Green Synthesis of Iron Nanoparticles using Ficus capensis Stem Bark Extract: Characterization, Antioxidant and Antibacterial Evaluations
Abstract
distinctive properties that support the development of sustainable therapeutic alternatives. This study evaluated the antioxidant and antibacterial activities of iron nanoparticles (FeNPs) synthesized via a green route using Ficus capensis stem bark extract. The plant part was collected from its natural habitat, authenticated, and extracted with 80% methanol. Phytochemical analysis was performed on the extract following standard protocols. FeNPs were prepared using a mixture of 0.1 M ferric chloride and the extract. The synthesized nanoparticles were characterized by UV–visible spectroscopy, Fourier transform infrared spectroscopy, scanning electron microscopy, and X-ray diffraction. Their antioxidant capacity was assessed using the DPPH (2,2-diphenyl-1-picrylhydrazyl) radical scavenging assay (RSA), while antibacterial activity and minimum inhibitory concentrations (MICs) were determined according to established microbiological methods. The synthesized FeNPs were found to be agglomerated and non-spherical in nature, exhibiting substantial DPPH RSA with an IC50 of 6.474 ± 0.59 mikrogram/mL. The FeNPs showed antibacterial action against Escherichia coli, Klebsiella pneumoniae, and Staphylococcus aureus, with limited activity against Bacillus subtilis and Pseudomonas aeruginosa. These results underscore the potential of F. capensis-derived FeNPs as environmentally benign therapeutic agents for addressing oxidative stress and certain bacterial infections.
Keywords
Full Text:
PDFReferences
Abbai, R., Mathiyalagan, R., Markus, J., Kim, Y.J., Wang, C., Singh, P., Ahn, S., Farh, M.E.A., and Yang, D.C. (2016). Green Synthesis of Multifunctional Silver and Gold Nanoparticles from the Oriental Herbal Adaptogen: Siberian Ginseng. International Journal of Nanomedicine, 11, 3131–3143. doi: 10.2147/IJN.S108549.
Abdullah, J.A.A., Díaz-García, Á., Law, J.Y., Romero, A., Franco, V., and Guerrero, A. (2023). Quantifying the structure and properties of nanomagnetic iron oxide particles for enhanced functionality through chemical synthesis. Nanomaterials, 13, 2242. doi.org/10.3390/nano13152242
Achi, N.K., Chimaraoke, O., Ekeleme-Egedigwe, C.A., and Onyeanula, J.C. (2017). Phytochemical, Proximate Analysis, Vitamin and Mineral Composition of Aqueous Extract of Ficus capensis leaves in South Eastern Nigeria. Journal of Applied Pharmaceutical Science, 7(03), 117-122. doi: 10.7324/JAPS.2017.70319
Ali, A., Chiang, Y.W., and Santos, R.M. (2022). X-ray Diffraction Techniques for Mineral Characterization: A Review for Engineers of the Fundamentals, Applications, and Research Directions. Minerals, 12, 205. https://doi.org/10.3390/min12020205
Ashrafi-Saiedlou, S., Rasouli-Sadaghiani, M., Fattahi, M., and Ghosta, Y. (2025). Biosynthesis and characterization of iron oxide nanoparticles fabricated using cell-free supernatant of Pseudomonas fluorescens for antibacterial, antifungal, antioxidant, and photocatalytic applications. Scientific Reports, 15, 1018. https://doi.org/10.1038/s41598-024-84974-0
Bhuiyan, M.S.H., Miah, M.Y., Paul, S.C., Aka, T.D., Saha, O., Rahaman, M.M., Sharif, M.J. I., Habiba, O., and Ashaduzzaman, M. (2020). Green synthesis of iron oxide nanoparticle using Carica papaya leaf extract: Application for photocatalytic degradation of remazol yellow RR dye and antibacterial activity. Heliyon, 6(8), e04603. https://doi.org/10.1016/j.heliyon.2020.e04603
Bhutto, A.A., Baig, J.A., Sirajuddin, Kazi, T.G., Sierra-Alvarez, R., Akhtar, K., and Samejo, S. (2023). Biosynthesis and analytical characterisation of iron oxide nanobiocomposite for in-depth adsorption strategy for the removal of toxic metals from drinking water. Arabian Journal for Science and Engineering, 48, 7411-7424. doi.org/10.1007/s13369-022-07477-y
Cho, E.J., Holback, H., Liu, K.C., Abouelmagd, S.A., Park, J., and Yeo, Y. (2013). Nanoparticle characterization: state of the art, challenges, and emerging technologies. Molecular Pharmaceutics, 10(6), 2093–2110. https://doi.org/10.1021/mp300697h
Dakal, T.C., Kumar, A., Majumdar, R.S., and Yadav, V. (2016). Mechanistic Basis of Antimicrobial Actions of Silver Nanoparticles. Frontiers in Microbiology, 7, 1831.
