Publication Cover
Materials Technology
Advanced Performance Materials
Volume 36, 2021 - Issue 12
218
Views
11
CrossRef citations to date
0
Altmetric
Research Article

Comparison of antibacterial and cytotoxic activities of phytosynthesized ZnONPs by leaves extract of Daphne mucronata at different salt sources

, ORCID Icon &
Pages 747-759 | Received 01 Mar 2020, Accepted 21 Jun 2020, Published online: 20 Jul 2020

References

  • Vidya C, Hiremath S, Chandraprabha MN, et al. Green synthesis of ZnO nanoparticles by calotropis gigantea. Int J Curr Eng Technol. 2013;1:118–120.
  • Alavi M, Nokhodchi A. An overview on antimicrobial and wound healing properties of ZnO nanobiofilms, hydrogels, and bionanocomposites based on cellulose, chitosan, and alginate polymers. Carbohydr Polym. 2019; 227: p. 115349.
  • Wang H, Ma R, Nienhaus K, et al. Formation of a monolayer protein corona around polystyrene nanoparticles and implications for nanoparticle agglomeration. Small. 2019;15(22):1900974.
  • Alavi M, Karimi N, Safaei M. Application of various types of liposomes in drug delivery systems. Adv Pharm Bull. 2017;7(1):3.
  • Muhammad W, Khan MA, Nazir M, et al. Papaver somniferum L. mediated novel bioinspired lead oxide (PbO) and iron oxide (Fe2O3) nanoparticles: in-vitro biological applications, biocompatibility and their potential towards HepG2 cell line. Mater Sci Eng C. 2019;103:109740.
  • Taran M, Rad M, Alavi M. Characterization of Ag nanoparticles biosynthesized by Bacillus sp. HAI4 in different conditions and their antibacterial effects. J Appl Pharm Sci. 2016;6(11):9–94.
  • Rad M, Taran M, Alavi M. Effect of incubation time, CuSO4 and glucose concentrations on biosynthesis of copper oxide (CuO) nanoparticles with rectangular shape and antibacterial activity: taguchi method approach. Nano Biomed Eng. 2018;10(1):25–33.
  • Taran M, Monazah A, Alavi M. Using petrochemical wastewater for synthesis of cruxrhodopsin as an energy capturing nanoparticle by Haloarcula sp. IRU. Prog Biol Sci. 2017;6(2):151–157.
  • Aygün A, Özdemir S, Gülcan M, et al. Synthesis and characterization of Reishi mushroom-mediated green synthesis of silver nanoparticles for the biochemical applications. J Pharm Biomed Anal. 2020;178:112970.
  • Alavi M, Karimi N. Characterization, antibacterial, total antioxidant, scavenging, reducing power and ion chelating activities of green synthesized silver, copper and titanium dioxide nanoparticles using Artemisia haussknechtii leaf extract. Artif Cells Nanomed Biotechnol. 2018;46(8):2066–2081.
  • Minh Dat N, Linh VNP, Huy LA, et al. Fabrication and antibacterial activity against Pseudomonas aeruginosa and Staphylococcus aureus of silver nanoparticle decorated reduced graphene oxide nanocomposites. Mater Technol. 2019;34(7):369–375.
  • Ponnamma D, Cabibihan -J-J, Rajan M, et al. Synthesis, optimization and applications of ZnO/polymer nanocomposites. Mater Sci Eng C. 2019;98:1210–1240.
  • Ma L, Liu B, Huang P-J-J, et al. DNA adsorption by ZnO nanoparticles near its solubility limit: implications for DNA fluorescence quenching and DNAzyme activity assays. Langmuir. 2016;32(22):5672–5680.
  • Chupani L, Zusková E, Niksirat H, et al. Effects of chronic dietary exposure of zinc oxide nanoparticles on the serum protein profile of juvenile common carp (Cyprinus carpio L.). SciTotal Environ. 2017;579:1504–1511.
  • Adawi HI, Newbold MA, Reed JM, et al. Nano-enabled personal care products: current developments in consumer safety. NanoImpact. 2018;11:170–179.
  • RajeshKumar S, Lakshmi T, Naik P. Recent advances and biomedical applications of zinc oxide nanoparticles. Green synthesis, characterization and applications of nanoparticles. A Volume in Micro and Nano Technologies. Elsevier; 2019. p. 445–457.
