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THE SYNTHESIS OF NANOPARTICLES AND THE CURRENT APPLICATION IN DIFFERENT DOMAINS

Year 2023, Issue: 004, 33 - 53, 30.06.2023

Abstract

Nanomaterials are one of the most popular materials that can be used in many fields in recent years. According to the related definition, these materials are known to be formed by the combination of at least one size less than 100 nm or very small materials. In nanomaterials, size is very important as it generally provides information about their structure and properties. There are different synthesis methods for the production of nanomaterials. The most preferred method among these is the environmentally friendly green synthesis method. This method is a cost-effective, environmentally friendly, non-toxic biological method. addition, the usage areas of nanomaterials vary depending on their size. At this point, the dimensions of nanomaterials are; It can change their thermal, mechanical, optical, electrical, and magnetic properties. At the same time, nanomaterials are widely used in the materials and manufacturing industries, the medical-health industry, aerospace research, environmental and energy systems, biotechnology, agriculture, and food industries. In light of this information, within the scope of the study; The green synthesis production method of nanomaterials, their dimensions, general properties, and characterizations used to determine their physical and chemical properties are mentioned. In addition, research on drug release, antimicrobial, antifungal, anticarcinogenic, and environmental applications of nanomaterials were presented. Within the scope of these studies, it has been seen that nanomaterials are very interesting in the health sector, their applications should be increased, and it has been concluded that nanomaterials can produce solutions for many diseases with these applications. In addition, the data obtained show that nanomaterials with properties that can be used in many areas are very promising for the future.

