1,094
Views
18
CrossRef citations to date
0
Altmetric
Original Articles

Efficacy of silver nanoparticles mediated by Jania rubens and Sargassum dentifolium macroalgae; Characterization and biomedical applications

, , , &
Pages 249-255 | Received 05 Aug 2017, Accepted 17 Oct 2017, Published online: 08 Mar 2019

References

  • H.M.El-RafieM.H.El-RafieM.K.ZahranGreen synthesis of silver nanoparticles using polysaccharides extracted from marine macro algaeCarbohydr Polym96201340341010.1016/j.carbpol.2013.03.071
  • M.GoudarziM.BazarganipourM.Salavati-NiasariSynthesis, characterization and degradation of organic dye over Co3O4 nanoparticles prepared from new binuclear complex precursorsRSC Adv42014465174652010.1039/C4RA09653C
  • M.GoudarziN.MirM.Mousavi-KamazaniS.BagheriM.Salavati-NiasariBiosynthesis and characterization of silver nanoparticles prepared from two novel natural precursors by facile thermal decomposition methodsSci Rep6201632539
  • M.GoudarziD.GhanbariM.Salavati-NiasariA.AhmadiSynthesis and characterization of Al(OH)3, Al2O3 nanoparticles and polymeric nanocompositesJ Cluster Sci272016253810.1007/s10876-015-0895-5
  • M.GoudarziM.Salavati-NiasariM.MotaghedifardS.M.Hosseinpour-MashkaniSemiconductive Tl2O3 nanoparticles: facile synthesis in liquid phase, characterization and its applications as photocatalytic substrate and electrochemical sensorJ Mol Liq219201672072710.1016/j.molliq.2016.04.007
  • A.SailajaP.AmareshwarP.ChakravartyDifferent techniques used for the preparation of nanoparticles using natural polymers and their applicationInt J Pharm Pharm Sci320114550
  • L.Rodríguez-SánchezM.C.BlancoM.A.López-QuintelaElectrochemical synthesis of silver nanoparticlesJ Phys Chem B10420009683968810.1021/jp001761r
  • Y.GaoR.CranstonRecent advances in antimicrobial treatments of textilesText Res J782008607210.1177/0040517507082332
  • M.GoudarziD.GhanbariM.Salavati-niasariRoom temperature preparation of aluminum hydroxide nanoparticles and flame retardant poly vinyl alcohol nanocompositeJ Nanostruct5201511011510.7508/jns.2015.02.005
  • M.Mousavi-KamazaniM.Salavati-NiasariS.M.Hosseinpour-MashkaniM.GoudarziSynthesis and characterization of CuInS2 quantum dot in the presence of novel precursors and its application in dyes solar cellsMater Lett14520159910310.1016/j.matlet.2015.01.076
  • M.Mousavi-KamazaniM.Salavati-NiasariM.GoudarziZ.ZarghamiHydrothermal synthesis of CdIn nanostructures using new starting reagent for elevating solar cells efficiencyJ Mol Liq242201765366110.1016/j.molliq.2017.07.059
  • M.GoudarziM.Mousavi-KamazaniM.Salavati-NiasariZinc oxide nanoparticles: solvent-free synthesis, characterization and application as heterogeneous nanocatalyst for photodegradation of dye from aqueous phaseJ Mater Sci Mater Electron2820178423842810.1007/s10854-017-6560-z
  • W.SalemD.R.LeitnerF.G.ZinglG.SchratterR.PrasslW.Goessleret al.International journal of medical microbiology antibacterial activity of silver and zinc nanoparticles against Vibrio cholerae and enterotoxic Escherichia coliInt J Microbiol30520158595
  • W.M.SalemM.HaridyW.F.SayedN.H.HassanAntibacterial activity of silver nanoparticles synthesized from latex and leaf extract of Ficus sycomorusInd Crops Prod62201422823410.1016/j.indcrop.2014.08.030
  • K.SahayarajS.RajeshJ.M.RathiSilver nanoparticles biosynthesis using marine alga Padina pavonica (Linn.) and its microbicidal activityDig J Nanomater Biostruct7201215571567