Elkhateeb, O., Atta, M.B., and Mahmoud, E. (2024). Biosynthesis of iron oxide nanoparticles using plant extracts and evaluation of their antibacterial activity. AMB Express, 14, 92. https://doi.org/10.1186/s13568-024-01746-9
Esievo, K.B., Anthony, S.O., Fatokun, O.T., and Kunle, O.F. (2018). Ficus capensis Thumb. (Moraceae): Review of Its Ethnomedicinal Uses, Pharmacological Activities and Phytochemical Constituents. Archives of Current Research International, 12(3), 1–7. https://doi.org/10.9734/ACRI/2018/39495.
Frickmann, H., Hahn, A., Berlec, S., Ulrich, J., Jansson, M., Schwarz, N.G., Warnke, P., and Podbielski, A. (2019). On the Etiological Relevance of Escherichia coli and Staphylococcus aureus in Superficial and Deep Infections - A Hypothesis-Forming, Retrospective Assessment. European Journal of Microbiology & Immunology, 9(4), 124–130. https://doi.org/10.1556/1886.2019.00021
Ghosh, S., Ahmad, R., Zeyaullah, M., Khare, S.K. (2021). Microbial nano-factories: Synthesis and biomedical applications. Frontiers in Chemistry, 9, 194. https://doi.org/10.3389/fchem.2021.626834
Gudkov, S.V., Burmistrov, D.E., Serov, D.A., Rebezov, M.B., Semenova, A.A., and Lisitsyn, A.B. (2021). Do Iron Oxide Nanoparticles Have Significant Antibacterial Properties? Antibiotics (Basel, Switzerland), 10(7), 884. https://doi.org/10.3390/antibiotics10070884
Hossain, T.J. (2024). Methods for screening and evaluation of antimicrobial activity: A review of protocols, advantages, and limitations. European Journal of Microbiology & Immunology, 14(2), 97–115. https://doi.org/10.1556/1886.2024.00035
Hu, M., and Chua, S.L. (2025). Antibiotic-Resistant Pseudomonas aeruginosa: Current Challenges and Emerging Alternative Therapies. Microorganisms, 13(4), 913. https://doi.org/10.3390/microorganisms13040913
Jiménez Pérez, Z.E., Mathiyalagan, R., Markus, J., Kim, Y.J., Kang, H.M., Abbai, R., Seo, K.H., Wang, D., Soshnikova, V., and Yang, D.C. (2017). Ginseng-Berry-Mediated Gold and Silver Nanoparticle Synthesis and Evaluation of Their in Vitro Antioxidant, Antimicrobial, and Cytotoxicity Effects on Human Dermal Fibroblast and Murine Melanoma Skin Cell Lines. International Journal of Nanomedicine, 12, 709–723. doi: 10.2147/IJN.S118373.