References

  • [1] Lines, M.G., (2008), Nanomaterials for practical functional uses, Journal of Alloys and Compounds, 449, 242–245.
  • [2] Xia, C., Jin, X., Garalleh, H. AL, Garaleh, M., Wu, Y., Hill, J.M., et al., (2023), Optimistic and possible contribution of nanomaterial on biomedical applications: A review, Environmental Research, 218, 114921.
  • [3] El-Kady, M.M., Ansari, I., Arora, C., Rai, N., Soni, S., Verma, D.K., et al., (2023), Nanomaterials: A comprehensive review of applications, toxicity, impact, and fate to environment, Journal of Molecular Liquids, 370, 121046.
  • [4] Calipinar, H. and Ulas, D., (2019), Development of Nanotechnology in the World and Nanotechnology Standards in Turkey, Procedia Computer Science, 158, 1011–1018.
  • [5] Baig, N., (2023), Two-dimensional nanomaterials: A critical review of recent progress, properties, applications, and future directions, Composites Part A: Applied Science and Manufacturing, 165, 107362.
  • [6] Khan, I., Saeed, K., and Khan, I., (2019), Nanoparticles: Properties, applications and toxicities, Arabian Journal of Chemistry, 12, 908–931.
  • [7] Chong, L., Wen, J., Kubal, J., Sen, F.G., Zou, J., Greeley, J., et al., (2018), Ultralow-loading platinum-cobalt fuel cell catalysts derived from imidazolate frameworks, Science, 362, 1276–1281.
  • [8] Kulshrestha, S. and Khan, A.U., (2018), Nanomedicine for anticancer and antimicrobial treatment: an overview, IET Nanobiotechnology, 12, 1009.
  • [9] Alğin Yapar, E. and İnal, Ö., (2012), NANOMATERIALS AND COSMETICS, Istanbul Ecz. Fak. Derg. / J. Fac. Pharm. Istanbul, 42,.
  • [10] Orooji, Y., Sohrabi, H., Hemmat, N., Oroojalian, F., Baradaran, B., Mokhtarzadeh, A., et al., (2020), An Overview on SARS-CoV-2 (COVID-19) and Other Human Coronaviruses and Their Detection Capability via Amplification Assay, Chemical Sensing, Biosensing, Immunosensing, and Clinical Assays, Nano-Micro Letters 2020 13:1, 13, 1–30.
  • [11] Thakore, S., Rathore, P.S., Jadeja, R.N., Thounaojam, M., and Devkar, R. V., (2014), Sunflower oil mediated biomimetic synthesis and cytotoxicity of monodisperse hexagonal silver nanoparticles, Materials Science and Engineering: C, 44, 209–215.
  • [12] Dutz, S., Hergt, R., Mürbe, J., Müller, R., Zeisberger, M., Andrä, W., et al., (2007), Hysteresis losses of magnetic nanoparticle powders in the single domain size range, Journal of Magnetism and Magnetic Materials, 308, 305–312.
  • [13] Maleki, A., Rahimi, R., Maleki, S., and Hamidi, N., (2014), Synthesis and characterization of magnetic bromochromate hybrid nanomaterials with triphenylphosphine surface-modified iron oxide nanoparticles and their catalytic application in multicomponent reactions, RSC Advances, 4, 29765–29771.
  • [14] Zhao, S., Guo, J., Li, W., Guo, H., and You, B., (2018), Fabrication of cobalt aluminate nanopigments by coprecipitation method in threonine waterborne solution, Dyes and Pigments, 151, 130–139.
  • [15] Dong, H., Du, S.R., Zheng, X.Y., Lyu, G.M., Sun, L.D., Li, L.D., et al., (2015), Lanthanide Nanoparticles: From Design toward Bioimaging and Therapy, Chemical Reviews, 115, 10725–10815.
  • [16] Okoli, C.U., Kuttiyiel, K.A., Cole, J., McCutchen, J., Tawfik, H., Adzic, R.R., et al., (2018), Solvent effect in sonochemical synthesis of metal-alloy nanoparticles for use as electrocatalysts, Ultrasonics Sonochemistry, 41, 427–434.
  • [17] Low, S.S., Yew, M., Lim, C.N., Chai, W.S., Low, L.E., Manickam, S., et al., (2022), Sonoproduction of nanobiomaterials - A critical review, Ultrasonics Sonochemistry, 82,.
  • [18] Panahi-Kalamuei, M., Mousavi-Kamazani, M., Salavati-Niasari, M., and Hosseinpour-Mashkani, S.M., (2015), A simple sonochemical approach for synthesis of selenium nanostructures and investigation of its light harvesting application, Ultrasonics Sonochemistry, 23, 246–256.
  • [19] Hasany, S.F., Ahmed, I., J, R., and Rehman, A., (2012), Systematic Review of the Preparation Techniques of Iron Oxide Magnetic Nanoparticles, Nanoscience and Nanotechnology, 2, 148–158.
  • [20] Huston, M., Debella, M., Dibella, M., and Gupta, A., (2021), Green Synthesis of Nanomaterials, Nanomaterials, 11,.
  • [21] Birla, S.S., Tiwari, V. V., Gade, A.K., Ingle, A.P., Yadav, A.P., and Rai, M.K., (2009), Fabrication of silver nanoparticles by Phoma glomerata and its combined effect against Escherichia coli, Pseudomonas aeruginosa and Staphylococcus aureus, Letters in Applied Microbiology, 48, 173–179.
  • [22] Ganesh Babu, M.M. and Gunasekaran, P., (2009), Production and structural characterization of crystalline silver nanoparticles from Bacillus cereus isolate, Colloids and Surfaces B: Biointerfaces, 74, 191–195.
  • [23] Bansal, V., Rautaray, D., Ahmad, A., and Sastry, M., (2004), Biosynthesis of zirconia nanoparticles using the fungus Fusarium oxysporum, Journal of Materials Chemistry, 14, 3303–3305.
  • [24] Yap, Y.H., Azmi, A.A., Mohd, N.K., Yong, F.S.J., Kan, S.Y., Thirmizir, M.Z.A., et al., (2020), Green Synthesis of Silver Nanoparticle Using Water Extract of Onion Peel and Application in the Acetylation Reaction, Undefined, 45, 4797–4807.
  • [25] Saravanakumar, K., Chelliah, R., Shanmugam, S., Varukattu, N.B., Oh, D.-H., Kathiresan, K., et al., (2018), Green synthesis and characterization of biologically active nanosilver from seed extract of Gardenia jasminoides Ellis, Journal of Photochemistry and Photobiology B: Biology, 185, 126–135.
  • [26] Stozhko, N.Y., Bukharinova, M.A., Khamzina, E.I., Tarasov, A. V., Vidrevich, M.B., and Brainina, K.Z., (2019), The Effect of the Antioxidant Activity of Plant Extracts on the Properties of Gold Nanoparticles, Nanomaterials 2019, Vol. 9, Page 1655, 9, 1655.
  • [27] Fardsadegh, B. and Jafarizadeh-Malmiri, H., (2019), Aloe vera leaf extract mediated green synthesis of selenium nanoparticles and assessment of their in vitro antimicrobial activity against spoilage fungi and pathogenic bacteria strains, Green Processing and Synthesis, 8, 399–407.
  • [28] Behravan, M., Hossein Panahi, A., Naghizadeh, A., Ziaee, M., Mahdavi, R., and Mirzapour, A., (2019), Facile green synthesis of silver nanoparticles using Berberis vulgaris leaf and root aqueous extract and its antibacterial activity, International Journal of Biological Macromolecules, 124, 148–154.
  • [29] Ma, W., Zhan, Y., Zhang, Y., Mao, C., Xie, X., and Lin, Y., (2021), The biological applications of DNA nanomaterials: current challenges and future directions, Signal Transduction and Targeted Therapy 2021 6:1, 6, 1–28.
  • [30] Göl, F., Aygün, A., Seyrankaya, A., Gür, T., Yenikaya, C., and Şen, F., (2020), Green synthesis and characterization of Camellia sinensis mediated silver nanoparticles for antibacterial ceramic applications, Materials Chemistry and Physics, 250, 123037.
  • [31] Kocak, Y., Oto, G., Meydan, I., Seckin, H., Gur, T., Aygun, A., et al., (2022), Assessment of therapeutic potential of silver nanoparticles synthesized by Ferula Pseudalliacea rech. F. plant, Inorganic Chemistry Communications, 140, 109417.
  • [32] Gulbagca, F., Ozdemir, S., Gulcan, M., and Sen, F., (2019), Synthesis and characterization of Rosa canina-mediated biogenic silver nanoparticles for anti-oxidant, antibacterial, antifungal, and DNA cleavage activities, Heliyon, 5, e02980.
  • [33] Kannan M Krishnan, (2016), Fundamentals and Applications of Magnetic, Oxford University Press,.
  • [34] Bazylinski, D.A., Garratt‐Reed, A.J., and Frankel, R.B., (1994), Electron microscopic studies of magnetosomes in magnetotactic bacteria, Microscopy Research and Technique, 27, 389–401.
  • [35] Bunaciu, A.A., Udriştioiu, E. gabriela, and Aboul-Enein, H.Y., (2015), X-Ray Diffraction: Instrumentation and Applications, Http://Dx.Doi.Org/10.1080/10408347.2014.949616, 45, 289–299.
  • [36] Bishnoi, A., Kumar, S., and Joshi, N., (2017), Wide-Angle X-ray Diffraction (WXRD): Technique for Characterization of Nanomaterials and Polymer Nanocomposites, Microscopy Methods in Nanomaterials Characterization, 313–337.
  • [37] Lin, P.C., Lin, S., Wang, P.C., and Sridhar, R., (2014), Techniques for physicochemical characterization of nanomaterials, Biotechnology Advances, 32, 711.
  • [38] Karimi, F., Akin, M., Bayat, R., Bekmezci, M., Darabi, R., Aghapour, E., et al., (2023), Application of Quasihexagonal Pt@PdS2-MWCNT catalyst with High Electrochemical Performance for Electro-Oxidation of Methanol, 2-Propanol, and Glycerol Alcohols For Fuel Cells, Molecular Catalysis, 536, 112874.
  • [39] Inkson, B.J., (2016), Scanning electron microscopy (SEM) and transmission electron microscopy (TEM) for materials characterization, Materials Characterization Using Nondestructive Evaluation (NDE) Methods, 17–43.
  • [40] Williams, D.B. and Carter, C.B., (2009), Transmission electron microscopy: A textbook for materials science, Transmission Electron Microscopy: A Textbook for Materials Science, 1–760.
  • [41] Rydz, J., Šišková, A., and Andicsová Eckstein, A., (2019), Scanning Electron Microscopy and Atomic Force Microscopy: Topographic and Dynamical Surface Studies of Blends, Composites, and Hybrid Functional Materials for Sustainable Future, Advances in Materials Science and Engineering, 2019,.
  • [42] Marti, O., Ribi, H.O., Drake, B., Albrecht, T.R., Quate, C.F., and Hansma, P.K., (1988), Atomic Force Microscopy of an Organic Monolayer, Science, 239, 50–52.
  • [43] Crucho, C.I.C. and Barros, M.T., (2017), Polymeric nanoparticles: A study on the preparation variables and characterization methods, Materials Science and Engineering: C, 80, 771–784.
  • [44] Meydan, I., Seckin, H., Burhan, H., Gür, T., Tanhaei, B., and Sen, F., (2022), Arum italicum mediated silver nanoparticles: Synthesis and investigation of some biochemical parameters, Environmental Research, 204, 112347.
  • [45] Wu, Y., Altuner, E.E., El Houda Tiri, R.N., Bekmezci, M., Gulbagca, F., Aygun, A., et al., (2022), Hydrogen generation from methanolysis of sodium borohydride using waste coffee oil modified zinc oxide nanoparticles and their photocatalytic activities, International Journal of Hydrogen Energy,.
  • [46] Oh, S.Y., Yoo, D. Il, Shin, Y., and Seo, G., (2005), FTIR analysis of cellulose treated with sodium hydroxide and carbon dioxide, Carbohydrate Research, 340, 417–428.
  • [47] Kazarian, S.G. and Chan, K.L.A., (2006), Applications of ATR-FTIR spectroscopic imaging to biomedical samples, Biochimica et Biophysica Acta (BBA) - Biomembranes, 1758, 858–867. [48] Kane, S.R., Ashby, P.D., and Pruitt, L.A., (2009), ATR-FTIR as a thickness measurement technique for hydrated polymer-on-polymer coatings, Journal of Biomedical Materials Research Part B: Applied Biomaterials, 91B, 613–620.
  • [49] Parrott, E.P.J. and Zeitler, J.A., (2015), Terahertz Time-Domain and Low-Frequency Raman Spectroscopy of OrganicMaterials, Applied Spectroscopy, Vol. 69, Issue 1, Pp. 1-25, 69, 1–25.
  • [50] Reddy, K.R., (2017), Green synthesis, morphological and optical studies of CuO nanoparticles, Journal of Molecular Structure, 1150, 553–557.