  • M.M.El-SheekhH.Y.El-KassasApplication of biosynthesized silver nanoparticles against a cancer promoter cyanobacterium, Microcystis aeruginosaAsian Pac J Cancer Prev1520146773677910.7314/APJCP.2014.15.16.6773
  • Y.EhA.AmM.GsGreen synthesis of iron oxide (Fe3O4) nanoparticles using two selected brown seaweeds: characterization and application for lead bioremediationActa Oceanol Sin201610.1007/s13131-016-0880-3
  • O.VelgosováA.MražíkováR.MarcinčákováInfluence of pH on green synthesis of Ag nanoparticlesMater Lett180201633633910.1016/j.matlet.2016.04.045
  • S.AziziF.NamvarM.MahdaviA.M.BinRMohamadBiosynthesis of silver nanoparticles using brown marine macroalga, Sargassum muticum aqueous extractMaterials620135942
  • S.RajeshkumarC.MalarkodiK.PaulkumarM.VanajaG.GnanajobithaG.AnnaduraiAlgae mediated green fabrication of silver nanoparticles and examination of its antifungal activity against clinical pathogensInt J Metals201420141810.1155/2014/692643
  • K.-H.ChoJ.-E.ParkT.OsakaS.-G.ParkThe study of antimicrobial activity and preservative effects of nanosilver ingredientElectrochimica512005956960
  • B.ReidyA.HaaseA.LuchK.DawsonI.LynchMechanism of silver nanoparticle release, transformation and toxicity: a critical review of current knowledge and recommendations for future studies and applicationsMaterials62013229510.3390/ma6062295
  • B.Le OuayF.StellacciAntibacterial activity of silver nanoparticles: a surface science insightNano Today10201533935410.1016/j.nantod.2015.04.002
  • A.HaiderI.KangPreparation of silver nanoparticles and their industrial and biomedical applications: a comprehensive reviewAdv Mater Sci Eng2015201516
  • A.PugliaraK.MakashevaB.DespaxM.BayleR.CarlesP.Benzoet al.Assessing bio-available silver released from silver nanoparticles embedded in silica layers using the green algae Chlamydomonas reinhardtii as bio-sensorsSci Total Environ565201586387110.1016/j.scitotenv.2016.02.141
  • A.Davin-RegliJ.-M.BollaC.E.JamesJ.-P.LavigneJ.ChevalierE.Garnotelet al.Membrane permeability and regulation of drug “influx and efflux” in enterobacterial pathogensCurr Drug Targets9200875075910.2174/138945008785747824
  • C.NabetD.RaoultThe hidden epidemic of Escherichia coliClin Microbiol Infect202014O792310.1111/1469-0691.12757
  • E.LautenbachM.G.WeinerI.NachamkinW.B.BilkerA.SheridanN.O.FishmanImipenem resistance among Pseudomonas aeruginosa isolates: risk factors for infection and impact of resistance on clinical and economic outcomesInfect Control Hosp Epidemiol27200689390010.1086/507274
  • B.N.HarishG.A.MenezesDetermination of antimicrobial resistance in Salmonella spp.Methods Mol Biol122520154761
  • H.KurodaM.KurodaL.CuiK.HiramatsuSubinhibitory concentrations of β-lactam induce haemolytic activity in Staphylococcus aureus through the SaeRS two-component systemFEMS Microbiol Lett26820079810510.1111/j.1574-6968.2006.00568.x
  • H.-S.JooM.OttoMolecular basis of in-vivo biofilm formation by bacterial pathogensChem Biol1920131503151310.1016/j.chembiol.2012.10.022.Molecular
  • J.S.KimE.KukK.N.YuJ.KimS.J.ParkH.J.Leeet al.Antimicrobial effects of silver nanoparticlesNanomed Nanotechnol Biol Med320079510110.1016/j.nano.2006.12.001
  • S.ShrivastavaT.BeraA.RoyG.SinghP.RamachandraraoD.DashCharacterization of enhanced antibacterial effects of novel silver nanoparticlesNanotechnology1820101910.1088/0957-4484/18/22/225103