Kadiyala, U., Kotov, N.A., and VanEpps, J.S. (2018). Antibacterial Metal Oxide Nanoparticles: Challenges in Interpreting the Literature. Current Pharmaceutical Design, 24(8), 896-903. https://doi.org/10.2174/1381612824666180219130659
Karunakaran, G., Sudha, K.G., Ali, S., Cho, E.B. (2023). Biosynthesis of Nanoparticles from Various Biological Sources and Its Biomedical Applications. Molecules, 28(11), 4527. doi: 10.3390/molecules28114527.
Khan, M.A., Ahmed, M., Abu-Hussien, S.H., Zahid, M.U., and Alharbi, B.F. (2025). Green synthesis of iron oxide nanoparticles (Fe2O3-NPs) from Citrus Limetta agrowaste for biological and photocatalytic applications. Scientific Reports, 15(1), 33107. https://doi.org/10.1038/s41598-025-17750-3
Khoirotin, Faaizatunnisa, N., and Munasir. (2023). Green synthesis of Fe3O4 nanoparticles using green betel leaf extract for methylene blue adsorption. Natural and Life Sciences Communications, 22(3), e2023042.
Kingori, S., Cheruiyot, S., Kirui, A., Uwamahoro, R., and Mwangi, A. (2024). Optimization and Validation of a Simple Spectrophotometric Based DPPH Method for Analysis of Antioxidant Activity in Aerated, Semi-Aerated and Non-Aerated Tea Products. Open Journal of Applied Sciences, 14, 2207-2222. doi: 10.4236/ojapps.2024.148148.
Kumar, H., Bhardwaj, K., Nepovimova, E., Ku?a, K., Dhanjal, D. S., Bhardwaj, S., Bhatia, S. K., Verma, R., and Kumar, D. (2020). Antioxidant Functionalized Nanoparticles: A Combat against Oxidative Stress. Nanomaterials (Basel, Switzerland), 10(7), 1334. https://doi.org/10.3390/nano10071334
Machado, S., Pacheco, J.G., Nouws, H.P., Albergaria, J.T., and Delerue-Matos, C. (2015). Characterization of green zero-valent iron nanoparticles produced with tree leaf extracts. The Science of the Total Environment, 533, 76–81. https://doi.org/10.1016/j.scitotenv.2015.06.091
Majeed, S., Mohammed D., Mohammad, N.M.I., Siti, H.S., Ansari, M.T., Nanda, A., and Ahmad, G. (2021). Bacteria Mediated Synthesis of Iron Oxide Nanoparticles and Their Antibacterial, Antioxidant, Cytocompatibility Properties. Journal of Cluster Science, 32, 1083–1094. https://doi.org/10.1007/s10876-020-01876-7
Mgbemena, N.M., Akoh, O.U., Obodo, G.A., and Nwakwue, K. (2022). Determination of the Phytochemicals, Minerals, Proximate and Antibacterial Constituents of the Leaf, Stem, Root and Seed of Ficus capensis (bush fig). Journal of Chemical Society of Nigeria, 47(1), 179 – 189.
Mishra, A., Pradhan, D., Halder, J., Biswasroy, P., Rai, V.K., Dubey, D., Kar, B., Ghosh, G., and Rath, G. (2022). Metal nanoparticles against multi-drug-resistance bacteria. Journal of Inorganic Biochemistry, 237, 111938. https://doi.org/10.1016/j.jinorgbio.2022.111938
Modi, S.K., Gaur, S., Sengupta, M., and Singh, M.S. (2023). Mechanistic insights into nanoparticle surface-bacterial membrane interactions in overcoming antibiotic resistance. Frontiers in Microbiology, 14, 1135579. doi: 10.3389/fmicb.2023.1135579
NMPP. (2026). Ficus capensis. www.nmppdb.com.ng/species-details?specy=%20ficus-capensis.
Obodo, N.C., and Tasie, F.O. (2022). Evaluation of the phytochemical contents of stem-bark and leaf extract of Ficus capensis. IAA Journal of Scientific Research, 8(1), 83-89.