  • [51] Moskovits, M., Braun, G.B., Lee, S.J., Laurence, T., Fera, N., Fabris, L., et al., (2009), Generalized approach to SERS-active nanomaterials via controlled nanoparticle linking, polymer encapsulation, and small-molecule infusion, Journal of Physical Chemistry C, 113, 13622–13629.
  • [52] An, C., Sun, C., Li, N., Huang, B., Jiang, J., Shen, Y., et al., (2022), Nanomaterials and nanotechnology for the delivery of agrochemicals: strategies towards sustainable agriculture, Journal of Nanobiotechnology 2021 20:1, 20, 1–19.
  • [53] Wu, Q., Miao, W.S., Zhang, Y. Du, Gao, H.J., and Hui, D., (2020), Mechanical properties of nanomaterials: A review, Nanotechnology Reviews, 9, 259–273.
  • [54] Nikaeen, G., Abbaszadeh, S., and Yousefinejad, S., (2020), Application of nanomaterials in treatment, anti-infection and detection of coronaviruses, Nanomedicine, 15, 1501–1512.
  • [55] Yoosefian, M., Karimi-Maleh, H., and Sanati, A.L., (2015), A theoretical study of solvent effects on the characteristics of the intramolecular hydrogen bond in Droxidopa, Journal of Chemical Sciences, 127, 1007–1013.
  • [56] Dang, Y. and Guan, J., (2020), Nanoparticle-based drug delivery systems for cancer therapy, Smart Materials in Medicine, 1, 10–19.
  • [57] Adeyemi, O.S. and Sulaiman, F.A., (2015), Evaluation of metal nanoparticles for drug delivery systems, Journal of Biomedical Research, 29, 145.
  • [58] Tüylek, Z., (2019), Arşiv Kaynak Tarama Dergisi Archives Medical Review Journal İlaç Taşıyıcı Nanosistemler Drug Delivery Nanosystems, Archives Medical Review Journal, 28, 184–192.
  • [59] Bapat, R.A., Chaubal, T. V., Joshi, C.P., Bapat, P.R., Choudhury, H., Pandey, M., et al., (2018), An overview of application of silver nanoparticles for biomaterials in dentistry, Materials Science and Engineering: C, 91, 881–898.
  • [60] Mukherjee, S., Mukherjee, S., Abourehab, M.A.S., Sahebkar, A., and Kesharwani, P., (2022), Exploring dendrimer-based drug delivery systems and their potential applications in cancer immunotherapy, European Polymer Journal, 177, 111471.
  • [61] Ahmad, S., Munir, S., Zeb, N., Ullah, A., Khan, B., Ali, J., et al., (2019), Green nanotechnology: A review on green synthesis of silver nanoparticles — An ecofriendly approach, International Journal of Nanomedicine, 14, 5087–5107.
  • [62] Mousavi, S.M., Hashemi, S.A., Ghasemi, Y., Atapour, A., Amani, A.M., Savar Dashtaki, A., et al., (2018), Green synthesis of silver nanoparticles toward bio and medical applications: review study, Https://Doi.Org/10.1080/21691401.2018.1517769, 46, S855–S872.
  • [63] Govindaraju, K., Krishnamoorthy, K., Alsagaby, S.A., Singaravelu, G., and Premanathan, M., (2015), Green synthesis of silver nanoparticles for selective toxicity towards cancer cells, IET Nanobiotechnology, 9, 325–330.
  • [64] Chinnathambi, A., Alharbi, S.A., Joshi, D., V, S., Jhanani, G.K., On-uma, R., et al., (2023), Synthesis of AgNPs from leaf extract of Naringi crenulata and evaluation of its antibacterial activity against multidrug resistant bacteria, Environmental Research, 216, 114455.
  • [65] Eskandari-Nojedehi, M., Jafarizadeh-Malmiri, H., and Rahbar-Shahrouzi, J., (2018), Hydrothermal green synthesis of gold nanoparticles using mushroom (Agaricus bisporus) extract: Physico-chemical characteristics and antifungal activity studies, Green Processing and Synthesis, 7, 38–47.
  • [66] Bollella, P., Schulz, C., Favero, G., Mazzei, F., Ludwig, R., Gorton, L., et al., (2017), Green Synthesis and Characterization of Gold and Silver Nanoparticles and their Application for Development of a Third Generation Lactose Biosensor, Electroanalysis, 29, 77–86.
  • [67] Ganeshkumar, M., Ponrasu, T., Raja, M.D., Subamekala, M.K., and Suguna, L., (2014), Green synthesis of pullulan stabilized gold nanoparticles for cancer targeted drug delivery, Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy, 130, 64–71.
  • [68] Magogotya, M., Vetten, M., Roux-van der Merwe, M.P., Badenhorst, J., and Gulumian, M., (2022), In vitro toxicity and internalization of gold nanoparticles (AuNPs) in human epithelial colorectal adenocarcinoma (Caco-2) cells and the human skin keratinocyte (HaCaT) cells, Mutation Research/Genetic Toxicology and Environmental Mutagenesis, 883–884, 503556.
  • [69] Ramos, J., Imaz, A., Callejas-Fernández, J., Barbosa-Barros, L., Estelrich, J., Quesada-Pérez, M., et al., (2011), Soft nanoparticles (thermo-responsive nanogels and bicelles) with biotechnological applications: from synthesis to simulation through colloidal characterization, Soft Matter, 7, 5067–5082.
  • [70] Rimondino, G.N., Miceli, E., Molina, M., Wedepohl, S., Thierbach, S., Rühl, E., et al., (2017), Rational design of dendritic thermoresponsive nanogels that undergo phase transition under endolysosomal conditions, Journal of Materials Chemistry B, 5, 866–874.
  • [71] Yurdasiper, A., Şahiner, A., and Gökçe, E.H., (2022), Preparation of thermoresponsive triclosan poly (N-isopropylacrylamide) nanogels and evaluation of antibacterial efficacy on Cutibacterium acnes, Journal of Drug Delivery Science and Technology, 76, 103734.
  • [72] Dymek, M. and Sikora, E., (2022), Liposomes as biocompatible and smart delivery systems – the current state, Advances in Colloid and Interface Science, 309, 102757.
  • [73] Kazemi, M., Aghamaali, M.R., Madani, R., Emami, T., and Golchinfar, F., (2022), Evaluating the Immunogenicity of recombinant VP1 protein from the foot-and-mouth disease virus encapsulated in nanoliposome in guinea pig animal model, Veterinary Immunology and Immunopathology, 253, 110497.
  • [74] Elsewedy, H.S., Al-Dhubiab, B.E., Mahdy, M.A., and Elnahas, H.M., (2021), Basic concepts of nanoemulsion and its potential application in pharmaceutical, cosmeceutical and nutraceutical fields, Research Journal of Pharmacy and Technology, 14, 3938–3946.
  • [75] Moghassemi, S., Dadashzadeh, A., Azevedo, R.B., and Amorim, C.A., (2022), Nanoemulsion applications in photodynamic therapy, Journal of Controlled Release, 351, 164–173.
  • [76] Munekane, M., Kosugi, A., Yamasaki, M., Watanabe, Y., Kannaka, K., Sano, K., et al., (2022), Biodistribution study of indium-111-labeled PEGylated niosomes as novel drug carriers for tumor-targeting, Journal of Drug Delivery Science and Technology, 75, 103648.
  • [77] Gligor, G., Maria Juncan, A., Frum, A., Maximiliana Dobrea, C., Căta, A., Maria Carmen Ienas, I., et al., (2023), Properties and Bioapplications of Amphiphilic Janus Dendrimers: A Review, Pharmaceutics 2023, Vol. 15, Page 589, 15, 589.
  • [78] Kancharla, S., Kolli, P., and Gopaiah, D.K.V., (2021), Nanosuspension formulation & evaluation of ritonavir & valsartan by using poloxamer as a stabilizing agent to enhance the oral bio availability, International Journal of Health Care and Biological Sciences, 2, 04–17.
  • [79] Kakad, S.P., Gangurde, T.D., Kshirsagar, S.J., and Mundhe, V.G., (2022), Nose to brain delivery of nanosuspensions with first line antiviral agents is alternative treatment option to Neuro-AIDS treatment, Heliyon, 8, e09925.
  • [80] Li, Y. and Gao, Q., (2023), Novel self-assembly nano OSA starch micelles controlled by protonation in aqueous media, Carbohydrate Polymers, 299, 120146.
  • [81] Basso, J., Mendes, M., Cova, T., Sousa, J., Pais, A., Fortuna, A., et al., (2022), A Stepwise Framework for the Systematic Development of Lipid Nanoparticles, Biomolecules 2022, Vol. 12, Page 223, 12, 223.
  • [82] Alqarni, M.H., Foudah, A.I., Alam, A., Salkini, M.A., Muharram, M.M., Labrou, N.E., et al., (2022), Coumarin-Encapsulated Solid Lipid Nanoparticles as an Effective Therapy against Methicillin-Resistant Staphylococcus aureus, Bioengineering 2022, Vol. 9, Page 484, 9, 484.
  • [83] Moraes-Lacerda, T. and de Jesus, M.B., (2022), Mechanisms of solid lipid nanoparticles-triggered signaling pathways in eukaryotic cells, Colloids and Surfaces B: Biointerfaces, 220, 112863.
  • [84] Bibi, S., Ur-Rehman, S., Khalid, L., Bhatti, I.A., Bhatti, H.N., Iqbal, J., et al., (2022), Investigation of the adsorption properties of gemcitabine anticancer drug with metal-doped boron nitride fullerenes as a drug-delivery carrier: a DFT study, RSC Advances, 12, 2873–2887.
  • [85] Kalika, E.B., Katin, K.P., Kochaev, A.I., Kaya, S., Elik, M., and Maslov, M.M., (2022), Fluorinated carbon and boron nitride fullerenes for drug Delivery: Computational study of structure and adsorption, Journal of Molecular Liquids, 353, 118773.
  • [86] Xie, M., Gao, M., Yun, Y., Malmsten, M., Rotello, V.M., Zboril, R., et al., (2023), Antibacterial Nanomaterials: Mechanisms, Impacts on Antimicrobial Resistance and Design Principles, Angewandte Chemie International Edition, e202217345. [87] Korkmaz, N., Ceylan, Y., Taslimi, P., Karadağ, A., Bülbül, A.S., and Şen, F., (2020), Biogenic nano silver: Synthesis, characterization, antibacterial, antibiofilms, and enzymatic activity, Advanced Powder Technology, 31, 2942–2950.
  • [88] Roy, A., Bulut, O., Some, S., Mandal, A.K., and Yilmaz, M.D., (2019), Green synthesis of silver nanoparticles: Biomolecule-nanoparticle organizations targeting antimicrobial activity, RSC Advances, 9, 2673–2702.
  • [89] Yavuz, İ., Fen, G.Ü., Dergisi, F., and Şebnem Yılmaz, E., (2021), Biyolojik Sistemli Nanopartiküller, 93–108.
  • [90] Asghari, F., Jahanshiri, Z., Imani, M., Shams-Ghahfarokhi, M., and Razzaghi-Abyaneh, M., (2016), Antifungal nanomaterials: Synthesis, properties, and applications. in: Nanobiomaterials Antimicrob. Ther. Appl. Nanobiomaterials, William Andrew Publishing, pp. 343–383.
  • [91] Niemirowicz, K., Durnaś, B., Piktel, E., and Bucki, R., (2017), Development of antifungal therapies using nanomaterials, Nanomedicine, 12, 1891–1905.
  • [92] Denning, D.W., (2003), Echinocandin antifungal drugs, The Lancet, 362, 1142–1151.
  • [93] Navya, P.N., Kaphle, A., Srinivas, S.P., Bhargava, S.K., Rotello, V.M., and Daima, H.K., (2019), Smart Polymers in Drug Delivery Application, Nano Convergence 2019 6:1, 6, 1–30.
  • [94] You, W. and Henneberg, M., (2018), Cancer incidence increasing globally: The role of relaxed natural selection, Evolutionary Applications,.
  • [95] Huda, S., Alam, M.A., and Sharma, P.K., (2020), Smart nanocarriers-based drug delivery for cancer therapy: An innovative and developing strategy, Journal of Drug Delivery Science and Technology, 60, 102018.
  • [96] Navya, P.N., Kaphle, A., Srinivas, S.P., Bhargava, S.K., Rotello, V.M., and Daima, H.K., (2019), Current trends and challenges in cancer management and therapy using designer nanomaterials, Nano Convergence,.
  • [97] Wang, Z. and Tang, M., (2021), Research progress on toxicity, function, and mechanism of metal oxide nanoparticles on vascular endothelial cells, Journal of Applied Toxicology, 41, 683–700.
  • [98] Nho, R., (2020), Pathological effects of nano-sized particles on the respiratory system, Nanomedicine: Nanotechnology, Biology and Medicine, 29, 102242.
  • [99] Amoatey, P. and Baawain, M.S., (2019), Effects of pollution on freshwater aquatic organisms, Water Environment Research, 91, 1272–1287.

