Nanobiotechnology in Diagnosis, Drug Delivery and Treatment. Группа авторов

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characterization and antifungal activity of enzyme‐mediated gold nanoparticles using a fungal oxidoreductase. Journal of the Iranian Chemical Society 13 (11): 2059–2068.

      34 Gholami‐Shabani, M., Gholami‐Shabani, Z., Shams‐Ghahfarokhi, M. et al. (2017). Green nanotechnology: biomimetic synthesis of metal nanoparticles using plants and their application in agriculture and forestry. In: Nanotechnology (eds. R. Prasad, M. Kumar and V. Kumar), 133–175. Singapore: Springer.

      35 Gholami‐Shabani, M., Gholami‐Shabani, Z., Shams‐Ghahfarokhi, M., and Razzaghi‐Abyaneh, M. (2018). Application of nanotechnology in mycoremediation: current status and future prospects. In: Fungal Nanobionics: Principles and Applications (eds. R. Prasad, V. Kumar, M. Kumar and S. Wang), 89–116. Singapore: Springer.

      36 Godin, B. and Touitou, E. (2003). Ethosomes: new prospects in transdermal delivery. Critical Review in Therapeutic Drug Carrier Systems 20 (1): 63–102.

      37 Gonzalez‐Rodriguez, R., Campbell, E., and Naumov, A. (2019). Multifunctional graphene oxide/iron oxide nanoparticles for magnetic targeted drug delivery dual magnetic resonance/fluorescence imaging and cancer sensing. PLoS One 14 (6): 0217072. https://doi.org/10.1371/journal.pone.0217072.

      38 Guo, L., Wu, X., Liu, L. et al. (2018). Gold nanoparticle‐based paper sensor for simultaneous detection of 11 benzimidazoles by one monoclonal antibody. Small 14: 1701782. https://doi.org/10.1002/smll.201701782.

      39 Hsu, S.H. and Luo, P.W. (2019). From nanoarchitectonics to tissue architectonics: nanomaterials for tissue engineering. In: Advanced Supramolecular Nanoarchitectonics: Micro and Nano Technologies (eds. K. Ariga and M. Aono), 277–288. UK: Elsevier.

      40 Hua, S., De Matos, M.B., Metselaar, J.M., and Storm, G. (2018). Current trends and challenges in the clinical translation of nanoparticulate nanomedicines: pathways for translational development and commercialization. Frontiers in Pharmacology 9 (790) https://doi.org/10.3389/fphar.2018.00790.

      41 Huang, X., Qi, X., Boey, F., and Zhang, H. (2012). Graphene‐based composites. Chemical Society Reviews 41: 666–686.

      42 Hyafil, F., Cornily, J.C., Feig, J.E. et al. (2007). Noninvasive detection of macrophages using a nanoparticulate contrast agent for computed tomography. Nature Medicine 13: 636–641.

      43 Inbaraj, B.S. and Chen, B.H. (2016). Nanomaterial‐based sensors for detection of foodborne bacterial pathogens and toxins as well as pork adulteration in meat products. Journal of Food and Drug Analysis 24 (1): 15–28.

      44 Jackson, T.C., Patani, B.O., and Ekpa, D.E. (2017). Nanotechnology in diagnosis: a review. Advances in Nanoparticles 6: 93–102.

      45 Jafari, S., Derakhshankhah, H., Alaei, L. et al. (2019). Mesoporous silica nanoparticles for therapeutic/diagnostic applications. Biomedicine & Pharmacotherapy 109: 1100–1111.

      46 Jain, K.K. (2003). Nanodiagnostics: application of nanotechnology in molecular diagnostics. Expert Review of Molecular Diagnostics 3: 153–161.

      47  Jeong, H.H., Choi, E., Ellis, E., and Lee, T.C. (2019). Recent advances in gold nanoparticles for biomedical applications: from hybrid structures to multi‐functionality. Journal of Materials Chemistry B 7: 3480–3496.

      48 Kaur, R., Sharma, S.K., and Tripathy, S.K. (2019). Advantages and limitations of environmental nanosensors. In: Advances in Nanosensors for Biological and Environmental Analysis (eds. A. Deep and S. Kumar), 119–132. UK: Elsevier.

