Скачать книгу

of SeNPs is of particular interest. This area is particularly relevant because of the increase in the amount of antibacterial resistance in pathogens against main antibacterial drugs. At the same time, the reaction of damaged tissues to the introduction of selenium nanocomposites is ambiguous, and additional studies are needed to determine the effects of inflammation and wound healing. Rational design of multifunctional nano platforms with drugs is a promising strategy for simultaneous diagnosis, real‐time monitoring, and treatment.

      1 Abd‐Rabou, A.A., Shalby, A.B., and Ahmed, H.H. (2019). Selenium nanoparticles induce the chemo‐sensitivity of fluorouracil nanoparticles in breast and colon cancer cells. Biological Trace Element Research 187 (1): 80–91.

      2 Ahmed, H.H., Abd El‐Maksoud, M.D., Abdel Moneim, A.E., and Aglan, H.A. (2017). Pre‐clinical study for the antidiabetic potential of selenium nanoparticles. Biological Trace Element Research 177 (2): 267–280.

      3 Al‐Quraishy, S., Dkhil, M.A., and Abdel Moneim, A.E. (2015). Anti‐hyperglycemic activity of selenium nanoparticles in streptozotocin‐induced diabetic rats. International Journal of Nanomedicine 10: 6741–6756.

      4 Atteia, H.H., Arafa, M.H., and Prabahar, K. (2018). Selenium nanoparticles prevents lead acetate‐induced hypothyroidism and oxidative damage of thyroid tissues in male rats through modulation of selenoenzymes and suppression of miR‐224. Biomedicine & Pharmacotherapy 99: 486–491.

      5 Bao, P., Chen, Z., Tai, R.Z. et al. (2015). Selenite‐induced toxicity in cancer cells is mediated by metabolic generation of endogenous selenium nanoparticles. Journal of Proteome Research 14 (2): 1127–1136.

      6 Bhattacharjee, A., Basu, A., Biswas, J. et al. (2017). Chemoprotective and chemosensitizing properties of selenium nanoparticle (Nano‐Se) during adjuvant therapy with cyclophosphamide in tumor‐bearing mice. Molecular and Cellular Biochemistry 424 (1–2): 13–33.

      7 Bidkar, A.P., Sanpui, P., and Ghosh, S.S. (2017). Efficient induction of apoptosis in cancer cells by paclitaxel‐loaded selenium nanoparticles. Nanomedicine 12 (21): 2641–2651.

      8 Chen, T., Wong, Y.S., Zheng, W. et al. (2008). Selenium nanoparticles fabricated in Undaria pinnatifida polysaccharide solutions induce mitochondria‐mediated apoptosis in A375 human melanoma cells. Colloids and Surfaces B: Biointerfaces 67 (1): 26–31.

      9 Chen, F., Zhang, X.H., Hu, X.D. et al. (2018). The effects of combined selenium nanoparticles and radiation therapy on breast cancer cells in vitro. Artificial Cells, Nanomedicine, and Biotechnology 46 (5): 937–948.

      10 Cho, H.S., Dong, Z., Pauletti, G.M. et al. (2010). Fluorescent, superparamagnetic nanospheres for drug storage, targeting, and imaging: a multifunctional nanocarrier system for cancer diagnosis and treatment. ACS Nano 4 (9): 5398–5404.

      11 Cremonini, E., Zonaro, E., Donini, M. et al. (2016). Biogenic selenium nanoparticles: characterization, antimicrobial activity and effects on human dendritic cells and fibroblasts. Microbial Biotechnology 9 (6): 758–771.

      12 Cremonini, E., Boaretti, M., Vandecandelaere, I. et al. (2018). Biogenic selenium nanoparticles synthesized by Stenotrophomonas maltophilia SeITE02 loose antibacterial and antibiofilm efficacy as a result of the progressive alteration of their organic coating layer. Microbial Biotechnology 11 (6): 1037–1047.

      13  Cruz, L.Y., Wang, D., and Liu, J. (2019). Biosynthesis of selenium nanoparticles, characterization and X‐ray induced radiotherapy for the treatment of lung cancer with interstitial lung disease. Journal of Photochemistry and Photobiology B: Biology 191: 123–127.

      14 Cui, D., Yan, C., Miao, J. et al. (2018). Synthesis, characterization and antitumor properties of selenium nanoparticles coupling with ferulic acid. Materials Science and Engineering: C 90: 104–112.

      15 Deng, W., Xie, Q., Wang, H. et al. (2017). Selenium nanoparticles as versatile carriers for oral delivery of insulin: insight into the synergic antidiabetic effect and mechanism. Nanomedicine 13 (6): 1965–1974.