NANOPARÇACIKLARIN SENTEZİ VE FARKLI ALANLARDA GÜNCEL UYGULAMALARI

Year 2023, Issue: 004, 33 - 53, 30.06.2023

Abstract

Nanomalzemeler son yıllarda birçok alanda kullanılabilen en popüler malzemelerden biridir. Bu malzemelerin ilgili tanıma göre en az bir boyutu 100 nm'den küçük veya çok küçük malzemelerin bir araya gelmesiyle oluştuğu bilinmektedir. Nanomalzemelerde genellikle yapı ve özellikleri hakkında bilgi sağladığı için boyut çok önemlidir. Nanomalzemelerin üretimi için farklı sentez yöntemleri bulunmaktadır. Bunlar arasında en çok tercih edilen yöntem çevre dostu yeşil sentez yöntemidir. Bu yöntemin uygun maliyetli, çevre dostu, toksik olmayan biyolojik bir yöntem olduğu bilinmektedir. Ayrıca nanomalzemelerin kullanım alanları boyutlarına göre değişmektedir. Bu noktada nanomalzemelerin boyutları; Termal, mekanik, optik, elektriksel ve manyetik özelliklerini değiştirebilir. Aynı zamanda nanomalzemeler, malzeme ve imalat endüstrilerinde, medikal-sağlık endüstrisinde, havacılık araştırmalarında, çevre ve enerji sistemlerinde, biyoteknolojide, tarım ve gıda endüstrilerinde yaygın olarak kullanılmaktadır. Bu bilgiler ışığında çalışma kapsamında; Nanomalzemelerin yeşil sentez üretim yöntemi ve genel özellikleri, boyutları, ilaç salımı, antimikrobiyal, antifungal ve antikarsinojenik özellikleri ve çevresel uygulamalarına değinilmiştir. Elde edilen veriler doğrultusunda birçok alanda kullanılabilecek özelliklere sahip nanomalzemelerin gelecek için umut verici olduğu görülmektedir.

