|
1. Chilanga F, Kasozi KI, Mazeri S, et al. A systematic review of antimicrobial resistance transmission inferences at the human-livestock interface in Africa. NPJ Antimicrob Resist. 2025; 3: 58. doi: 10.1038/s44259-025-00126-y. 2. Nkosi N. C, Basson AK, Ntombela ZG, Dlamini NG, Pullabhotla RVSR. Green synthesis of copper nanoparticles using a bioflocculant from Proteus mirabilis AB 932526.1 for wastewater treatment and antimicrobial applications. App Nano. 2025; 6: 5. doi: 10.3390/applnano6010005. 3. Pricop A, Negrea A, Pascu B, Nemeş NS, Ciopec M, et al. Copper nanoparticles synthesized by chemical reduction with medical applications. Int J Mol Sci. 2025; 26: 1628. doi: 10.3390/ijms26041628. 4. Gebreslassie YT, Gebremeskel FG. Green and cost-effective biofabrication of copper oxide nanoparticles: Exploring antimicrobial and anticancer applications. Biotech Rep. 2024; 41: e00828. doi: 10.1016/j.btre. 2024.e00828. 5. Kirubakaran D, Selvam K, Dhaneeshram M, Shivakumar M. S, Rajkumar M, et al. Biogenic synthesis of copper nanoparticle using Impatiens chinensis L: Insights into antimicrobial antioxidant and anticancer activity. J Mol Struct. 2024; 1317: 138991. doi: 10.1016/j.molstruc.2024.138991. 6. Ebrahimi K, Shiravand S, Mohammedi AA, Nabi-Afjadi M, Zalpoor H, et al. Biosynthesis of copper nanoparticles using aqueous Thymus daenensis (Celak) flora and investigation of its antifungal activity. J Med Microbiol Infect Dis. 2022; 10: 98-103. doi: 10.52547/JoMMID.10.3.98. 7. Fangfang Y, Yalong Li, Bin Mu, Aiqin Wang, Yameng Song, et al. Insight into the synergistic antibacterial mechanism of bio ZnO nanoparticles synthesized from Sophora japonica flower buds extract. Inorg Chem Communic. 2024; doi: 10.1016/j.inoche.2024.112341. 8. Afonso IS, Cardoso B, Nobrega G, Minas G, Ribeiro J. E, et al. Green synthesis of nanoparticles from olive oil waste for environmental and health applications: A review. J Env Chem Engin. 2024; 12: 114022. doi: 10.1016/j.jece.2024.114022. 9. Mirahmad A, Ghoran SH, Alipour P, Taktaz F, Hassan S, et al. Oliveria decumbens Vent. (Apiaceae): Biological screening and chemical compositions. J Ethnopharm. 2024; 318: 117053. doi: 10.1016/j.jep.2023.117053. 10. Shiryanpour S, Nouri L, Azizi M, et al. Active chitosan film containing single and double nanoemulsions of Oliveria decumbens Vent essential oil/anthocyanin of eggplant for chicken preservation. Food Measur. 2025; doi: 10.1007/s11694-025-03477-2. 11. Mali SC, Dhaka A, Githala CK, Trivedi R. Green synthesis of copper nanoparticles using Celastrus paniculatus Willd. leaf extract and their photocatalytic and antifungal properties. Biotech Rep. 2020; 27: e00518. doi: 10.1016/j.btre. 2020.e00518. 12. Ansari MA, Ahmad I, Naeem S, Husain D, Patil AB, et al. Green synthesis and characterization of crystalline copper nanoparticles via sodium borohydride reduction towards enhanced gas sensing application. J Ind Chem Soc. 2024; 101: 101157. doi: 10.1016/j.jics.2024.101157. 13. Alraae A, Moussadik A, Benzaouak A, Kacimi M, Dahhou M, et al. Eco-friendly synthesis and catalytic activity of Cu nanoparticles deposited on expanded muscovite to reduce organic pollutants. Resul Surf and Interface. 2024; 17: 100343. doi: 10.1016/j.rsurfi.2024.100343. 