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Materials Technology
Advanced Performance Materials
Volume 34, 2019 - Issue 10
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Research Articles

Controllable and extra-fast synthesis of bio-applicable silver nanoparticles with Lycium Barbarum L. aqueous extract and visible light

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Pages 581-591 | Received 16 Nov 2018, Accepted 31 Mar 2019, Published online: 15 Apr 2019

References

  • Sintubin L, Verstraete W, Boon N. Biologically produced nanosilver: current state and future perspectives. Biotechnol Bioeng. 2012;109:2422–2436.
  • Nowack B, Krug HF, Height M. 120 years of nanosilver history: implications for policy makers. Environ Sci Technol. 2011;45:1177–1183.
  • Kim KJ, Sung WS, Suh BK, et al. Antifungal activity and mode of action of silver nano-particles on Candida albicans. Biometals. 2009;22:235–242.
  • Nadworny PL, Wang JF, Tredget EE, et al. Anti-inflammatory activity of nanocrystalline silver-derived solutions in porcine contact dermatitis. J Inflamm. 2010;7:13.
  • Lara HH, Ayala-Nuñez NV, Ixtepan-Turrent L, et al. Mode of antiviral action of silver nanoparticles against HIV-1. J Nanobiotechnol. 2010;8:1.
  • Becker RO. Silver ions in the treatment of local infections. Met Based Drugs. 1999;6:311–314.
  • Bar H, Bhui DK, Sahoo GP, et al. Green synthesis of silver nanoparticles using latex of. Jatropha Curcas Colloid Surf A. 2009;339:134–139.
  • Velmurugan P, S M L, Iydroose M, et al. Pine cone-mediated green synthesis of silver nanoparticles and their antibacterial activity against agricultural pathogens. Appl Microbiol Biot. 2013;97:361–368.
  • Li SK, Shen YH, Xie AJ, et al. Green synthesis of silver nanoparticles using Capsicum annuum L. extract. Green Chem. 2007;9:852.
  • Prakash A, Sharma S, Ahmad N, et al. Synthesis of AgNPs by bacillus cereus bacteria and their antimicrobial potential. J Biomater Nanobiotechnol. 2011;2:155–161.
  • Thakkar KN, Mhatre SS, Parikh RY. Biological synthesis of metallic nanoparticles. Nanomed Nanotechnol. 2010;6:257–262.
  • Chung IM, Park I, Seung-Hyun K, et al. Plant-mediated synthesis of silver nanoparticles: their characteristic properties and therapeutic applications. Nanoscale Res Lett. 2016;11:40.
  • Patil SV, Borase HP, Patil CD, et al. Biosynthesis of silver nanoparticles using latex from few euphorbian plants and their antimicrobial potential. Appl Biochem Biotech. 2012;167:776–790.
  • Khan M, Khan M, Adil SF, et al. Green synthesis of silver nanoparticles mediated by Pulicaria glutinosa extract. Int J Nanomedicine. 2013;8:351–363.
  • Christensen L, Vivekanandhan S, Misra M, et al. Biosynthesis of silver nanoparticles using murraya koenigii (curry leaf): an investigation on the effect of broth concentration in reduction mechanism and particle size. Adv Mat Lett. 2011;2:429–434.
  • Govindaraju K, Tamilselvan S, Kiruthiga V, et al. Biogenic silver nanoparticles by Solanum torvum and their promising antimicrobial activity. J Biopesticides. 2010;3:394.
  • Parashar UK, Kumar V, Bera T, et al. A Study of mechanism of enhanced antibacterial activity by green synthesis of silver nanoparticles. Nanotechnology. 2011;22:415104.
  • Mason C, Vivekanandhan S, Misra M, et al. Switchgrass (Panicum virgatum) extract mediated green synthesis of silver nanoparticles. World J Nano Sci Eng. 2012;2:47–52.
  • Subarani S, Sabhanayakam S, Kamaraj C. Studies on the impact of biosynthesized silver nanoparticles (AgNPs) in relation to malaria and filariasis vector control against anopheles stephensi liston and culex quinquefasciatus say (Diptera: culicidae). Parasitol Res. 2013;112:487–499.
  • Markus J, Wang D, Kim YJ, et al. Biosynthesis, characterization, and bioactivities evaluation of silver and gold nanoparticles mediated by the roots of Chinese herbal Angelica pubescens maxim. Nanoscale Res Lett. 2017;12:46.
  • Xin YF, Wan LL, Peng JL, et al. Alleviation of the acute doxorubicin-induced cardiotoxicity by Lycium barbarum polysaccharides through the suppression of oxidative stress. Food Chem Toxicol. 2011;49:791–798.
  • Chen Z, Tan BKH, Chan SH. Activation of T lymphocytes by polysaccharide-protein complex from Lycium barbarum L. Int Immunopharmacol. 2008;8:1663–1671.
  • Li XL, Zhou AG, Li XM. Inhibition of Lycium barbarum polysaccharides and Ganoderma lucidum polysaccharides against oxidative injury induced by γ-irradiation in rat liver mitochondria. Carbohyd Polym. 2007;69:172–178.
  • Luo Q, Li ZN, Huang XL, et al. Lycium barbarum polysaccharides: protective effects against heat-induced damage of rat testes and H2O2-induced DNA damage in mouse testicular cells and beneficial effect on sexual behavior and reproductive function of hemicastrated rats. Life Sci. 2006;79:2345–2348.