References

  • [1] Lines, M.G., (2008), Nanomaterials for practical functional uses, Journal of Alloys and Compounds, 449, 242–245.
  • [2] Xia, C., Jin, X., Garalleh, H. AL, Garaleh, M., Wu, Y., Hill, J.M., et al., (2023), Optimistic and possible contribution of nanomaterial on biomedical applications: A review, Environmental Research, 218, 114921.
  • [3] El-Kady, M.M., Ansari, I., Arora, C., Rai, N., Soni, S., Verma, D.K., et al., (2023), Nanomaterials: A comprehensive review of applications, toxicity, impact, and fate to environment, Journal of Molecular Liquids, 370, 121046.
  • [4] Calipinar, H. and Ulas, D., (2019), Development of Nanotechnology in the World and Nanotechnology Standards in Turkey, Procedia Computer Science, 158, 1011–1018.
  • [5] Baig, N., (2023), Two-dimensional nanomaterials: A critical review of recent progress, properties, applications, and future directions, Composites Part A: Applied Science and Manufacturing, 165, 107362.
  • [6] Khan, I., Saeed, K., and Khan, I., (2019), Nanoparticles: Properties, applications and toxicities, Arabian Journal of Chemistry, 12, 908–931.
  • [7] Chong, L., Wen, J., Kubal, J., Sen, F.G., Zou, J., Greeley, J., et al., (2018), Ultralow-loading platinum-cobalt fuel cell catalysts derived from imidazolate frameworks, Science, 362, 1276–1281.
  • [8] Kulshrestha, S. and Khan, A.U., (2018), Nanomedicine for anticancer and antimicrobial treatment: an overview, IET Nanobiotechnology, 12, 1009.
  • [9] Alğin Yapar, E. and İnal, Ö., (2012), NANOMATERIALS AND COSMETICS, Istanbul Ecz. Fak. Derg. / J. Fac. Pharm. Istanbul, 42,.
  • [10] Orooji, Y., Sohrabi, H., Hemmat, N., Oroojalian, F., Baradaran, B., Mokhtarzadeh, A., et al., (2020), An Overview on SARS-CoV-2 (COVID-19) and Other Human Coronaviruses and Their Detection Capability via Amplification Assay, Chemical Sensing, Biosensing, Immunosensing, and Clinical Assays, Nano-Micro Letters 2020 13:1, 13, 1–30.
  • [11] Thakore, S., Rathore, P.S., Jadeja, R.N., Thounaojam, M., and Devkar, R. V., (2014), Sunflower oil mediated biomimetic synthesis and cytotoxicity of monodisperse hexagonal silver nanoparticles, Materials Science and Engineering: C, 44, 209–215.
  • [12] Dutz, S., Hergt, R., Mürbe, J., Müller, R., Zeisberger, M., Andrä, W., et al., (2007), Hysteresis losses of magnetic nanoparticle powders in the single domain size range, Journal of Magnetism and Magnetic Materials, 308, 305–312.
  • [13] Maleki, A., Rahimi, R., Maleki, S., and Hamidi, N., (2014), Synthesis and characterization of magnetic bromochromate hybrid nanomaterials with triphenylphosphine surface-modified iron oxide nanoparticles and their catalytic application in multicomponent reactions, RSC Advances, 4, 29765–29771.
  • [14] Zhao, S., Guo, J., Li, W., Guo, H., and You, B., (2018), Fabrication of cobalt aluminate nanopigments by coprecipitation method in threonine waterborne solution, Dyes and Pigments, 151, 130–139.
  • [15] Dong, H., Du, S.R., Zheng, X.Y., Lyu, G.M., Sun, L.D., Li, L.D., et al., (2015), Lanthanide Nanoparticles: From Design toward Bioimaging and Therapy, Chemical Reviews, 115, 10725–10815.
  • [16] Okoli, C.U., Kuttiyiel, K.A., Cole, J., McCutchen, J., Tawfik, H., Adzic, R.R., et al., (2018), Solvent effect in sonochemical synthesis of metal-alloy nanoparticles for use as electrocatalysts, Ultrasonics Sonochemistry, 41, 427–434.
  • [17] Low, S.S., Yew, M., Lim, C.N., Chai, W.S., Low, L.E., Manickam, S., et al., (2022), Sonoproduction of nanobiomaterials - A critical review, Ultrasonics Sonochemistry, 82,.
  • [18] Panahi-Kalamuei, M., Mousavi-Kamazani, M., Salavati-Niasari, M., and Hosseinpour-Mashkani, S.M., (2015), A simple sonochemical approach for synthesis of selenium nanostructures and investigation of its light harvesting application, Ultrasonics Sonochemistry, 23, 246–256.
  • [19] Hasany, S.F., Ahmed, I., J, R., and Rehman, A., (2012), Systematic Review of the Preparation Techniques of Iron Oxide Magnetic Nanoparticles, Nanoscience and Nanotechnology, 2, 148–158.
  • [20] Huston, M., Debella, M., Dibella, M., and Gupta, A., (2021), Green Synthesis of Nanomaterials, Nanomaterials, 11,.
  • [21] Birla, S.S., Tiwari, V. V., Gade, A.K., Ingle, A.P., Yadav, A.P., and Rai, M.K., (2009), Fabrication of silver nanoparticles by Phoma glomerata and its combined effect against Escherichia coli, Pseudomonas aeruginosa and Staphylococcus aureus, Letters in Applied Microbiology, 48, 173–179.
  • [22] Ganesh Babu, M.M. and Gunasekaran, P., (2009), Production and structural characterization of crystalline silver nanoparticles from Bacillus cereus isolate, Colloids and Surfaces B: Biointerfaces, 74, 191–195.
  • [23] Bansal, V., Rautaray, D., Ahmad, A., and Sastry, M., (2004), Biosynthesis of zirconia nanoparticles using the fungus Fusarium oxysporum, Journal of Materials Chemistry, 14, 3303–3305.
  • [24] Yap, Y.H., Azmi, A.A., Mohd, N.K., Yong, F.S.J., Kan, S.Y., Thirmizir, M.Z.A., et al., (2020), Green Synthesis of Silver Nanoparticle Using Water Extract of Onion Peel and Application in the Acetylation Reaction, Undefined, 45, 4797–4807.
  • [25] Saravanakumar, K., Chelliah, R., Shanmugam, S., Varukattu, N.B., Oh, D.-H., Kathiresan, K., et al., (2018), Green synthesis and characterization of biologically active nanosilver from seed extract of Gardenia jasminoides Ellis, Journal of Photochemistry and Photobiology B: Biology, 185, 126–135.
  • [26] Stozhko, N.Y., Bukharinova, M.A., Khamzina, E.I., Tarasov, A. V., Vidrevich, M.B., and Brainina, K.Z., (2019), The Effect of the Antioxidant Activity of Plant Extracts on the Properties of Gold Nanoparticles, Nanomaterials 2019, Vol. 9, Page 1655, 9, 1655.
  • [27] Fardsadegh, B. and Jafarizadeh-Malmiri, H., (2019), Aloe vera leaf extract mediated green synthesis of selenium nanoparticles and assessment of their in vitro antimicrobial activity against spoilage fungi and pathogenic bacteria strains, Green Processing and Synthesis, 8, 399–407.
  • [28] Behravan, M., Hossein Panahi, A., Naghizadeh, A., Ziaee, M., Mahdavi, R., and Mirzapour, A., (2019), Facile green synthesis of silver nanoparticles using Berberis vulgaris leaf and root aqueous extract and its antibacterial activity, International Journal of Biological Macromolecules, 124, 148–154.
  • [29] Ma, W., Zhan, Y., Zhang, Y., Mao, C., Xie, X., and Lin, Y., (2021), The biological applications of DNA nanomaterials: current challenges and future directions, Signal Transduction and Targeted Therapy 2021 6:1, 6, 1–28.
  • [30] Göl, F., Aygün, A., Seyrankaya, A., Gür, T., Yenikaya, C., and Şen, F., (2020), Green synthesis and characterization of Camellia sinensis mediated silver nanoparticles for antibacterial ceramic applications, Materials Chemistry and Physics, 250, 123037.
  • [31] Kocak, Y., Oto, G., Meydan, I., Seckin, H., Gur, T., Aygun, A., et al., (2022), Assessment of therapeutic potential of silver nanoparticles synthesized by Ferula Pseudalliacea rech. F. plant, Inorganic Chemistry Communications, 140, 109417.
  • [32] Gulbagca, F., Ozdemir, S., Gulcan, M., and Sen, F., (2019), Synthesis and characterization of Rosa canina-mediated biogenic silver nanoparticles for anti-oxidant, antibacterial, antifungal, and DNA cleavage activities, Heliyon, 5, e02980.
  • [33] Kannan M Krishnan, (2016), Fundamentals and Applications of Magnetic, Oxford University Press,.