14. Wong TTY, Lee CH, Luk HWS, Tse CWS, Ho PL. Predictive value of direct disc diffusion testing from positive blood cultures for detection of antimicrobial nonsusceptibility. Microorg. 2025; 13: 398. doi: 10.3390/microorganisms13020398. 15. Parvekar P, Palaskar J, Metgud S, Maria R, Dutta S. The minimum inhibitory concentration (MIC) and minimum bactericidal concentration (MBC) of silver nanoparticles against Staphylococcus aureus. Biomat Invest Dentist. 2020; 7: 105-109. doi: 10.1080/26415275.2020.1796674. 16. Sewell M, Farley C, Portal EAR, Lindsay D, Ricci ML, et al. Broth microdilution protocol for determining antimicrobial susceptibility of Legionella pneumophila to clinically relevant antimicrobials. J Microbiol Methods. 2025; 228: 107071. doi: 10.1016/j.mimet.2024.107071. 17. Jiao M, Kong W, Liu W, Dong Z, Yang J, et al. Boosting the antibacterial potency of natural products through nanotechnologies. Int J Pharmaceutics. 2025; 674: 125437. doi: 10.1016/j.ijpharm.2025.125437. 18. Nguyen PA, Nguyen AVP, Dang-Bao T, et al. Green synthesis of copper nanoparticles using cocoa pod extract and its catalytic activity in deep oxidation of aromatic hydrocarbons. SN App Sci. 2020; 2: 1795. doi: 10.1007/s42452-020-03539-8. 19. Akpanudo NW, Olabemiwob OM. Green synthesis and characterization of copper nanoparticles (CuNPs) and composites (CuC) using the Echinochloa pyramidalis extract and their application in the remediation of PAHsin water. Water Practic Technol. 2024; 19: 324. doi: 10.2166/wpt.2024.011. 20. Gopinath M, Subbaiya R, Selvam MM, Suresh D. Synthesis of copper nanoparticles from Nerium oleander leaf aqueous extract and its antibacterial activity. Int J Curr Microbiol App Sci. 2014; 3: 814-8. doi: 10.1245/fvd.2014.011. 21. Frahtia A, Derouiche S, Niemann J. Novel and facile green synthesis of copper nanoparticles using aqueous extract of Phragmites australis leaves and evaluation of their antioxidant antihemolytic anti-inflammatory and anticancer effects. J App Biotech Rep 2025; 12: 1545-53. doi: 10.30491/jabr.2024.450158.1710. 22. Shaik R, Buggana A, Thalari V, Sandhya Rano Kedharnath B, Golla N. Green synthesis characterization and biological activities of copper nanoparticles using Clitoria ternatea leaf extract. Int J Nano Dimen. 2025; 16: 1-12. doi: 10.57647/j.ijnd.2025.1601.05. 23. Fazeli S, Rafiee F, Ferdousi A. Biosynthesis of copper nanoparticles using Artemisia biennis Willd plant extract for antibacterial and anti-biofilm activities. Int Electr Microbiol. 2025; 11: 63-75. doi: 10.61186/iem.11.1.63. 24. Amaliyah S, Pangesti D. P, Masruri M, Sabarudin A, Sumitro SB. Green synthesis and characterization of copper nanoparticles using Piper retrofractum Vahl extract as bioreductor and capping agent. Heliyon. 2020; 6. doi: 10.1016/j.heliyon. 2020.e04345. 25. Ebrahimi K, Shiravand S, Mahmoudvand H. Biosynthesis of copper nanoparticles using aqueous extract of Capparis spinosa fruit and investigation of its antibacterial activity. Marmara Pharmaceut J. 2017; 21: 866-71. doi: 10.12991/mpj.2017.31. 26. Al-Khafaji MAA, Al-Refai’a RAK, Al-Zamely OMY. Green synthesis of copper nanoparticles using artemisia plant extract. Mater Today Proceed. 2022; 49: 2831-35. doi: 10.1016/j.matpr.2021.10.067. 