.aiptlmi-iasmlt.id/index.php/prosiding/article/view/60/25

Lestari, P. D., Utami, E. D., & Suryoputri, M. W. (2018). Evaluasi Penggunaan Antibiotik di Bangsal Penyakit Dalam RSUD Prof. Dr. Margono Soekarjo Purwokerto. Acta Pharmaciae Indonesia, 6(1). https://media.neliti.com/media/publications/300287-evaluasi-penggunaan-antibiotik-di-bangsa-c99a42b0.pdf

Maharani, N. E. (2017). Hubungan Hygiene Sanitasi Penjamah Makanan dengan Angka Kuman Makanan Jajanan Sekitar SMA NEGERI 3 WONOGIRI. Jurnal Ilmu Kesehatan Masyarakat, 12(2). https://jurnal.unej.ac.id/index.php/IKESMA/article/view/4830

Miranti, E. A., & Adi, A. C. (2016). Hubungan Pengetahuan Dengan Sikap Dan Higiene Perorangan (Personal Hygiene) Penjamah Makanan Pada Penyelenggaraan Makanan Asrama Putri. Jurnal Media Gizi Indonesia, 11(2). https://doi.org/10.20473/mgi.v11i2.120-126

Mohammed, M. J., & Ali, A. A. (2020). Isolation of Staphylococcus aureus Bacteria from Nasal Swabs from Workers in Restaurants in Kirkuk City. IJDDT, 10(4). https://impactfactor.org/PDF/IJDDT/10/IJDDT,Vol10,Issue4,Article15.pdf

Naimi, H. M., Rasekh, H., Noori, A. Z., & Bahaduri, M. A. (2017). Determination of antimicrobial susceptibility patterns in Staphylococcus aureus strains recovered from patients at two main health facilities in Kabul, Afghanistan. BMC Infect Dis. https://doi.org/10.1186%2Fs12879-017-2844-4

National Disease Surveillance Center. (2004). Preventing Foodborne Disease: A Focus on the Infected Food Handler.

Ningsih, N. K. S. S., & Setyawati, T. (2016). Perbandingan Efektivitas Antibiotik (Ciprofloxacin, Cefotaxim, Ampicilin, Ceftazidim dan Meropenem) Terhadap Bakteri Staphylococcus aureus Penyebab Ulkus Diabetik dengan Menggunakan Metode Kirby-Bauer. Medika Tadulako Jurnal Ilmiah Kedokteran, 3(2). http://jurnal.untad.ac.id/jurnal/index.php/MedikaTadulako/article/view/9263

Nwankwo, E. O., & Nasiru, M. S. (2011). Antibiotic sensitivity pattern of Staphylococcus aureus from clinical isolates in a tertiary health institution in Kano, Northwestern Nigeria. Pan Afr Med J. https://doi.org/10.4314%2Fpamj.v8i1.71050

Papich, M. G. (2013). Antimicrobial Drugs. In Canine and Feline Gastroenterology (pp. 471–476). Elsevier. https://doi.org/10.1016/B978-1-4160-3661-6.00039-0

Pathil, S. M., & Patel, P. (2021). Bactericidal and Bacteriostatic Antibiotics. In Infectious Diseases and Sepsis. IntechOpen. http://dx.doi.org/10.5772/intechopen.99546

Perez-Boto, D., D’Arrigo, M., Garcia-Lafuente, A., Bravo, D., Perez-Baitar, A., Gaya, P., Medina, M., & Arques, J. L. (2023). Staphylococcus aureus in the Processing Environment of Cured Meat Products. Foods, 12(11). https://www.mdpi.com/2304-8158/12/11/2161#

Power, W. J., Collum, L. M., Easty, D. L., Bloom, P. A., Laidlaw, D. A., Libert, J., Sangers, D., Wuokko, M., & Saksela, T. (1993). Evaluation of efficacy and safety of ciprofloxacin ophthalmic solution versus chloramphenicol. Eur J Ophthalmol, 3(2), 77–82. https://doi.org/10.1177/112067219300300205

