Gold nanoparticles effect on bacterial virulence factor formation with multiple drug resistance
DOI:
https://doi.org/10.56053/10.4.1625Keywords:
Nanomaterials, MDR, Biofilm production, P. aeruginosaAbstract
The study aims to investigate how the local Pseudomonas aeruginosa isolates' ability to form biofilms is impacted by gold nanoparticles. 47 samples are taken from burns (38%), urinary tract infections (7%), ear infections (4%), and wounds (51%). Fourteen isolates (29.78%) are found to be multidrug-resistant and to form biofilms. The sensitivity of isolates is evaluated using the Kirby-Bauer technique. According to the results, the largest percentages are found against levofloxacin, imipenem, ticarcillin, gentamicin, amikacin, piperacillin, ceftazidime, cefepime, and meropenem, respectively. Characterization of all isolates confirmed that they are P. aeruginosa. Only MDR are involved in this work. The quantitative evaluation of biofilm production is carried out using the microtiter plate technique (ELISA). The study also explores the green chemistry approach of creating gold nanoparticles using Camellia sinensis, or black tea leaf extract. The final nanoparticles pass all of the main investigations used to describe them, with SEM, FT-IR, XRD, and UV. The SEM images show spherical particles measuring 19 nm. The effect of the prepared gold nanoparticles as antibiofilm agents is studied at different concentrations (10, 20, 40, 80, 160) ppm compared to control sample. Analysis of variance shows that the highly significant effects (p<0.000) on biofilm formation. The results show the mean ± S.D. of the different treatments; the control concentration is 0 ± 0.104 ± 0.033, whereas the mean ± S.D. for the first concentration is as follows: 0.288 ± 0.075, 0.312 ± 0.092, 0.334 ± 0.119, 0.380 ± 0.090, 0.415 ± 0.0969, and 0.305 ± 0.131, respectively.
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References
-[1] F. Al-Wrafy, E. Brzozowska, S. Górska, A. Gamian. Postepy High Med. Dosw. 71 (2017) 78 10.5604/01.3001.0010.3792
-[2] G.P. Bodey, R. Bolivar, V. Fainstein, V., and L. Jadeja, L. Reviews of infectious diseases, 5 (1983) 279 https://doi.org/10.1007/BF02013601
-[3] L.J. Shaebth. Iraqi Journal of Veterinary Sciences 32 (2019) 183 10.33899/ijvs.2020.127015.1435
-[4] S.D. Al-Shamaa. College of Basic Education Researches Journal, 11 (2011) 689 10.32792/jeps.v11i1.85
-[5] G.W. Lau, D.J. Hassett, H. Ran, and F. Kong (2004). Trends in molecular medicine, 10 (2004) 599 10.1016/j.molmed.2004.10.002
-[6] G.R.L. Al-Awsi, G. Nasir, M.M.M. Alshammari, A. Ghasemian. Malaysian Journal of Biochemistry and Molecular Biology, 23 (2020) 15 https://doi.org/10.1139/bcb-2026-0052
-[7] M.Q. Mohammed, A.H. Shugran, Experimental and Theoretical NANOTECHNOLOGY 10 (2026) 13 https://doi.org/10.56053/10.1.13
-[8] N. M. Slaber, J. S. Kith, Experimental and Theoretical NANOTECHNOLOGY 9 (2025) 9 https://doi.org/10.56053/9.1.9
-[9] S. Yan and G. Wu. Front Microbiol. 10 (2019) 1 https://doi.org/10.3389/fmicb.2019.00302
-[10] H.M. Mahmood, G.A. Nasir, Q.A. Ibraheem. Iraqi Journal of Agricultural Sciences, 51 (2020) 1413 https://doi.org/10.36103/ijas.v51i5.1151
-[11] S. S. Salman, A. T. Al-Douri, A. A. Hadi, S. J., M. Alnajm. Experimental and Theoretical NANOTECHNOLOGY 9 (2025) 361 https://doi.org/10.56053/9.2.361
-[12] G. Gebreyohannes, A. Nyerere, C. Bii, D.B. Sbhatu DB. Heliyon 5 (2019) 33 https://doi.org/10.1016/j.heliyon.2019.e02192