  • Amagase H, Farnsworth NR. A review of botanical characteristics, phytochemistry, clinical relevance in efficacy and safety of Lycium barbarum fruit (Goji). Food Res Int. 2011;44:1702–1717.
  • Wang CC, Chang SC, Inbaraj BS, et al. Isolation of carotenoids, flavonoids and polysaccharides from Lycium barbarum L. and evaluation of antioxidant activity. Food Chem. 2010;120:184–192.
  • Dong CF, Cao CL, Zhang XL, et al. Wolfberry fruit (Lycium barbarum) extract mediated novel route for the green synthesis of silver nanoparticles. Optik. 2016;130:162–170.
  • Annadhasan M, Sankarbabu VR, Naresh R, et al. A sunlight-induced rapid synthesis of silver nanoparticles using sodium salt of N-cholyl amino acids and its antimicrobial applications. Colloid Surf B. 2012;96:14–21.
  • He Y, Du ZY, Ma SJ, et al. Biosynthesis, antibacterial activity and anticancer effects against prostate cancer (PC-3) cells of silver nanoparticles using Dimocarpus longan lour. peel extract. Nanoscale Res Lett. 2016;11:1.
  • Aramwit P, Bang N, Ratanavaraporn J, et al. Green synthesis of silk sericin-capped silver nanoparticles and their potent anti-bacterial activity. Nanoscale Res Lett. 2014;9:79.
  • Shen HM, Ong CN, Shi CY. Involvement of reactive oxygen species in aflatoxin B1-induced cell injury in cultured rat hepatocytes. Toxicology. 1995;99:15–123.
  • Krishnaraj C, Jagan EG, Rajasekar S, et al. Synthesis of silver nanoparticles using Acalypha indica leaf extracts and its antibacterial activity against water borne pathogens. Colloid Surf B. 2010;76:50–56.
  • Loo YY, Chieng BW, Nishibuchi M, et al. Synthesis of silver nanoparticles by using tea leaf extract from Camellia sinensis. Int J Nanomedicine. 2012;7:3133–3142.
  • Smitha SL, Nissamuddin KM, Philip D, et al. Studies on surface plasmon resonance and photoluminescence of silver nanoparticles. Spectrochim Acta A. 2008;71:186–190.
  • Murugan K, Senthilkumar B, Senbagam D, et al. Biosynthesis of silver nanoparticles using Acacia leucophloea extract and their antibacterial activity. Int J Nanomedicine. 2014;9:2431.
  • Salunke GR, Ghosh S, Kumar RJS, et al. Rapid efficient synthesis and characterization of silver, gold, and bimetallic nanoparticles from the medicinal plant Plumbago zeylanica and their application in biofilm control. Int J Nanomedicine. 2014;9:2635.
  • Depan D, Misra RD. On the determining role of network structure titania in silicone against bacterial colonization: mechanism and disruption of biofilm. Mater Sci Eng C. 2014;34:221–228.
  • Sun D, Shahzad MB, Li M, et al. Antimicrobial materials with medical applications. Mater Technol. 2015;30:B90–B95.
  • Nune KC, Somani MC, Spencer CT, et al. Cellular response of Staphylococcus aureus to nanostructured metallic biomedical devices: surface binding and mechanism of disruption of colonization. Mater Technol. 2017;32:22–31.
  • Zhang D, Zhang B, Tang XN, et al. Preparation and characterisation of copper inorganic antibacterial material containing holmium. Mater Technol. 2015;30:B133–B138.
  • Yin Y, Zhang X, Wang D, et al. Study of antibacterial performance of a type 304 Cu bearing stainless steel against airborne bacteria in real life environments. Mater Technol. 2015;30:B104–B108.
  • Wang S, Zhu W, Yu P, et al. Antibacterial nanostructured copper coatings deposited on tantalum by magnetron sputtering. Mater Technol. 2015;30:B120–B125.
  • Girase B, Depan D, Shah JS, et al. Silver-clay nanohybrid structure for effective and diffusion-controlled antimicrobial activity. Mater Sci Eng C. 2011;31:1759–1766.
  • Misra RDK, Girase B, Depan D, et al. Hybrid nanoscale architecture for enhancement of antimicrobial activity: immobilization of silver nanoparticles on thiol-functionalized polymer crystallized on carbon nanotubes. Adv Eng Mater. 2012;14:B93–B100.
  • Ashour AA, Raafat D, El-Gowelli HM, et al. Green synthesis of silver nanoparticles using cranberry powder aqueous extract: characterization and antimicrobial properties. Int J Nanomedicine. 2015;10:7207.
  • Arokiyaraj S, Arasu MV, Vincent S, et al. Rapid green synthesis of silver nanoparticles from Chrysanthemum indicum L and its antibacterial and cytotoxic effects: an in vitro study. Int J Nanomedicine. 2014;9:379.
  • Wu K, Yang Y, Zhang YM, et al. Antimicrobial activity and cytocompatibility of silver nanoparticles coated catheters via a biomimetic surface functionalization strategy. Int J Nanomedicine. 2015;10:7241.
  • Huang HH, Tung KL, Lin YY. Treating Ti containing dental orthodontic wires with nitrogen plasma immersion ion implantation to reduce the metal ions release and bacterial adhesion. Mater Technol. 2015;30:B73–B79.

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