      49 Kesharwani, P., Gorain, B., Low, S.Y. et al. (2018). Nanotechnology based approaches for anti‐diabetic drugs delivery. Diabetes Research and Clinical Practice 136: 52–77.

      50 Kievit, F.M., Stephen, Z.R., Veiseh, O. et al. (2012). Targeting of primary breast cancers and metastases in a transgenic mouse model using rationally designed multifunctional SPIONs. ACS Nano 6 (3): 2591–2601.

      51 Kim, D., Park, S., Lee, J.H. et al. (2007). Antibiofouling polymer‐coated gold nanoparticles as a contrast agent for in vivo X‐ray computed tomography imaging. Journal of the American Chemical Society 129 (24): 7661–7665.

      52 de Kraker, M.E.A., Stewardson, A.J., and Harbarth, S. (2016). Will 10 million people die a year due to antimicrobial resistance by 2050? PLoS Medicine 13 (11): e1002184. https://doi.org/10.1371/journal.pmed.1002184.

      53 Kulthe, S.S., Choudhari, Y.M., Inamdar, N.N., and Mourya, V. (2012). Polymeric micelles: authoritative aspects for drug delivery. Designed Monomers and Polymers 15 (5): 465–521.

      54 Kurbanoglu, S. and Ozkan, S.A. (2018). Electrochemical carbon based nanosensors: a promising tool in pharmaceutical and biomedical analysis. Journal of Pharmaceutical and Biomedical Analysis 147: 439–457.

      55 Leary, J.F. (2010). Nanotechnology: what is it and why is small so big? Canadian Journal of Ophthalmology 45 (5): 449–456.

      56 Lewinski, N., Colvin, V., and Drezek, R. (2008). Cytotoxicity of nanoparticles. Small 4: 26–49.

      57 Li, W. and Chen, X. (2015). Gold nanoparticles for photoacoustic imaging. Nanomedicine (London, England) 10: 299–320.

      58 Li, Z., Barnes, J.C., Bosoy, A. et al. (2012). Mesoporous silica nanoparticles in biomedical applications. Chemical Society Reviews 41: 2590–2605.

      59 Li, Y., Wang, Z., Sun, L. et al. (2019). Nanoparticle‐based sensors for food contaminants. TrAC Trends in Analytical Chemistry 113: 74–83.

      60 Liang, R., Wei, M., Evans, D.G., and Duan, X. (2014). Inorganic nanomaterials for bioimaging, targeted drug delivery and therapeutics. Chemistry Communication 50: 14071–14081.

      61 Liu, H.J. and Xu, P. (2019). Smart mesoporous silica nanoparticles for protein delivery. Nanomaterials (Basel) 9 (4): 511. https://doi.org/10.3390/nano9040511.

      62 Lombardo, D., Kiselev, M.A., and Caccamo, M.T. (2019). Smart nanoparticles for drug delivery application: development of versatile nanocarrier platforms in biotechnology and nanomedicine. Journal of Nanomaterials 2019 (3702518) https://doi.org/10.1155/2019/3702518.

      63 Lujan, H., Griffin, W.C., Taube, J.H., and Sayes, C.M. (2019). Synthesis and characterization of nanometer‐sized liposomes for encapsulation and microRNA transfer to breast cancer cells. International Journal of Nanomedicine 14: 5159–5173.

      64 Lyberopoulou, A., Efstathopoulos, E.P., and Gazouli, M. (2015). Nanodiagnostic and nanotherapeutic molecular platforms for cancer management. Journal of Cancer Research Updates 4: 153–162.

      65 Ma, Q., Wang, Y., Jia, J., and Xiang, Y. (2018). Colorimetric aptasensors for determination of tobramycin in milk and chicken eggs based on DNA and gold nanoparticles. Food Chemistry 249: 98–103.

      66 Medintz, I.L., Uyeda, H.T., Goldman, E.R., and Mattoussi, H. (2005). Quantum dot bioconjugates for imaging, labelling and sensing. Nature Materials 4 (6): 435–446.

      67  Meng, J., Fan, J., Galiana, G. et al. (2009). LHRH‐functionalized superparamagnetic iron oxide nanoparticles for breast cancer targeting and contrast enhancement in MRI. Materials Science and Engineering C 29 (4): 1467–1479.

      68 Mitragotri,

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