Okafor, V.N., Kehinde, D.O., Akinyele, A.B., and Modozie, B.U. (2024). Synthesis of Nanochitosan from Cambarus Bartonii Waste and its Utilization in The Removal of Polycyclic Aromatic Hydrocarbons in Surface Water from Ifite Ogwari, Southeastern Nigeria. Nanochemistry Research, 9(1), 42-54. doi: 10.22036/NCR.2024.01.06
Okeke, U.B., Igbinaduwa, P., Aladesanmi, J.A., Mzozoyana, V., and Kehinde, I.O. (2026). GCMS-based phytochemical profiling, antioxidant and anti-inflammatory activity of triterpenoid-rich hydroethanolic extract and fractions of Ficus Sur (Forrsk) stem bark. Natural and Life Sciences Communications, 25(1), e2026012.
Omodamiro, O.D., Ajah, O., Jimoh, M.A., and Ewa-Ibe, C. (2021). Evaluation of sub-chronic toxicity, anti-inflammatory and diuretic effect of ethanol leaves extract Ficus capensis in albino rat. Animal Research International, 18(2), 4073–4082.
Osman, A.I., Zhang, Y., Farghali, M., Rashwan, A.K., Eltaweil, A.S., Abd El-Monaem, E.M., Mohamed, I.M.A, Badr, M.M., Ihara, I., Rooney, D.W., and Yap. P.S. (2024). Synthesis of green nanoparticles for energy, biomedical, environmental, agricultural, and food applications: A review. Environmental Chemistry Letters, 22, 841–887. https://doi.org/10.1007/s10311-023-01682-3.
Reynolds, D., and Kollef, M. (2021). The Epidemiology and Pathogenesis and Treatment of Pseudomonas aeruginosa Infections: An Update. Drugs, 81(18), 2117–2131. https://doi.org/10.1007/s40265-021-01635-6
Sahar, T., Munir, H. Zia, Z., Nageen, Rafiq, N., Shafiq, N., Aleem, S., and Aslam S. 2020. Ecofriendly Green Synthesis of Iron Oxide Nanoparticles Using citrus sinensis. Frontiers in Chemical Sciences, 1(1), 21-28.
Sahoo, S.K., Agarwal, K., Singh, A.K., Polke, B.G., and Raha, K.C. (2010). Characterization of ?- and ?-Fe2O3 nano powders synthesized by emulsion precipitation-calcination route and rheological behaviour of ?-Fe2O3. International Journal of Engineering, Science and Technology, 2(8), 118-126. doi: 10.4314/ijest.v2i8.63841
Saif, S., Tahir, A., and Chen, Y. (2016). Green Synthesis of Iron Nanoparticles and Their Environmental Applications and Implications. Nanomaterials (Basel, Switzerland), 6(11), 209. https://doi.org/10.3390/nano6110209
Salehirozveh, M., Dehghani, P., and Mijakovic, I. (2024). Synthesis, Functionalization, and Biomedical Applications of Iron Oxide Nanoparticles (IONPs). Journal of Functional Biomaterials, 15(11), 340. https://doi.org/10.3390/jfb15110340
Salim, S., Hari, N., Sudhi, S., and Nair, A.J. (2025). Green synthesis, characterisation and bioactivity of iron oxide nanoparticles using Myristica fragrans leaf extract. The Microbe, 8, 100481. https://doi.org/10.1016/j.microb.2025.100481
Sánchez-Moreno, C., Larrauri, J.A., and Saura-Calixto, F. (1998). A procedure to measure the antiradical efficiency of polyphenols. Journal of the Science of Food and Agriculture, 79, 270–276.