  • J.H.MuellerJ.HintonA protein-free medium for primary isolation of the Gonococcus and MeningococcusExp Biol Med48194133033310.3181/00379727-48-13311
  • J.EllofA quick microplate method to determine the minimum inhibitory sensitive and concentration of plant extracts for bacteriaPlanta Med641998711713
  • N.LallCJHenley-SmithM.N.De CanhaC.B.OosthuizenD.BerringtonViability reagent, prestoblue, in comparison with other available reagents, utilized in cytotoxicity and antimicrobial assaysInt J Microbiol2013201310.1155/2013/420601
  • A.SeperV.H.I.FenglerS.RoierH.WolinskiS.D.KohlweinA.L.Bishopet al.Extracellular nucleases and extracellular DNA play important roles in Vibrio cholerae biofilm formationMol Microbiol8220111015103710.1111/j.1365-2958.2011.07867.x
  • P.MulvaneyJ.PereraS.BiggsF.GrieserG.StevensThe direct measurement of the forces of interaction between a colloid particle and an oil dropletJ Colloid Interface Sci183199661461610.1006/jcis.1996.0588
  • A.A.A.B.D.El-raadyA.M.Abo-bakrOn the effect of complexing agents on the structural and optical properties of cds nanocrystalsChalcogenide Lett1020135562
  • A.Massaud MostafaLaser effect on particle size of Barium Titanate nanoparticles ⧹nprepared by a Sol-Gel MethodIOSR J Appl Phys (IOSR-JAP)620144649
  • K.JeevaM.ThiyagarajanV.ElangovanN.GeethaP.VenkatachalamCaesalpinia coriaria leaf extracts mediated biosynthesis of metallic silver nanoparticles and their antibacterial activity against clinically isolated pathogensInd Crops Prod52201471472010.1016/j.indcrop.2013.11.037
  • L.MahmudinE.SuharyadiA.BambangS.UtomoK.AbrahaOptical properties of silver nanoparticles for surface plasmon resonance (spr)-based biosensor applicationsJ Modern Phys620151071107610.4236/jmp.2015.68111
  • N.BudhirajaA.SharmaS.DahiyaR.ParmarSynthesis and optical characteristics of silver nanoparticles on different substratesLett Chem Ellipsis142013808810.18052/www.scipress.com/ILCPA.19.80
  • M.G.M.GuzmánJ.DilleS.GodetSynthesis of silver nanoparticles by chemical reduction method and their antibacterial activityInt Sholarly Sci Res Innovation22008919810.1007/s11814-010-0067-0
  • J.TaucR.GrigoroviciA.VancuOptical properties and electronic structure of amorphous GermaniumPhys Status Solidi (B)15196662763710.1002/pssb.19660150224
  • R.B.G.CamaraL.S.CostaG.P.FidelisL.T.D.B.NobreN.Dantas-SantosS.L.Cordeiroet al.Heterofucans from the brown seaweed Canistrocarpus cervicornis with anticoagulant and antioxidant activitiesMar Drugs9201112413810.3390/md9010124
  • M.MahdaviF.NamvarA.M.BinR.MohamadGreen biosynthesis and characterization of magnetic iron oxide (Fe3O₄) nanoparticles using seaweed (Sargassum muticum) aqueous extractMolecules18201359545964
  • V.VenkatpurwarV.PokharkarGreen synthesis of silver nanoparticles using marine polysaccharide: study of in-vitro antibacterial activityMater Lett652011999100210.1016/j.matlet.2010.12.057
  • YShaoYJinS.DongSynthesis of gold nanoplates by aspartate reduction of gold chlorideChem Commun200411041105
  • J.J.LeeH.Y.KimH.ZhouS.HwangK.KohD.-W.Hanet al.Green synthesis of phytochemical-stabilized Au nanoparticles under ambient conditions and their biocompatibility and antioxidative activityJ Mater Chem212011133161332610.1039/c1jm11592h
  • T.L.MooreL.Rodriguez-LorenzoV.HirschS.BalogD.UrbanC.Judet al.Nanoparticle colloidal stability in cell culture media and impact on cellular interactionsChem Soc Rev4420156287630510.1039/c4cs00487f
