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Research Article

Folic acid conjugated and Ag-carrying organoclay nanoparticles and their response to L929 fibroblast and DLD-1 cancer cells

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Pages 10-20 | Received 02 Jul 2016, Accepted 29 Nov 2016, Published online: 14 Dec 2016

References

  • Allain R, Vo-Dinh T. Surface-enhanced Raman scattering detection of the breast cancer susceptibility gene BRCA1 using a silver-coated microarray platform. Anal Chim Acta, 2002;469:149–54.
  • Aral O, Buyukacinci C, Rzayev Z. Mutilayer and oriented antimicrobial and antifogging films. U.S. Patent 7 097 912 B2, 2006.
  • Aymonier C, Schlotterbeck U, Antonietti L, Zacharias P, Thomann R, Tiller JC, Mecking S. Hybrids of silver nanoparticles with amphiphilic hyperbranched macromolecules exhibiting antimicrobial properties. Chem Commun, 2002;24:3018–9.
  • Bailey SW, Ayling JE. Crystallinity, the extremely slow and variable activity of dihydroflate reductase in human liver and its implications for high folic acid intake. Proc Natl Acad Sci USA, 2009;106:1524–9.
  • Balaji S, Basavaraja S, Deshpande R, Mahesh DB, Prabhakar BK, Venkataraman A. Extracellular biosynthesis of functionalized silver nanoparticles by strains of Cladosporium cladosporioides fungus. Colloids Surf B, 2009;68:88–92.
  • Bargartz R, Seleci M, Walter JG, Yalcinkaya EE, Demirkol DO, Stahl F, Timur S, Scheper T. Folic acid-modified clay: Targeted surface design for cell culture applications. J Mater Chem B, 2013;1:522–8.
  • Barlas F, Ozkan A, Demir B, Seleci M, Aydin M, Taselen MA, Zareie H, Timur S, Ozcelik S. Folic acid modified clay/polymer nanocomposites for selective cell adhesion. J Mater Chem B, 2014;2:6412–21.
  • Böhmert L, Niemann B, Thünemann AF, Lampen A. Cytotoxicity of peptide-coated silver nanoparticles on the human intestinal cell line Caco-2. Arch Toxicol, 2012;86:1107–15.
  • Bosseti M, Masse A, Tobin E, Cannar M. Silver coated materials for external fixation devices: In vitro biocompatibility and genotoxicity. Biomaterials, 2002;23:887–92.
  • Bunyatova U, Rzayev ZMO, Türk M, Söylemez AE. Synthesis and characterization of trithiocarbonate-organoclays nanohybrids and their interaction with MCF-7 cancer cells. J Chem Chem Eng, 2014;8:1068–81.
  • Chittel KH, Bhat VN, Karmakar NS, Kothari DC, Shinde GN. Synthesis and characterization of polymer composites embedded with silver nanoparticles. World J Nanosci Eng, 2012;2:19–24.
  • Dolgaev SI, Simakin AV, Voronov VV, Shafeev GA, Bozon-Verduraz F. Nanoparticles produced by laser ablation of solids in liquid environment. Appl surf Sci, 2002;186:546–51.
  • Foldbjerg R, Dang DA, Autrup H. Cytotoxicity and genotoxicity of silver nanoparticles in the human lung cancer cell line, A549. Arch Toxicol, 2011;85:743–50.
  • Fu M, Li Q, Sun D, Lu H, Deng X, Wang H, Huang J. Rapid preparation process of silver nanoparticles by bioreduction and their characterizations. Chin J Chem Eng, 2006;14:114–7.
  • Gökmen FÖ, Rzayev Z, Salimi K, Bunyatova U, Acar S, Salamov B, Türk M. Novel multifunctional colloidal carbohydrate nanofiber electrolytes with excellent conductivity and responses to bone cancer cells. Carbohydr Polym, 2015;133:624–36.
  • Hashemian AR, Mansoori GA. Cancer nanodiagnostics and nanotherapeutics through the folate-conjugated nanoparticles. J Bioanal Biomed, 2013;5:061–4.
  • Herrera M, Carrion P, Baca P, Liebana J, Castillo A. In vitro antibacterial activity of glass-ionomer cements. Microbios, 2001;104:141–8.
  • Ilker MF, Nüsslein K, Tew GN, Coughlin EB. Tuning the hemolytic and antibacterial activities of amphiphilic polynorbornene derivatives. J Am Chem Soc, 2004;126:15870–5.