27. Parvathalu K, Rajitha K, Chandrashekar B, Sathvik K, Pranay Bhasker K, et al. Biomimetic synthesis of copper nanoparticles using Tinospora cordifolia plant leaf extract for photocatalytic activity applications. Plasmon. 2024; 19: 825-834. doi: 10.1007/s11468-023-02037-y. 28. Wang L, Hu C, Shao L. The antimicrobial activity of nanoparticles: present situation and prospects for the future. Int J Nanomed. 2017; 12: 1227-49. doi: 10.2147/IJN.S121956. 29. Ma X, Zhou S, Xu X, Du Q. Copper-containing nanoparticles: Mechanism of antimicrobial effect and application in dentistry-a narrative review. Front Surg. 2022; 5: 905892. doi: 10.3389/fsurg.2022.905892. 30. Baraiya DH, Pappuswamy M, Antony PU, Ganesh S, Pragatheesh A, et al. Copper nanoparticles: A review on synthesis characterization and applications. Asian Pacific J Canc Biol. 2020; 5: 201-210. doi: 10.31557/APJCB.2020.5.4.201. 31. Gheidar H, Haddadi A, Sadeghi Kalani B, Amirmozafari N. The Effect of Nanoparticles on Antimicrobial Resistant Bacteria and Expression Level of the Genes Involved in Biofilm of S. aureus. J Med Bacteriol. 2018; 7: 30-41. 32. Abbaszadegan A, Ghahramani Y, Gholami A, Hemmateenejad B, Dorostkar S, et al. The effect of charge at the surface of silver nanoparticles on antimicrobial activity against gram-positive and gram-negative bacteria: A preliminary study (Article No. 53). BioMed Res Int. 2015; 2015: 1-8. doi: 10.1155/2015/72065. 33. Emami-Karvani Z, Chehrazi P. (2011). Antibacterial activity of ZnO nanoparticle on gram-positive and gram-negative bacteria. African J Microbiol Res. 2011; 1368-73. doi: 10.5897/AJMR10.159. 34. Azam A, Ahmed AS, Oves M, Khan MS, Habib SS, et al. Antimicrobial activity of metal oxide nanoparticles against Gram-positive and Gram-negative bacteria: a comparative study. Int J Nanomed. 2012; 7: 6003-9. doi: 10.2147/IJN.S35347. 35. Girma A, Mebratie G, Mekuye B, Abera B, Bekele T, et al. Antibacterial capabilities of metallic nanoparticles and influencing factors. Nano Economics. Advan Online Pub. 2024. doi: 10.1002/nano.202400049. 36. Fera F, Habibah W, Ode S, Rizki A, Ivansyah A, et al. Green synthesis of copper ions nanoparticles functionalized with rhamnolipid as potential antibacterial agent for pathogenic bacteria. Heliyon. 2024; 10. doi: 10.1016/j.heliyon. 2024.e24242. 37. Batista S, Fernández-Pittol M, San Nicolás L, Martínez D, Narváez S, et al. Design and Validation of a Simplified Method to Determine Minimum Bactericidal Concentration in Nontuberculous Mycobacteria. Antibiotic. 2025; 14: 381. doi: 10.3390/antibiotics14040381. 38. Goudarzi L, Kasra Kermanshahi R, Mousavinezhad Z, Soltan Dallal MM. Evaluation of Antimicrobial Activity of Probiotic Lactobacillus Strains against Growth and Urease Activity of Proteus spp. J Med Bacteriol. 2017; 6: pp.31-43. doi: 10.2017/jmb140815. 39. Soleymanzadeh SM, Minaeian S, Majidpour A, Adabi M, Hosseini Doust R. The Lactobacillus acidophilus Supernatant: An Effective and Safe Alternative to Antibiotics. IJT. 2024; 18: 52-60. doi: 10.61186/IJT.18.1.52. 40. Rodríguez-Melcón C, Alonso-Calleja C, García-Fernández C, Carballo J, Capita R. Minimum Inhibitory Concentration (MIC) and Minimum Bactericidal Concentration (MBC) for Twelve Antimicrobials (Biocides and Antibiotics) in Eight Strains of Listeria monocytogenes. Biology (Basel). 2021; 2911: 46. doi: 10.3390/biology11010046.
|