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Original Articles

Proteasome inhibitory, antioxidant, and synergistic antibacterial and anticandidal activity of green biosynthesized magnetic Fe3O4 nanoparticles using the aqueous extract of corn (Zea mays L.) ear leaves

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Pages 349-356 | Received 15 Dec 2015, Accepted 04 Feb 2016, Published online: 10 Mar 2016

References

  • Adedapo AA, Jimoh FO, Afolayan AJ, Masika PJ. 2008. Antioxidant activities and phenolic contents of the methanol extracts of the stems of Acokanthera oppositifolia and Adenia gummifera. BMC Complement Altern Med. 8:54.
  • Aftabtalab A, Sadabadi H. 2015. Application of magnetite (Fe3O4) nanoparticles in hexavalent chromium adsorption from aquatic solutions. J Pet Environ Biotechnol. 6:200.
  • Arum Y, Oh YO, Kang HW, Ahn SH, Oh J. 2015. Chitosan-coated Fe3O4 magnetic nanoparticles as carrier of cisplatin for drug delivery. Fish Aquat Sci. 18:89–98.
  • Atta AM, Al-Lohedan HA, Al-Hussain SA. 2015. Functionalization of magnetite nanoparticles as oil spill collector. Int J Mol Sci. 16:6911–6931.
  • Awwad AM, Salem NM. 2012. A green and facile approach for synthesis of magnetite nanoparticles. Nanosci Nanotechnol. 2:208–213.
  • Basavegowda N, Magar KBS, Mishra K, Lee YR. 2014. Green fabrication of ferromagnetic Fe3O4 nanoparticles and their novel catalytic applications for the synthesis of biologically interesting benzoxazinone and benzthioxazinone derivatives. New J Chem. 38:5415–5420.
  • Chen D, Ping Dou Q. 2010. The ubiquitin-proteasome system as a prospective molecular target for cancer treatment and prevention. Curr Protein Pept Sci. 11:459–470.
  • Chen X, Klingeler R, Kath M, El Gendy AA, Cendrowski K, Kalenczuk RJ, Borowiak-Palen E. 2012. Magnetic silica nanotubes: synthesis, drug release, and feasibility for magnetic hyperthermia. ACS Appl Mater Interfaces. 4:2303–2309.
  • Deb S. 2014. Synthesis of silver nano particles using Murraya koenigii (green curry leaves), Zea mays (baby corn) and its antimicrobial activity against pathogens. Int J PharmaTech Res. 6:91–96.
  • Dizaji AN, Yilmaz M, Piskin E. 2015. Silver or gold deposition onto magnetite nanoparticles by using plant extracts as reducing and stabilizing agents. Artif Cells Nanomed Biotechnol. 24:1–7.
  • Dung DTK, Hai TH, Phuc LH, Long BD, Vinh LK, Truc PN. 2009. Preparation and characterization of magnetic nanoparticles with chitosan coating. J Phys Conf Ser. 187:012036.
  • Gajbhiye M, Kesharwani J, Ingle A, Gade A, Rai M. 2009. Fungus-mediated synthesis of silver nanoparticles and their activity against pathogenic fungi in combination with fluconazole. Nanomed Nanotechnol Biol Med. 5:382–386.
  • Hwang I, Hwang JH, Choi H, Kim KJ, Lee DG. 2012. Synergistic effects between silver nanoparticles and antibiotics and the mechanisms involved. J Med Microbiol. 61:1719–1726.
  • Jayanthi SA, Nathan DMGT, Jayashainy J, Sagayaraj P. 2015. A novel hydrothermal approach for synthesizing a-Fe2O3, g-Fe2O3 and Fe3O4 mesoporous magnetic nanoparticles. Mater Chem Phys. 162:316–325.
  • Khan ZU, Chandy R, Metwali KE. 2003. Candida albicans strain carriage in patients and nursing staff of an intensive care unit: a study of morphotypes and resistotypes. Mycoses. 46:476–486.
  • Kim J, Marshall MR, Wei C. 1995. Antibacterial activity of some essential oil components against five foodborne pathogens. J Agri Food Chem. 43:2839–2845.
  • Koutzarova T, Kolev S, Ghelev C, Paneva D, Nedkov I. 2006. Microstructural study and size control of iron oxide nanoparticles produced by microemulsion technique. Phys Status Solidi C. 3:1302–1307.
  • Leela A, Vivekanandan M. 2008. Tapping the unexploited plant resources for the synthesis of silver nanoparticles. Afr J Biotechnol. 7:3162–3165.
  • Makhija IK, Aswatha-Ram HN, Shreedhara CS, Vijay Kumar S, Devkar R. 2011. In vitro antioxidant studies of sitopaladi churna, a polyherbal ayurvedic formulation. Free Rad Antioxid. 1:37–41.
  • Murray PR, Baron EJ, Pfaller MA, Tenover FC, Yolke RH. 1995. Manual of Clinical Microbiology. 6th ed. Washington (DC): ASM Press.