  • Jiang QL, Zheng SW, Hang RY, Deng SM, Guo L, Hu RL, Cao B, Huang M, Cheng LF, Liu GH, Wang YQ. Folic acid-conjugated Fe3O4 magnetic nanoparticles for hypertermia and MRI in vitro and in vivo. Appl Surf Sci, 2014;307:224–33.
  • Kahraman G, Türk M, Rzayev ZMO, Unsal ME. Bioengineering functional copolymers. XV. Synthesis of organoboron amide-ester branched derivatives of oligo (maleic anhydride) and their interaction with heLa and fibroblast cells. Collect Czech Chem Commun, 2011;76:1013–31.
  • Kamen B. Folate and antifolate pharmacology. Semin Oncol, 1997;24:S18–S39.
  • Kim Y, Yang S, Ryu JC. Cytotoxicity and genotoxicity of nano-silver in mammalian cell lines. J Mol Cell Toxicol, 2010;6:119–25.
  • Kulkarni S. 2009. Nanotechnology–principles and processes. New Delhi: Capital Publishing House, pp. 263–265.
  • Lee PC, Merisel D. Adsorption and surface-enhanced Raman of dyes on silver and gold sols. J Phys Chem, 1982;86:3391–5.
  • Low WL, Kenward MA, Hill DJ, Martin C. Characterisation and in vitro antimicrobial potential of liposome encapsulated silver ions against Candida albicans. J Microencapsul, 2016;33:146–52.
  • Mansoori GA, Brandenburg KS, Shakeri-Zadeh A. A comparative study of two folate-conjugated gold nanoparticles for cancer nanotechnology applications. Cancers, 2010;2:1911–28.
  • Mansoori GA, Mohazzabi P, McCormack P, Jabbari S. Nanotechnology in cancer prevention, detection and treatment: Bright future lies ahead. World Rev Sci Tech Sustain Dev, 2007;4:226–57.
  • Marambio-Jones C, Hoek E. A review of the antibacterial effects of silver nanomaterials and potential implications for human health and environments. J Nanopart Res, 2010;12:1531–51.
  • Martinez-Gutierrez F, Olive PL, Banuelos A, Nino N, Sanchez EM, Ruiz F, Bach H, Av-Gay Y. Synthesis, characterization, and evaluation of antimicrobial and cytotoxic effect of silver and titanium nanoparticles. Nanomed Nanotechnol, 2010;6:681–8.
  • Melaiye A, Sun Z, Hindi K, Milsted A, Ely D, Reneker D, Tessier CA, Youngs W. Silver(I)-imidazole cyclophane gem-diol complexes encapsulated by electrospun tecophilic nanofibers: Formation of nanosilver particles and antimicrobial activity. J Am Chem Soc, 2005;127:2285–91.
  • Mohammadinejad R, Pourseyedi S, Baghizadeh A, Ranjbar S, Mansoori GA. Synthesis of silver nanoparticles using silybum marianum seed extract. Int J Nanosci Nanotechnol, 2013;9:221–6.
  • Moyer CA. A treatment of burns. Trans Stud Coll Physicians Phila, 1965;33:53–103.
  • Naik RR, Stringer SJ, Agarwal G, Jones SE, Stone MO. Biomimetic synthesis and patterning of silver nanoparticles. Nat Mater, 2002;1:169–72.
  • Nonaka T, Node E, Kurihara S. Silver nanoparticles as antimicrobial agent: A case study on E. coli as a model for Gram-negative bacteria. J Appl Polym Sci, 2000;77:1077–82.
  • Park MVDZ, Neigh AM, Vermeulen JP, De la fonteyne LJJ, Verharen HW, Briede JJ, Van Loveren H, De Jng WH. The effect of particle size on the cytotoxicity, inflammation, developmental toxicity and genotoxicity of silver nanoparticles. Biomaterials, 2011;32:9810–7.
  • Ravindran A, Chandran P, Khan SS. Biofunctionalized silver nanoparticles: Advances and prospects. Colloids Surf B Biointerfaces, 2013;105:342–52.
  • Rzaev ZMO, Dinçer S, Pişkin E. Functional copolymers of N-isopropylacrylamide for bioengineering applications. Prog Polym Sci, 2007;32:534–95.
  • Rzayev ZMO, Beşkardeş O. Boron-containing functional copolymers for bioengineering applications. Collect Czech Chem Commun, 2007;72:1591–630.
  • Rzayev ZMO, Erdoğan D, Türk M, Pişkin E. Bioengineering functional copolymers. VIII. Stimuli-responsive boron-containing graft copolymers and their poly (ethylene imine) macrocomplexes and DNA conjugates. Hacet J Bio Chem, 2008;36:83–98.