Prasetya, Y. A., Hermawati, R., Winarsih, I. Y., Hartono, M. C., Pratiwi, K. A., & Rochimah, D. N. (2019). Deteksi Fenotipik Methicillin Resistant Staphylococcus aureus (MRSA) pada Sampel Makanan di Sidoarjo. Meditory, 7(1), 55–65. https://www.ejournal.poltekkes-denpasar.ac.id/index.php/M/article/view/554/261

Rahayu, M. L., Saputra, K. A. D., & Setiawan, E. P. (2017). Antibacterial Activity Extract Hoya Carnosa Leaves, Chloramphenicol 1% and Ciprofloxacin against Staphylococcus aureus and Pseudomonas aeruginosa that caused Benigh type Chronic Suppurative Otitis Media (Disc Diffusion Method). Biomed Pharmacol J, 10(3). https://doi.org/10.13005.bpj.1249

Rahayu, S., Widiyanti, D., & Arsyad, M. (2020). Sensitivity of Staphylococcus aureus Isolated from Nasal and Throat of Pre-Clerkship Students to Antibiotics. Mutiara Medika: Jurnal Kedokteran Dan Kesehatan, 20(2), 74–78. https://journal.umy.ac.id/index.php/mm/article/view/9625/pdf_87

Shariati, A., Arshadi, M., Khosrojerdi, M. A., Abedinzadeh, M., Ganjalishahi, M., Maleki, A., Heidary, M., & Khoshnood, S. (2022). The resistance mechanisms of bacteria against ciprofloxacin and new approaches for enhancing the efficacy of this antibiotic. Front Public Health. https://doi.org/10.3389%2Ffpubh.2022.1025633

Shimamura, Y., & Murata, M. (2008). Relationship among Properties of Staphylococcus aureus Isolated from Retail Foods and Human Hands, and Distribution of MRSA. Food Sci Technol Res, 14(5), 513–418. https://doi.org/10.3136/fstr.14.513

Silviani, Y., & Nirwana, A. P. (2022). Sensitivity Test of Staphylococcus aureus And Staphylococcus epidermidis in Women Taking Routine Beauty Care of Clinics to Various Antibiotics. Indonesian Journal of Global Health Research, 4(4), 707–714. https://jurnal.globalhealthsciencegroup.com/index.php/IJGHR/article/view/1293/1011

Spížek, J., & Řezanka, T. (2017). Lincosamides: Chemical structure, biosynthesis, mechanism of action, resistance, and applications. Biochemical Pharmacology, 133, 20–28. https://doi.org/10.1016/j.bcp.2016.12.001

Strateva, T., & Yordanov, D. (2009). Pseudomonas aeruginosa - a phenomenon of bacterial resistance. J Med Microbiol. https://doi.org/10.1099/jmm.0.009142-0

Sutrisno, J. (2014). Uji Aktivitas Antibakteri Ekstrak Etanol Biji Pinang (Areca catechu L) terhadap Staphylococcus aureus secara In Vitro. Jurnal Mahasiswa Fakultas Kedokteran Untan, 1(1). https://www.neliti.com/publications/194604/uji-aktivitas-antibakteri-ekstrak-etanol-biji-pinang-areca-catechu-l-terhadap-st

Tolmasky, M. E. (2000). Bacterial resistance to aminoglycosides and beta-lactams: the Tn1331 transposon paradigm. Front Biosci. https://doi.org/10.2741/tolmasky

Vaillant, J. J., Cunningham, S. A., & Patel, R. (2022). Antibiotic susceptibility testing of Staphylococcus aureus using the Biolog OmniLog® system, a metabolic phenotyping assay. Diagnostic Microbiology and Infectious Disease, 104(2). https://doi.org/10.1016/j.diagmicrobio.2022.115759

Author Biographies

Ni Wayan Puspa Wijaya Suryantarini, Universitas Mataram

Author Origin : Indonesia

Nurmi Hasbi, Universitas Mataram

Author Origin : Indonesia

Rahmah Dara Ayunda, Universitas Mataram

Author Origin : Indonesia

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How to Cite

Suryantarini, N. W. P. W., Hasbi, N., & Ayunda, R. D. (2024). Antibibiotics Susceptibility Testing Against Staphylococcus Aureus from Nasal Isolates in Food Handlers in Canteen of Mataram University. Jurnal Biologi Tropis, 24(1b), 51–63. https://doi.org/10.29303/jbt.v24i1b.7891

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