-[13] L.M. Al-Ani, M.R. Ghreeb, H.M. Mahmood, B.J. Aldahham. Sys Rev Pharm. 11 (2020) 600 https://doi.org/10.31351/vol33iss1pp72-78
-[14H. M. Mahmood, M.M. Ali, B.J. Aldahham, B.J., and L.M. Al-Ani. Hyb. Advan. 11 (2025) 99 https://doi.org/10.1016/j.hybadv.2025.100567S
-[15] S. Thakur, R. V. Saini, P Singh, P. Raizada, V.K. Thakur, and A.K. Saini, A. K. Materials Today Chemistry, 17 (2020) 100295 https://doi.org/10.1016/j.mtchem.2020.100272
-[16] J. Panyam, W.Z. Zhou, S. Prabha, S., S.K. Sahoo, and V. Labhasetwar. The FASEB Journal 16 (2002) 1217 https://doi.org/10.21106/IJTMRPH_54_2025
-[17] K. D. San, K. D., J.I.A. Alindayu, and Baculi, R. Q. Journal of Microbiology, Biotechnology and Food Sciences, 781 (2018) 99 https://doi.org/10.15414/jmbfs.2018.8.2.770-773
-[18] Q. Yu, J. Li, Y. Zhang, Y. Wang, L. Liu, and M. Li. Scientific Reports, 6 (2016) 787 10.1080/14786419.2012.722089
-[19] B. García‐Lara, M.A. Saucedo‐Mora, J.A. Roldán‐Sánchez, B. Pérez‐Eretza, M. Ramasamy, J. Lee, and R. García‐Contreras. Letters in applied microbiology, 61 (2015) 299 10.1111/lam.12456
-[20] E.A. Reyes, M.J. Bale, W.H. Cannon, and J.M. Matsen. Journal of Clinical Microbiology, 13 (1981) 456 https://doi.org/10.1128/jcm.13.3.456-458.1981
-[21] M.R.W. Brown. John Wiley & Sons, New York, 1975
-[22] Ali Q. Tuama, Ghaiath A. Fadhil, Ghaiath A. Fadhil, Wael A. S. Al-dulaimi, Experimental and Theoretical NANOTECHNOLOGY 10 (2026) 25 https://doi.org/10.56053/10.1.25
-[23] N.J. Palleroni. Environ Microbiol 12 (2010) 1377 https://doi.org/10.1111/j.1462-2920.2009.02041.x
-[24] S.H. Gillespie, Science 133 (2014) 25 10.4137/PMC.S14459
-[25] I.A. AL-Essawi, and H.M. Mahmood. Journal of Nanostructures, 14 (2024) 1029 doi:10.22052/JNS.2024.04.004
-[26] Enas al-Zubaidy, Ahmed Fadhil Hamza, Zuhair Jabbar Abdul Ameer, Experimental and Theoretical NANOTECHNOLOGY 10 (2026) 109 https://doi.org/10.56053/10.1.109
-[27] G.A. Nasir, Z.H. Raheem, and H.M. Mahmood. Experimental and Theoretical NANOTECHNOLOGY 10 (2026) 441. https://doi.org/10.56053/10.2.441
-[28] B.M. Mitruka. CRC Press, 2017
-[29] D.A. Marrez and H.S. Mohamad. Biointerface Research in Applied Chemistry. 1 (2020) 140 https://doi.org/10.3390/antibiotics15040330
-[30] T. J. Mackie, J.G. Collee, and J.E. McCartney. Churchill Livingstone; 1996
-[31] G.A. Nasir, M.A. Najm, and H.M. Mahmood. Journal of Nanostructures, 15 (2025) 249 doi:10.22052/JNS.2025.01.024
-[32] G.A. Nasir, I.A. Khudhair, Najm MA, H.M. Mahmood. Al-Rafidain Journal of Medical Sciences 3 (2022) 193 10.22052/JNS.2025.01.024
-[33] A.A. Tiba, and M.M. Huda. Iraqi Journal of Pharmaceutical Sciences 33 (2024) 72 10.31557/APJCP.2024.25.10.3643
-[34] G.A. Nasir, M.A. Najm, A.L. Hussein. Systematic Reviews in Pharmacy, 11 (2020) 570 doi:10.31838/srp.2020.10.85
-[35] M. A. M. Al-Doori, A. T. Al-Douri, N. A. Faris, Experimental and Theoretical NANOTECHNOLOGY 9 (2025) 489 https://doi.org/10.56053/9.3.489
-[36] M. A. Najm, G.A. Nasir, and H.M. Mahmood. J. Agri. Biot. 17 (2025) 217 doi:10.22103/jab 2025.24920.1672
-[37] S.G. Ali, M. Jalal, H. Ahmad, K. Umar, A. Ahmad, M.B. Alshammari, Khan H. M. 27 (2022) 8685 https://doi.org/10.3390/molecules27248685
-[38] S.L. Elshaer, M.I. Shaaban. Antibiotics. 10 (2021) 1461 https://doi.org/10.3390/antibiotics10121461
-[39] J.H. Lee, H.Y. Cho, H.K. Choi, J.Y. Lee, J.W. Choi. Int. J. Mol. Sci. 19 (2018) 2021 10.3390/ijms221910271