  • C.M.MannJ.L.MarkhamA new method for determining the minimum inhibitory concentration of essential oilsJ Appl Microbiol84199853854410.1046/j.1365-2672.1998.00379.x
  • J.C.PalominoA.MartinM.CamachoH.GuerraJ.SwingsF.PortaelsResazurin microtiter assay plate: simple and inexpensive method for detection of drug resistance in Mycobacterium tuberculosisAntimicrob Agents Chemother46200227202722
  • S.PrabhuE.K.PouloseSilver nanoparticles: mechanism of antimicrobial action, synthesis, medical applications, and toxicity effectsInt Nano Lett220123210.1186/2228-5326-2-32
  • X.ChenH.SchluesenerNanosilver: a nanoproduct in medical applicationToxicol Lett1762008112
  • Q.L.FengJ.WuG.Q.ChenF.Z.CuiT.N.KimJ.O.KimA mechanistic study of the antibacterial effect of silver ions on Escherichia coli and Staphylococcus aureusJ Biomed Mater Res2001662668
  • J.SteuberW.KrebsP.DimrothThe Na+-translocating NADH:ubiquinone oxidoreductase from Vibrio alginolyticus-redox states of the FAD prosthetic group and mechanism of Ag+ inhibitionEur J Biochem/FEBS249199777077610.1111/j.1432-1033.1997.t01-2-00770.x
  • D.J.RainnieP.BraggP.D.BraggD.J.RainnieThe effect of silver ions on the respiratory chain of Escherichia coliCan J Microbiol20197488388910.1139/m74-135
  • M.YamanakaK.HaraJ.KudoBactericidal actions of a silver ion solution on escherichia coli, studied by energy-filtering transmission electron microscopy and proteomic analysis bactericidal actions of a silver ion solution on Escherichia coli, studied by energy-filtering transmiAppl Environ Microbiol7120057589759310.1128/AEM.71.11.7589
  • Martinez-Gutierrez F, Boegli L, Agostinho A, Sánchez EM, Bach H, Ruiz F, et al. Anti-biofilm activity of silver nanoparticles against different microorganisms. https://doi.org/101080/089270142013794225; 2013.
  • V.PrabhawathiP.M.SivakumarM.DobleGreen synthesis of protein stabilized silver nanoparticles using Pseudomonas fluorescens, a marine bacterium, and its biomedical applications when coated on polycaprolactamInd Eng Chem Res5120125230523910.1021/ie2029392
  • R.ThenmozhiP.NithyanandJ.RathnaS.K.PandianAntibiofilm activity of coral associated bacteria against different clinical M serotypes of Streptococcus pyogenesFEMS Immunol Med Microbiol572009284294
  • S.GowrishankarN.Duncun MosiomaS.Karutha PandianCoral-associated bacteria as a promising antibiofilm agent against methicillin-resistant and -susceptible Staphylococcus aureus biofilmsEvid Based Complement Altern Med2012201210.1155/2012/862374
  • D.BakkiyarajS.K.PandianIn vitro and in vivo antibiofilm activity of a coral associated actinomycete against drug resistant Staphylococcus aureus biofilmsBiofouling26201071171710.1080/08927014.2010.511200
  • S.SayemE.ManzoL.CiavattaA.TramiceA.CordoneA.Zanfardinoet al.Anti-biofilm activity of an exopolysaccharide from a sponge-associated strain of Bacillus licheniformisMicrob Cell Fact1020117410.1186/1475-2859-10-74
  • J.B.KaplanC.RagunathK.VelliyagounderD.H.FineN.RamasubbuEnzymatic detachment of Staphylococcus epidermidis biofilmsAntimicrob Agents Chemother4820042633263610.1128/AAC.48.7.2633-2636.2004
  • N.HøibyT.BjarnsholtM.GivskovS.MolinO.CiofuAntibiotic resistance of bacterial biofilmsInt J Antimicrob Agents35201032233210.1016/j.ijantimicag.2009.12.011
  • C.M.Thien-fahG.A.O.TooleMechanisms of biofilm resistance to antimicrobial agentsTrends Microbiol920013439
  • K.MarkowskaA.M.GrudniakK.I.WolskaSilver nanoparticles as an alternative strategy against bacterial biofilmsActa Biochim Pol602013523530