  • Taran M, Rad M, Alavi M. Biosynthesis of TiO2 and ZnO nanoparticles by Halomonas elongata IBRC-M 10214 in different conditions of medium. Bioimpacts. 2018;8(2):81.
  • Alavi M, Karimi N, Salimikia I. Phytosynthesis of zinc oxide nanoparticles and its antibacterial, antiquorum sensing, antimotility, and antioxidant capacities against multidrug resistant bacteria. J Ind Eng Chem. 2019;72:457–473.
  • Arvanag FM, Bayrami A, Habibi-Yangjeh A, et al. A comprehensive study on antidiabetic and antibacterial activities of ZnO nanoparticles biosynthesized using Silybum marianum L seed extract. Mater Sci Eng C. 2019;97:397–405.
  • Alavi M, Rai M. Recent advances in antibacterial applications of metal nanoparticles (MNPs) and metal nanocomposites (MNCs) against multidrug-resistant (MDR) bacteria. Expert Rev Anti Infect Ther. 2019;17(6):419–428.
  • Chandra H, Patel D, Kumari P, et al. Phyto-mediated synthesis of zinc oxide nanoparticles of Berberis aristata: characterization, antioxidant activity and antibacterial activity with special reference to urinary tract pathogens. Mater Sci Eng C. 2019;102:212–220.
  • Badkoobeh P, Parivar K, Kalantar SM, et al. Effect of nano-zinc oxide on doxorubicin-induced oxidative stress and sperm disorders in adult male Wistar rats. Iran J Reprod Med. 2013;11(5):355.
  • Shaheen S, Ahmad M, Haroon N. Status of edible wild plants in Pakistan: case studies. In: Edible wild plants: an alternative approach to food security. Springer. 2017. p. 65–125.
  • Shah A, Lutfullah G, Ahmad K, et al. Daphne mucronata-mediated phytosynthesis of silver nanoparticles and their novel biological applications, compatibility and toxicity studies. Green Chem Lett Rev. 2018;11(3):318–333.
  • Lee J, Kim S, Sim J-Y, et al. A potent antibacterial activity of new short D-enantiomeric lipopeptide against multi drug resistant bacteria. Biochimi Biophys Acta (BBA) Biomembr. 2019;1861(1):34–42.
  • Tomane S, López-Maya E, Boujday S, et al. Correction: one-pot synthesis of a new generation of hybrid bisphosphonate polyoxometalate gold nanoparticles as antibiofilm agents. Nanoscale Adv. 2019;1(10):4173.
  • Balaji S, Mandal BK, Ranjan S, et al. Nano-zirconia–evaluation of its antioxidant and anticancer activity. J Photochem Photobiol B Biol. 2017;170:125–133.
  • Ravichandran V, Vasanthi S, Shalini S, et al. Green synthesis of silver nanoparticles using Atrocarpus altilis leaf extract and the study of their antimicrobial and antioxidant activity. Mater Lett. 2016;180:264–267.
  • Lee KD, Nagajyothi PC, Sreekanth TVM, et al. Eco-friendly synthesis of gold nanoparticles (AuNPs) using Inonotus obliquus and their antibacterial, antioxidant and cytotoxic activities. J Ind Eng Chem. 2015;26:67–72.
  • Fu L, Fu Z. Plectranthus amboinicus leaf extract–assisted biosynthesis of ZnO nanoparticles and their photocatalytic activity. Ceram Int. 2015;41(2):2492–2496.
  • Vijayakumar S, Vaseeharan B. Antibiofilm, anti cancer and ecotoxicity properties of collagen based ZnO nanoparticles. Adv Powder Technol. 2018;29(10):2331–2345.
  • Chen H, Gao M, Huang H. Biosynthesis of zinc oxide nanoparticles and their catalytic and disinfection evaluation. Mater Res Express. 2019;6(8):085081.
  • Sundrarajan M, Ambika S, Bharathi K. Plant-extract mediated synthesis of ZnO nanoparticles using Pongamia pinnata and their activity against pathogenic bacteria. Adv Powder Technol. 2015;26(5):1294–1299.
  • Alijani HQ, Pourseyedi S, Mahani MT, et al. Green synthesis of zinc sulfide (ZnS) nanoparticles using Stevia rebaudiana Bertoni and evaluation of its cytotoxic properties. J Mol Struct. 2019;1175:214–218.