  • [34] Bazylinski, D.A., Garratt‐Reed, A.J., and Frankel, R.B., (1994), Electron microscopic studies of magnetosomes in magnetotactic bacteria, Microscopy Research and Technique, 27, 389–401.
  • [35] Bunaciu, A.A., Udriştioiu, E. gabriela, and Aboul-Enein, H.Y., (2015), X-Ray Diffraction: Instrumentation and Applications, Http://Dx.Doi.Org/10.1080/10408347.2014.949616, 45, 289–299.
  • [36] Bishnoi, A., Kumar, S., and Joshi, N., (2017), Wide-Angle X-ray Diffraction (WXRD): Technique for Characterization of Nanomaterials and Polymer Nanocomposites, Microscopy Methods in Nanomaterials Characterization, 313–337.
  • [37] Lin, P.C., Lin, S., Wang, P.C., and Sridhar, R., (2014), Techniques for physicochemical characterization of nanomaterials, Biotechnology Advances, 32, 711.
  • [38] Karimi, F., Akin, M., Bayat, R., Bekmezci, M., Darabi, R., Aghapour, E., et al., (2023), Application of Quasihexagonal Pt@PdS2-MWCNT catalyst with High Electrochemical Performance for Electro-Oxidation of Methanol, 2-Propanol, and Glycerol Alcohols For Fuel Cells, Molecular Catalysis, 536, 112874.
  • [39] Inkson, B.J., (2016), Scanning electron microscopy (SEM) and transmission electron microscopy (TEM) for materials characterization, Materials Characterization Using Nondestructive Evaluation (NDE) Methods, 17–43.
  • [40] Williams, D.B. and Carter, C.B., (2009), Transmission electron microscopy: A textbook for materials science, Transmission Electron Microscopy: A Textbook for Materials Science, 1–760.
  • [41] Rydz, J., Šišková, A., and Andicsová Eckstein, A., (2019), Scanning Electron Microscopy and Atomic Force Microscopy: Topographic and Dynamical Surface Studies of Blends, Composites, and Hybrid Functional Materials for Sustainable Future, Advances in Materials Science and Engineering, 2019,.
  • [42] Marti, O., Ribi, H.O., Drake, B., Albrecht, T.R., Quate, C.F., and Hansma, P.K., (1988), Atomic Force Microscopy of an Organic Monolayer, Science, 239, 50–52.
  • [43] Crucho, C.I.C. and Barros, M.T., (2017), Polymeric nanoparticles: A study on the preparation variables and characterization methods, Materials Science and Engineering: C, 80, 771–784.
  • [44] Meydan, I., Seckin, H., Burhan, H., Gür, T., Tanhaei, B., and Sen, F., (2022), Arum italicum mediated silver nanoparticles: Synthesis and investigation of some biochemical parameters, Environmental Research, 204, 112347.
  • [45] Wu, Y., Altuner, E.E., El Houda Tiri, R.N., Bekmezci, M., Gulbagca, F., Aygun, A., et al., (2022), Hydrogen generation from methanolysis of sodium borohydride using waste coffee oil modified zinc oxide nanoparticles and their photocatalytic activities, International Journal of Hydrogen Energy,.
  • [46] Oh, S.Y., Yoo, D. Il, Shin, Y., and Seo, G., (2005), FTIR analysis of cellulose treated with sodium hydroxide and carbon dioxide, Carbohydrate Research, 340, 417–428.
  • [47] Kazarian, S.G. and Chan, K.L.A., (2006), Applications of ATR-FTIR spectroscopic imaging to biomedical samples, Biochimica et Biophysica Acta (BBA) - Biomembranes, 1758, 858–867. [48] Kane, S.R., Ashby, P.D., and Pruitt, L.A., (2009), ATR-FTIR as a thickness measurement technique for hydrated polymer-on-polymer coatings, Journal of Biomedical Materials Research Part B: Applied Biomaterials, 91B, 613–620.
  • [49] Parrott, E.P.J. and Zeitler, J.A., (2015), Terahertz Time-Domain and Low-Frequency Raman Spectroscopy of OrganicMaterials, Applied Spectroscopy, Vol. 69, Issue 1, Pp. 1-25, 69, 1–25.
  • [50] Reddy, K.R., (2017), Green synthesis, morphological and optical studies of CuO nanoparticles, Journal of Molecular Structure, 1150, 553–557.
  • [51] Moskovits, M., Braun, G.B., Lee, S.J., Laurence, T., Fera, N., Fabris, L., et al., (2009), Generalized approach to SERS-active nanomaterials via controlled nanoparticle linking, polymer encapsulation, and small-molecule infusion, Journal of Physical Chemistry C, 113, 13622–13629.
  • [52] An, C., Sun, C., Li, N., Huang, B., Jiang, J., Shen, Y., et al., (2022), Nanomaterials and nanotechnology for the delivery of agrochemicals: strategies towards sustainable agriculture, Journal of Nanobiotechnology 2021 20:1, 20, 1–19.
  • [53] Wu, Q., Miao, W.S., Zhang, Y. Du, Gao, H.J., and Hui, D., (2020), Mechanical properties of nanomaterials: A review, Nanotechnology Reviews, 9, 259–273.
  • [54] Nikaeen, G., Abbaszadeh, S., and Yousefinejad, S., (2020), Application of nanomaterials in treatment, anti-infection and detection of coronaviruses, Nanomedicine, 15, 1501–1512.
  • [55] Yoosefian, M., Karimi-Maleh, H., and Sanati, A.L., (2015), A theoretical study of solvent effects on the characteristics of the intramolecular hydrogen bond in Droxidopa, Journal of Chemical Sciences, 127, 1007–1013.
  • [56] Dang, Y. and Guan, J., (2020), Nanoparticle-based drug delivery systems for cancer therapy, Smart Materials in Medicine, 1, 10–19.
  • [57] Adeyemi, O.S. and Sulaiman, F.A., (2015), Evaluation of metal nanoparticles for drug delivery systems, Journal of Biomedical Research, 29, 145.
  • [58] Tüylek, Z., (2019), Arşiv Kaynak Tarama Dergisi Archives Medical Review Journal İlaç Taşıyıcı Nanosistemler Drug Delivery Nanosystems, Archives Medical Review Journal, 28, 184–192.
  • [59] Bapat, R.A., Chaubal, T. V., Joshi, C.P., Bapat, P.R., Choudhury, H., Pandey, M., et al., (2018), An overview of application of silver nanoparticles for biomaterials in dentistry, Materials Science and Engineering: C, 91, 881–898.
  • [60] Mukherjee, S., Mukherjee, S., Abourehab, M.A.S., Sahebkar, A., and Kesharwani, P., (2022), Exploring dendrimer-based drug delivery systems and their potential applications in cancer immunotherapy, European Polymer Journal, 177, 111471.
  • [61] Ahmad, S., Munir, S., Zeb, N., Ullah, A., Khan, B., Ali, J., et al., (2019), Green nanotechnology: A review on green synthesis of silver nanoparticles — An ecofriendly approach, International Journal of Nanomedicine, 14, 5087–5107.
  • [62] Mousavi, S.M., Hashemi, S.A., Ghasemi, Y., Atapour, A., Amani, A.M., Savar Dashtaki, A., et al., (2018), Green synthesis of silver nanoparticles toward bio and medical applications: review study, Https://Doi.Org/10.1080/21691401.2018.1517769, 46, S855–S872.
  • [63] Govindaraju, K., Krishnamoorthy, K., Alsagaby, S.A., Singaravelu, G., and Premanathan, M., (2015), Green synthesis of silver nanoparticles for selective toxicity towards cancer cells, IET Nanobiotechnology, 9, 325–330.
  • [64] Chinnathambi, A., Alharbi, S.A., Joshi, D., V, S., Jhanani, G.K., On-uma, R., et al., (2023), Synthesis of AgNPs from leaf extract of Naringi crenulata and evaluation of its antibacterial activity against multidrug resistant bacteria, Environmental Research, 216, 114455.
  • [65] Eskandari-Nojedehi, M., Jafarizadeh-Malmiri, H., and Rahbar-Shahrouzi, J., (2018), Hydrothermal green synthesis of gold nanoparticles using mushroom (Agaricus bisporus) extract: Physico-chemical characteristics and antifungal activity studies, Green Processing and Synthesis, 7, 38–47.
  • [66] Bollella, P., Schulz, C., Favero, G., Mazzei, F., Ludwig, R., Gorton, L., et al., (2017), Green Synthesis and Characterization of Gold and Silver Nanoparticles and their Application for Development of a Third Generation Lactose Biosensor, Electroanalysis, 29, 77–86.