  • Naqvi SZH, Kiran U, Ali MI, Jamal A, Hameed A, Ahmed S, Ali N. 2013. Combined efficacy of biologically synthesized silver nanoparticles and different antibiotics against multidrug-resistant bacteria. Int J Nanomed. 8:3187–3195.
  • Oberdorster G, Oberdorster E, Oberdorster J. 2005. Nanotoxicology: an emerging discipline evolving from studies of ultrafine particles. Environ Health Perspect. 113:823–839.
  • Oh J, Feldman MD, Kim J, Kang HW, Sanghi P, Milner TE. 2007. Magneto-motive detection of tissue-based macrophages by differential phase optical coherence tomography. Lasers Surg Med Surg. 39:266–272.
  • Patra JK, Baek KH. 2015. Novel green synthesis of gold nanoparticles using Citrullus lanatus rind and investigation of proteasome inhibitory activity, antibacterial, and antioxidant potential. Int J Nanomed. 10:7253–7264.
  • Patra JK, Kim SH, Baek KH. 2015. Antioxidant and free radical-scavenging potential of essential oil from Enteromorpha linza L. prepared by microwave-assisted hydrodistillation. J Food Biochem. 39:80–90.
  • Philip D, Unni C, Aromal SA, Vidhu VK. 2011. Murraya Koenigii leaf-assisted rapid green synthesis of silver and gold nanoparticles. Spectrochim Acta A. 78:899–904.
  • Rahman O, Mohapatra SC, Ahmad S. 2012. Fe3O4 inverse spinal super paramagnetic nanoparticles. Mater Chem Phys. 132:196–202.
  • Santiso R, Tamayo M, Gosalvez J, Johnston S, Marino A, Fernandez C, Losada C, Fernandeza JL. 2012. DNA fragmentation dynamics allows the assessment of cryptic sperm damage in human: evaluation of exposure to ionizing radiation, hyperthermia, acidic pH and nitric oxide. Mutat Res. 734:41–49.
  • Senthil M, Ramesh C. 2012. Biogenic synthesis of Fe3O4 nanoparticles using Tridax procumbens leaf extract and its antibacterial activity on Pseudomonas aeruginosa. Digest J Nanomater Biostruct. 7:1655–1660.
  • Shankar SS, Rai A, Ahmad A, Sastry M. 2004. Rapid synthesis of Au, Ag and bimetallic Au core-Ag shell nanoparticles using Neem (Azadirachta indica) leaf broth. J Colloid Interface Sci. 275:496–502.
  • Singh P, Kim YJ, Wang C, Mathiyalagan R, El-Agamy Farh M, Yang DC. 2015. Biogenic silver and gold nanoparticles synthesized using red ginseng root extract, and their applications. Artif Cells Nanomed Biotechnol. [Epub ahead of print]. doi:10.3109/21691401.2015.1008514.
  • Srivastava A, Harish SR, Shivanandappa T. 2006. Antioxidant activity of the roots of Decalepis hamiltonii (Wight & Arn). LWT-Food Sci Technol. 39:1059–1065.
  • Sun L, Zhang J, Lu X, Zhang L, Zhang Y. 2011. Evaluation to the antioxidant activity of total flavonoids extract from persimmon (Diospyros kaki L.) leaves. Food Chem Toxicol. 49:2689–2696.
  • Tanaka T, Nakatani T, Kamitani T. 2012. Inhibition of NEDD8-conjugation pathway by novel molecules: potential approaches to anticancer therapy. Mol Oncol. 6:267–275.
  • Thaipong K, Boonprakob U, Crosby K, Cisneros-Zevallos L, Byrne DH. 2006. Comparison of ABTS, DPPH, FRAP, and ORAC assays for estimating antioxidant activity from guava fruit extracts. J Food Comp Anal. 19:669–675.
  • Thomasa T, Kanotha BP, Nijasb CM, Joyd PA, Josephc JM, Kuthirummale N, Thachil ET. 2015. Preparation and characterization of flexible ferromagnetic nanocomposites for microwave applications. Mater Sci Eng B. 200:40–49.
  • Vazquez-Munoz R, Avalos-Borja M, Castro-Longoria E. 2014. Ultrastructural analysis of Candida albicans when exposed to silver nanoparticles. PLoS One. 9:e108876.
  • Xu B, Dou HJ, Tao K, Sun K, Ding J, Shi WB, et al. 2011. Two-in-one, fabrication of Fe3O4/MePEG-PLA composite nanocapsules as a potential ultrasonic/MRI dual contrast agent. Langmuir. 27:12134–12142.
  • Zhang JQ, Zhang ZR, Yang H, Tan QY, Qin SR, Qiu XL. 2005. Lyophilized paclitaxel magnetoliposomes as a potential drug delivery system for breast carcinoma via parenteral administration: in vitro and in vivo studies. Pharm Res. 22:573–583.
  • Zhao J, Luque R, Qi W, Lai J, Gao W, Gilani MRHS, Xu G. 2015. Facile surfactant-free synthesis and characterization of Fe3O4@3-aminophenol–formaldehyde core–shell magnetic microspheres. J Mater Chem A. 3:519–524.

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