  • Bafekr JJ, Jalal R. In vitro antibacterial activity of ceftazidime, unlike ciprofloxacin, improves in the presence of ZnO nanofluids under acidic conditions. IET Nanobiotechnol. 2018;12(5):640–646.
  • Shao D, Wei Q. Microwave-assisted rapid preparation of nano-ZnO/Ag composite functionalized polyester nonwoven membrane for improving its UV shielding and antibacterial properties. Materials. 2018;11(8):1412.
  • Al-Shabib NA, Husain FM, Ahmed F, et al. Biogenic synthesis of Zinc oxide nanostructures from Nigella sativa seed: prospective role as food packaging material inhibiting broad-spectrum quorum sensing and biofilm. Sci Rep. 2016;6:36761.
  • Rawat J, Rana S, Sorensson MM, et al. Anti-microbial activity of doped anatase titania coated nickel ferrite composite nanoparticles. Mater Sci Technol. 2007;23(1):97–102.
  • Venkatasubramanian R, Srivastava RS, Misra RDK. Comparative study of antimicrobial and photocatalytic activity in titania encapsulated composite nanoparticles with different dopants. Mater Sci Technol. 2008;24(5):589–595.
  • David TM, Wilson P, Mahesh R, et al. Photocatalytic water splitting of TiO2 nanotubes powders prepared via rapid breakdown anodization sensitized with Pt, Pd and Ni nanoparticles. Mater Technol. 2018;33(4):288–300.
  • Liu H, Li D, Yang X, et al. Fabrication and characterization of Ag3PO4/TiO2 heterostructure with improved visible-light photocatalytic activity for the degradation of methyl orange and sterilization of E.coli. Mater Technol. 2019 2019/03/21;34(4):192–203.
  • Liang Y, Wang S, Guo P. Effects of Ag on the photocatalytic activity of multiple layer TiO2 films. Mater Technol. 2017 2017/01/02;32(1):46–51.
  • Shakerimoghaddam A, Ghaemi EA, Jamalli A. Zinc oxide nanoparticle reduced biofilm formation and antigen 43 expressions in uropathogenic Escherichia coli. Iran J Basic Med Sci. 2017;20(4):451.
  • Abbasvali M, Ebrahimi Kahrizsangi A, Shahriari F. Evaluation of the inhibitory effects of zinc oxide nanoparticles on biofilm formation of some foodborne bacterial pathogens. Iranian J Med Microbiol. 2017;11(5):115–124.
  • Depan D, Misra RDK. 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.
  • Luo F, Tang Z, Xiao S, et al. Study on properties of copper-containing austenitic antibacterial stainless steel. Mater Technol. 2019 2019/07/29;34(9):525–533.
  • 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 2017/01/02;32(1):22–31.
  • Selvakumari D, Deepa R, Mahalakshmi V, et al. Anti cancer activity of ZnO nanoparticles on MCF7 (breast cancer cell) and A549 (lung cancer cell). ARPN J Eng Appl Sci. 2015;10(12):5418–5421.
  • Singh S. Zinc oxide nanoparticles impacts: cytotoxicity, genotoxicity, developmental toxicity, and neurotoxicity. Toxicol Mech Methods. 2019;29(4):300–311.
  • Sukri SNAM, Shameli K, Wong MM-T, et al. Cytotoxicity and antibacterial activities of plant-mediated synthesized zinc oxide (ZnO) nanoparticles using Punica granatum (pomegranate) fruit peels extract. J Mol Struct. 2019;1189:57–65.
  • Ramos-Corella KJ, Sotelo-Lerma M, Gil-Salido AA, et al. Controlling crystalline phase of TiO2 thin films to evaluate its biocompatibility. Mater Technol. 2019 2019/07/03;34(8):455–462.
  • Rajakumar G, Thiruvengadam M, Mydhili G, et al. Green approach for synthesis of zinc oxide nanoparticles from Andrographis paniculata leaf extract and evaluation of their antioxidant, anti-diabetic, and anti-inflammatory activities. Bioprocess Biosyst Eng. 2018;41(1):21–30.
  • Tettey CO, Shin HM. Evaluation of the antioxidant and cytotoxic activities of zinc oxide nanoparticles synthesized using scutellaria baicalensis root. Sci African. 2019;6: e00157.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.