  • [67] Ganeshkumar, M., Ponrasu, T., Raja, M.D., Subamekala, M.K., and Suguna, L., (2014), Green synthesis of pullulan stabilized gold nanoparticles for cancer targeted drug delivery, Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy, 130, 64–71.
  • [68] Magogotya, M., Vetten, M., Roux-van der Merwe, M.P., Badenhorst, J., and Gulumian, M., (2022), In vitro toxicity and internalization of gold nanoparticles (AuNPs) in human epithelial colorectal adenocarcinoma (Caco-2) cells and the human skin keratinocyte (HaCaT) cells, Mutation Research/Genetic Toxicology and Environmental Mutagenesis, 883–884, 503556.
  • [69] Ramos, J., Imaz, A., Callejas-Fernández, J., Barbosa-Barros, L., Estelrich, J., Quesada-Pérez, M., et al., (2011), Soft nanoparticles (thermo-responsive nanogels and bicelles) with biotechnological applications: from synthesis to simulation through colloidal characterization, Soft Matter, 7, 5067–5082.
  • [70] Rimondino, G.N., Miceli, E., Molina, M., Wedepohl, S., Thierbach, S., Rühl, E., et al., (2017), Rational design of dendritic thermoresponsive nanogels that undergo phase transition under endolysosomal conditions, Journal of Materials Chemistry B, 5, 866–874.
  • [71] Yurdasiper, A., Şahiner, A., and Gökçe, E.H., (2022), Preparation of thermoresponsive triclosan poly (N-isopropylacrylamide) nanogels and evaluation of antibacterial efficacy on Cutibacterium acnes, Journal of Drug Delivery Science and Technology, 76, 103734.
  • [72] Dymek, M. and Sikora, E., (2022), Liposomes as biocompatible and smart delivery systems – the current state, Advances in Colloid and Interface Science, 309, 102757.
  • [73] Kazemi, M., Aghamaali, M.R., Madani, R., Emami, T., and Golchinfar, F., (2022), Evaluating the Immunogenicity of recombinant VP1 protein from the foot-and-mouth disease virus encapsulated in nanoliposome in guinea pig animal model, Veterinary Immunology and Immunopathology, 253, 110497.
  • [74] Elsewedy, H.S., Al-Dhubiab, B.E., Mahdy, M.A., and Elnahas, H.M., (2021), Basic concepts of nanoemulsion and its potential application in pharmaceutical, cosmeceutical and nutraceutical fields, Research Journal of Pharmacy and Technology, 14, 3938–3946.
  • [75] Moghassemi, S., Dadashzadeh, A., Azevedo, R.B., and Amorim, C.A., (2022), Nanoemulsion applications in photodynamic therapy, Journal of Controlled Release, 351, 164–173.
  • [76] Munekane, M., Kosugi, A., Yamasaki, M., Watanabe, Y., Kannaka, K., Sano, K., et al., (2022), Biodistribution study of indium-111-labeled PEGylated niosomes as novel drug carriers for tumor-targeting, Journal of Drug Delivery Science and Technology, 75, 103648.
  • [77] Gligor, G., Maria Juncan, A., Frum, A., Maximiliana Dobrea, C., Căta, A., Maria Carmen Ienas, I., et al., (2023), Properties and Bioapplications of Amphiphilic Janus Dendrimers: A Review, Pharmaceutics 2023, Vol. 15, Page 589, 15, 589.
  • [78] Kancharla, S., Kolli, P., and Gopaiah, D.K.V., (2021), Nanosuspension formulation & evaluation of ritonavir & valsartan by using poloxamer as a stabilizing agent to enhance the oral bio availability, International Journal of Health Care and Biological Sciences, 2, 04–17.
  • [79] Kakad, S.P., Gangurde, T.D., Kshirsagar, S.J., and Mundhe, V.G., (2022), Nose to brain delivery of nanosuspensions with first line antiviral agents is alternative treatment option to Neuro-AIDS treatment, Heliyon, 8, e09925.
  • [80] Li, Y. and Gao, Q., (2023), Novel self-assembly nano OSA starch micelles controlled by protonation in aqueous media, Carbohydrate Polymers, 299, 120146.
  • [81] Basso, J., Mendes, M., Cova, T., Sousa, J., Pais, A., Fortuna, A., et al., (2022), A Stepwise Framework for the Systematic Development of Lipid Nanoparticles, Biomolecules 2022, Vol. 12, Page 223, 12, 223.
  • [82] Alqarni, M.H., Foudah, A.I., Alam, A., Salkini, M.A., Muharram, M.M., Labrou, N.E., et al., (2022), Coumarin-Encapsulated Solid Lipid Nanoparticles as an Effective Therapy against Methicillin-Resistant Staphylococcus aureus, Bioengineering 2022, Vol. 9, Page 484, 9, 484.
  • [83] Moraes-Lacerda, T. and de Jesus, M.B., (2022), Mechanisms of solid lipid nanoparticles-triggered signaling pathways in eukaryotic cells, Colloids and Surfaces B: Biointerfaces, 220, 112863.
  • [84] Bibi, S., Ur-Rehman, S., Khalid, L., Bhatti, I.A., Bhatti, H.N., Iqbal, J., et al., (2022), Investigation of the adsorption properties of gemcitabine anticancer drug with metal-doped boron nitride fullerenes as a drug-delivery carrier: a DFT study, RSC Advances, 12, 2873–2887.
  • [85] Kalika, E.B., Katin, K.P., Kochaev, A.I., Kaya, S., Elik, M., and Maslov, M.M., (2022), Fluorinated carbon and boron nitride fullerenes for drug Delivery: Computational study of structure and adsorption, Journal of Molecular Liquids, 353, 118773.
  • [86] Xie, M., Gao, M., Yun, Y., Malmsten, M., Rotello, V.M., Zboril, R., et al., (2023), Antibacterial Nanomaterials: Mechanisms, Impacts on Antimicrobial Resistance and Design Principles, Angewandte Chemie International Edition, e202217345. [87] Korkmaz, N., Ceylan, Y., Taslimi, P., Karadağ, A., Bülbül, A.S., and Şen, F., (2020), Biogenic nano silver: Synthesis, characterization, antibacterial, antibiofilms, and enzymatic activity, Advanced Powder Technology, 31, 2942–2950.
  • [88] Roy, A., Bulut, O., Some, S., Mandal, A.K., and Yilmaz, M.D., (2019), Green synthesis of silver nanoparticles: Biomolecule-nanoparticle organizations targeting antimicrobial activity, RSC Advances, 9, 2673–2702.
  • [89] Yavuz, İ., Fen, G.Ü., Dergisi, F., and Şebnem Yılmaz, E., (2021), Biyolojik Sistemli Nanopartiküller, 93–108.
  • [90] Asghari, F., Jahanshiri, Z., Imani, M., Shams-Ghahfarokhi, M., and Razzaghi-Abyaneh, M., (2016), Antifungal nanomaterials: Synthesis, properties, and applications. in: Nanobiomaterials Antimicrob. Ther. Appl. Nanobiomaterials, William Andrew Publishing, pp. 343–383.
  • [91] Niemirowicz, K., Durnaś, B., Piktel, E., and Bucki, R., (2017), Development of antifungal therapies using nanomaterials, Nanomedicine, 12, 1891–1905.
  • [92] Denning, D.W., (2003), Echinocandin antifungal drugs, The Lancet, 362, 1142–1151.
  • [93] Navya, P.N., Kaphle, A., Srinivas, S.P., Bhargava, S.K., Rotello, V.M., and Daima, H.K., (2019), Smart Polymers in Drug Delivery Application, Nano Convergence 2019 6:1, 6, 1–30.
  • [94] You, W. and Henneberg, M., (2018), Cancer incidence increasing globally: The role of relaxed natural selection, Evolutionary Applications,.
  • [95] Huda, S., Alam, M.A., and Sharma, P.K., (2020), Smart nanocarriers-based drug delivery for cancer therapy: An innovative and developing strategy, Journal of Drug Delivery Science and Technology, 60, 102018.
  • [96] Navya, P.N., Kaphle, A., Srinivas, S.P., Bhargava, S.K., Rotello, V.M., and Daima, H.K., (2019), Current trends and challenges in cancer management and therapy using designer nanomaterials, Nano Convergence,.
  • [97] Wang, Z. and Tang, M., (2021), Research progress on toxicity, function, and mechanism of metal oxide nanoparticles on vascular endothelial cells, Journal of Applied Toxicology, 41, 683–700.
  • [98] Nho, R., (2020), Pathological effects of nano-sized particles on the respiratory system, Nanomedicine: Nanotechnology, Biology and Medicine, 29, 102242.
  • [99] Amoatey, P. and Baawain, M.S., (2019), Effects of pollution on freshwater aquatic organisms, Water Environment Research, 91, 1272–1287.
There are 97 citations in total.