      16 Deng, W., Wang, H., Wu, B., and Zhang, X. (2019). Selenium‐layered nanoparticles serving for oral delivery of phytomedicines with hypoglycemic activity to synergistically potentiate the antidiabetic effect. Acta Pharmaceutica Sinica B 9 (1): 74–86.

      17 Dumitrescu, A.M. and Refetoff, S. (2011). Inherited defects of thyroid hormone metabolism. Annales d'Endocrinologie 72 (2): 95–98.

      18 El‐Ghazaly, M.A., Fadel, N., Rashed, E. et al. (2017). Anti‐inflammatory effect of selenium nanoparticles on the inflammation induced in irradiated rats. Canadian Journal of Physiology and Pharmacology 95 (2): 101–110.

      19 Fadeeva, T.V., Shurygina, I.A., Sukhov, B.G. et al. (2015). Relationship between the structures and antimicrobial activities of argentic nanocomposites. Bulletin of the Russian Academy of Sciences: Physics 79: 273–275.

      20 Faghfuri, E., Yazdi, M.H., Mahdavi, M. et al. (2015). Dose‐response relationship study of selenium nanoparticles as an immunostimulatory agent in cancer‐bearing mice. Archives of Medical Research 46 (1): 31–37.

      21 Gammelgaard, B., Jackson, M.I., and Gabel‐Jensen, C. (2011). Surveying selenium speciation from soil to cell‐forms and transformations. Analytical and Bioanalytical Chemistry 399 (5): 1743–1763.

      22 Gao, F., Yuan, Q., Gao, L. et al. (2014). Cytotoxicity and therapeutic effect of irinotecan combined with selenium nanoparticles. Biomaterials 35 (31): 8854–8866.

      23 Guan, B., Yan, R., Li, R., and Zhang, X. (2018). Selenium as a pleiotropic agent for medical discovery and drug delivery. International Journal of Nanomedicine 13: 7473–7490.

      24 Guisbiers, G., Wang, Q., Khachatryan, E. et al. (2016). Inhibition of E. coli and S. aureus with selenium nanoparticles synthesized by pulsed laser ablation in deionized water. International Journal of Nanomedicine 11: 3731–3736.

      25 Guisbiers, G., Lara, H.H., Mendoza‐Cruz, R. et al. (2017). Inhibition of Candida albicans biofilm by pure selenium nanoparticles synthesized by pulsed laser ablation in liquids. Nanomedicine 13 (3): 1095–1103.

      26 Hauksdóttir, H.L. and Webster, T.J. (2018). Selenium and iron oxide nanocomposites for magnetically‐targeted anti‐cancer applications. Journal of Biomedical Nanotechnology 14 (3): 510–525.

      27 Hoeg, A., Gogakos, A., Murphy, E. et al. (2012). Bone turnover and bone mineral density are independently related to selenium status in healthy euthyroid postmenopausal women. The Journal of Clinical Endocrinology & Metabolism 97 (11): 4061–4070.

      28 Hou, J., Yu, X., Shen, Y. et al. (2017). Triphenyl phosphine‐functionalized chitosan nanoparticles enhanced antitumor efficiency through targeted delivery of doxorubicin to mitochondria. Nanoscale Research Letters 12 (1): 158.

      29 Huang, Z., Rose, A.H., and Hoffmann, P.R. (2012). The role of selenium in inflammation and immunity: from molecular mechanisms to therapeutic opportunities. Antioxidants & Redox Signaling 16 (7): 705–743.

      30 Huang, G., Liu, Z., He, L. et al. (2018). Autophagy is an important action mode for functionalized selenium nanoparticles to exhibit anti‐colorectal cancer activity. Biomaterials Science 6 (9): 2508–2517.

      31  Huang, J., Huang, W., Zhang, Z. et al. (2019). Highly uniform synthesis of selenium nanoparticles with EGFR targeting and tumor microenvironment‐responsive ability for simultaneous diagnosis and therapy of nasopharyngeal carcinoma. ACS Applied Materials & Interfaces 11 (12): 11177–11193.

      32 Huo, X., Zhang, Y., Jin, X. et al. (2019). A novel synthesis of selenium nanoparticles encapsulated PLGA nanospheres with curcumin molecules for the inhibition of amyloid β aggregation in Alzheimer's disease. Journal of Photochemistry and Photobiology B: Biology 190: 98–102.

      33 Jalalian, S.H., Ramezani, M., Abnous, K., and Taghdisi, S.M. (2018). Targeted co‐delivery of epirubicin and NAS‐24 aptamer to cancer cells using selenium nanoparticles for enhancing tumor response in vitro and in vivo. Cancer Letters 416: 87–93.

      34 Jia, X., Liu, Q., Zou, S. et al. (2015). Construction of selenium nanoparticles/β‐glucan composites

Скачать книгу