  • Rzayev ZMO, Salimi K, Bunyatova U, Acar S, Salamov B, Türk M. Fabrication and characterization of PVA/ODA-MMT-poly(MA-alt-1-octadecene)-g-graphene oxide e-spun nanofiber electrolytes and their response to bone cancer cells. J Mat Sci Eng C, 2016;61:257–68.
  • Rzayev ZMO, Türk M, Kahraman G, Pişkin E. Bioengineering functional copolymers. XIX. Synthesis of anhydride-organoboron functionalzed copolymers and their interaction with cancer cells. Hacet J Bio Chem, 2011;39:111–32.
  • Rzayev ZMO, Türk M, Söylemez EA. Bioengineering functional copolymers. XXI. Synthesis of a novel end carboxyl-trithiocarbonate functionalized poly(maleic anhydride) and its interaction with cancer cells. Bioorg Med Chem, 2012;20:5053–61.
  • Salkar RA, Jeevanandam P, Aruna ST, Koltypin Y, Gedanken A. The sonochemical preparation of amorphous silver nanoparticles. J Mater Chem, 1999;9:1333–5.
  • Sambhy V, MacBride MM, Peterson BR, Sen A. Silver bromide nanoparticle/polymer composites: Dual action tunable antimicrobial materials. J Am Chem Soc, 2006;128:9798–808.
  • Shah PN, Lin LY, Smolen JA, Tagaev JA, Gunsten SP, Han DS, Heo GS, Li Y, Zhang F, Zhang S, et al. Synthesis, characterization, and in vivo efficacy of shell cross-linked nanoparticle formulations carrying silver antimicrobials as aerosolized therapeutics. ACS Nano, 2013;7:4977–87.
  • Shakeri-Zadeh A, Ghasemifard M, Mansoori GA. Structural and optical characterization of folate-conjugated gold-nanoparticles. Physica E, 2010;42:1272–80.
  • Shankar SS, Rai A, Ahmad A, Sastry M. Rapid synthesis of Au, Ag, and bimetallic Au core-Ag shell nanoparticles using Neem (Azadirachta indica) leaf broth. J Colloid Interface Sci, 2004;275:496–502.
  • Shawson RM, Van Dyke MI, Lee H, Trevors JT. Germanium and silver resistance, accumulation, and toxicity in microorganisms. Plasmid, 1992;27:72–9.
  • Shin SH, Ye MK, Kim HS, Kang HS. The effects of nano-silver on the proliferation and cytokine expression by peripheral blood mononuclear cells. Int Immunopharmacol, 2007;7:1813–8.
  • Sondi I, Slopek-Sondi B. Silver nanoparticles as antimicrobial agent: A case study on E. coli as a model for Gram-negative bacteria. J Colloid Interface Sci, 2004;275:177–82.
  • Tran QH, Nguyen VQ, Le AT. Silver nanoparticles: Synthesis, properties, toxicology, applications and perspectives. Adv Nat Sci: Nanosci Nanotechnol, 2013;4:1–20.
  • Türk M, Kahraman G, Khalilova SA, Rzayev ZMO, Ogüztüzün S. Bioengineering functional copolymers. XVII. Interaction of organoboron amide-ester branched derivatives of poly(acrylic acid) with cancer cells. J Cancer Ther, 2011;2:266–275.
  • Türk M, Rzayev ZMO, Khalilova SA. Bioengineering functional copolymers. XIV. Synthesis an interaction of poly (N-isopropyl acrylamide-co-3,4-dihydro-3,4-2H-pyran-alt-maleic anhydride)s with SCLC cancer cells. Bioorg Med Chem, 2010a;18:7975–84.
  • Türk M, Rzayev ZMO, Kurucu G. Bioengineering functional copolymers. XII. Interaction of boron-containing and PEO branched derivatives of poly(MA-alt-MEVE) with HeLa cells. Health, 2010b;2:51–61.
  • Vahabi K, Mansoori GA, Karimi S. biosynthesis of silver nanoparticles by fungus trichoderma reesei (A route for large-scale production of AgNPs). Insciences J, 2011;1:65–79.
  • Yang Y, Matsubara S, Xiong L. Solvothermal synthesis of multiple shapes of silver nanoparticles and their SERS properties. J Phys Chem, 2007;111:9095–104.
  • Zhao GJ, Stevens SE. Multiple parameters for the comprehensive evaluation of the susceptibility of Escherichia coli to the silver ion. Biometals, 1998;11:27–32.
  • Zhu J, Uhl FM, Morgan AB, Wilkie CA. Studies on the mechanism by which the formation of nanocomposites enhances thermal stability. Chem Mater, 2001;13:4649–59.
  • Zwicke G, Mansoori GA, Jeffery C. Utilizing the folate receptor for active targeting of cancer nanotherapeutics. Nano Rev, 2012;3:18496–507.

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