Sheta, M.H., Abd El-Wahed, A.H., Elshaer, M.A., Bayomy, H.M., Ozaybi, N.A., Abd-Elraheem, M.A., El-Sheshtawy, A.N.A., El-Serafy, R.S., and Moustafa, M.M. (2024). Green Synthesis of Zinc and Iron Nanoparticles Using Psidium guajava Leaf Extract Stimulates Cowpea Growth, Yield, and Tolerance to Saline Water Irrigation. Horticulturae, 10(9), 915. https://doi.org/10.3390/horticulturae10090915
Sofowora, A. (1993). Screening Plants for Bioactive Agents. p.134-156. In: Medicinal Plants and Traditional Medicine in Africa. Spectrum Books, Ibadan.
Tehri, N., Vashishth, A., Gahlaut, A., and Hooda, V. (2022). Biosynthesis, antimicrobial spectra and applications of silver nanoparticles: Current progress and future prospects. Inorganic and Nano-Metal Chemistry, 52, 1–19. https://doi.org/10.1080/24701556.2020.1862212
Thi, M.T.T., Wibowo, D., and Rehm, B.H. A. (2020). Pseudomonas aeruginosa Biofilms. International Journal of Molecular Sciences, 21(22), 8671. https://doi.org/10.3390/ijms21228671
Trease, G.E., and Evans, W.C. (2003). Pharmacognosy. Saunders, London.
Villagrán, Z., Anaya-Esparza, L.M., Velázquez-Carriles, C.A., Silva-Jara, J.M., Ruvalcaba-Gómez, J.M., Aurora-Vigo, E.F., Rodríguez-Lafitte, E., Rodríguez-Barajas, N., Balderas-León, I., and Martínez-Esquivias, F. (2024). Plant-Based Extracts as Reducing, Capping, and Stabilizing Agents for the Green Synthesis of Inorganic Nanoparticles. Resources, 13(6), 70. https://doi.org/10.3390/resources13060070
Vitta, Y., Figueroa, M., Calderon, M., and Ciangherotti, C. (2020). Synthesis of iron nanoparticles from aqueous extract of Eucalyptus robusta Sm and evaluation of antioxidant and antimicrobial activity. Materials Science for Energy Technologies, 3, 97-103. doi:10.1016/j.mset.2019.10.014
Wahab, S., Salman, A., Khan, Z., Khan, S., Krishnaraj, C., and Yun, S.I. (2023). Metallic Nanoparticles: A Promising Arsenal against Antimicrobial Resistance-Unraveling Mechanisms and Enhancing Medication Efficacy. International Journal of Molecular Sciences, 24(19), 14897. doi: 10.3390/ijms241914897.
Wei, Y., Fang, Z., Zheng, L., and Tsang, E.P. (2017). Biosynthesized iron nanoparticles in aqueous extracts of Eichhornia crassipes and its mechanism in the hexavalent chromium removal. Applied Surface Science, 399, 322-329. Doi.org/10.1016/j.apsusc.2016.12.090
Wiegand, I., Hilpert, K., and Hancock, R.E. (2008). Agar and broth dilution methods to determine the minimal inhibitory concentration (MIC) of antimicrobial substances. Nature Protocols, 3(2), 163–175. https://doi.org/10.1038/nprot.2007.521
Zhang, T.G., and Miao, C.Y. (2024). Iron Oxide Nanoparticles as Promising Antibacterial Agents of New Generation. Nanomaterials (Basel, Switzerland). 14(15), 1311. https://doi.org/10.3390/nano14151311
Zuhrotun, A., Oktaviani, D.J., and Hasanah, A.N. (2023). Biosynthesis of Gold and Silver Nanoparticles Using Phytochemical Compounds. Molecules, 28(7), 3240. https://doi.org/10.3390/molecules28073240
DOI: https://doi.org/10.14421/biomedich.2026.151.1713-1723
Refbacks
- There are currently no refbacks.
Copyright (c) 2026 Uchenna Benjamin Okeke, Ejiro Dowe, Oscar Ifeanyichukwu Onyemaobi, Bako Wunia'h, Wande Michael Oluyemi
Biology, Medicine, & Natural Product Chemistry |