Details

Primary Language English
Subjects Nanobiotechnology
Journal Section Reviews
Authors

Tuğçe Ağaçbozan 0000-0001-8154-3274

İpek Çobas 0000-0002-9259-3389

Gülsade Şahin 0000-0003-2149-2158

Dilay Taşkın 0000-0003-1411-276X

Nail Özsuluoğlu 0000-0002-8787-7635

Ferhat Üzen 0000-0001-9077-5026

Alaattin Bolut 0000-0002-3053-0286

Fatih Şen

Publication Date June 30, 2023
Submission Date February 6, 2023
Published in Issue Year 2023 Issue: 004

Cite

APA Ağaçbozan, T., Çobas, İ., Şahin, G., Taşkın, D., et al. (2023). THE SYNTHESIS OF NANOPARTICLES AND THE CURRENT APPLICATION IN DIFFERENT DOMAINS. Journal of Scientific Reports-C(004), 33-53.
AMA Ağaçbozan T, Çobas İ, Şahin G, Taşkın D, Özsuluoğlu N, Üzen F, Bolut A, Şen F. THE SYNTHESIS OF NANOPARTICLES AND THE CURRENT APPLICATION IN DIFFERENT DOMAINS. JSR-C. June 2023;(004):33-53.
Chicago Ağaçbozan, Tuğçe, İpek Çobas, Gülsade Şahin, Dilay Taşkın, Nail Özsuluoğlu, Ferhat Üzen, Alaattin Bolut, and Fatih Şen. “THE SYNTHESIS OF NANOPARTICLES AND THE CURRENT APPLICATION IN DIFFERENT DOMAINS”. Journal of Scientific Reports-C, no. 004 (June 2023): 33-53.
EndNote Ağaçbozan T, Çobas İ, Şahin G, Taşkın D, Özsuluoğlu N, Üzen F, Bolut A, Şen F (June 1, 2023) THE SYNTHESIS OF NANOPARTICLES AND THE CURRENT APPLICATION IN DIFFERENT DOMAINS. Journal of Scientific Reports-C 004 33–53.
IEEE T. Ağaçbozan, “THE SYNTHESIS OF NANOPARTICLES AND THE CURRENT APPLICATION IN DIFFERENT DOMAINS”, JSR-C, no. 004, pp. 33–53, June 2023.
ISNAD Ağaçbozan, Tuğçe et al. “THE SYNTHESIS OF NANOPARTICLES AND THE CURRENT APPLICATION IN DIFFERENT DOMAINS”. Journal of Scientific Reports-C 004 (June 2023), 33-53.
JAMA Ağaçbozan T, Çobas İ, Şahin G, Taşkın D, Özsuluoğlu N, Üzen F, Bolut A, Şen F. THE SYNTHESIS OF NANOPARTICLES AND THE CURRENT APPLICATION IN DIFFERENT DOMAINS. JSR-C. 2023;:33–53.
MLA Ağaçbozan, Tuğçe et al. “THE SYNTHESIS OF NANOPARTICLES AND THE CURRENT APPLICATION IN DIFFERENT DOMAINS”. Journal of Scientific Reports-C, no. 004, 2023, pp. 33-53.
Vancouver Ağaçbozan T, Çobas İ, Şahin G, Taşkın D, Özsuluoğlu N, Üzen F, Bolut A, Şen F. THE SYNTHESIS OF NANOPARTICLES AND THE CURRENT APPLICATION IN DIFFERENT DOMAINS. JSR-C. 2023(004):33-5.