Polysaccharides. Группа авторов

Чтение книги онлайн.

Читать онлайн книгу Polysaccharides - Группа авторов страница 43

Polysaccharides - Группа авторов

Скачать книгу

Urokinase-coated chitosan nanoparticles for thrombolytic therapy: preparation and pharmacodynamics in vivo. J. Thromb. Thrombolysis, 36, 4, 458–468, 2013.

      169. Pan, M. et al., Porous chitosan microspheres containing zinc ion for enhanced thrombosis and hemostasis. Mater. Sci. Eng.: C, 85, 27–36, 2018.

      170. Santhosh, S. et al., Hepatoprotective activity of chitosan against isoniazid and rifampicin-induced toxicity in experimental rats. Eur. J. Pharmacol., 572, 1, 69–73, 2007.

      171. Subhapradha, N. et al., Hepatoprotective effect of β-chitosan from gladius of Sepioteuthis lessoniana against carbon tetrachloride-induced oxidative stress in Wistar rats. Appl. Biochem. Biotechnol., 172, 1, 9–20, 2014.

      172. Tzankova, V. et al., Hepatoprotective and antioxidant activity of quercetin loaded chitosan/ alginate particles in vitro and in vivo in a model of paracetamol-induced toxicity. Biomed. Pharmacother., 92, 569–579, 2017.

      173. Blockx, J. et al., Unravelling the mechanism of chitosan-driven flocculation of microalgae in seawater as a function of pH. ACS Sustainable Chem. Eng., 6, 9, 11273–11279, 2018.

      174. Bracharz, F. et al., Harvest of the oleaginous microalgae Scenedesmus obtusiusculus by flocculation from culture based on natural water sources. Front. Bioeng. Biotechnol., 6, 200–200, 2018.

      175. Chua, E.T. et al., Efficient harvesting of Nannochloropsis microalgae via optimized chitosan-mediated flocculation. Global Challenges, 3, 1, 1800038, 2019.

      176. Morales, J., de la Noüe, J., Picard, G., Harvesting marine microalgae species by chitosan flocculation. Aquacult. Eng., 4, 4, 257–270, 1985.

      177. Lee, K.Y. and Mooney, D.J., Alginate: Properties and biomedical applications. Prog. Polym. Sci., 37, 1, 106–126, 2012.

      178. Król, Ż. et al., Cytotoxicity, bactericidal, and antioxidant activity of sodium alginate hydrosols treated with direct electric current. Int. J. Mol. Sci., 18, 3, 678, 2017.

      179. Jönsson, M. et al., Extraction and Modification of Macroalgal Polysaccharides for Current and Next-Generation Applications. Molecules, 25, 4, 930, 2020.

      180. Silva, E.A. and Mooney, D.J., Effects of VEGF temporal and spatial presentation on angiogenesis. Biomaterials, 31, 6, 1235–1241, 2010.

      181. Kindness, G., Williamson, F.B., Long, W.F., Effect of polyanetholesulphonic acid and xylan sulphate on antithrombin III activity. Biochem. Biophys. Res. Commun., 88, 3, 1062–1068, 1979.

      182. Cáceres, P.J. et al., Carrageenans from chilean samples of Stenogramme interrupta (Phyllophoraceae): Structural analysis and biological activity. Phytochemistry, 53, 1, 81–86, 2000.

      183. Yuan, H. et al., Immunomodulation and antitumor activity of κ-carrageenan oligosaccharides. Cancer Lett., 243, 2, 228–234, 2006.

      184. Picker, K.M., The use of carrageenan in mixture with microcrystalline cellulose and its functionality for making tablets. Eur. J. Pharm. Biopharm., 48, 1, 27–36, 1999.

      185. Cody, B., Argyrios, M., Anargyros, X., Encapsulation and Controlled Release of Recombinant Human Erythropoietin from Chitosan-Carrageenan Nanoparticles. Curr. Drug Deliv., 9, 5, 527–537, 2012.

      187. Anderson, N.S. and Rees, D.A., 1104. Porphyran: A polysaccharide with a masked repeating structure. J. Chem. Soc. (Resumed), 5880–5887, 1965.

      188. Ishihara, K. et al., Inhibitory Effect of Porphyran, Prepared from Dried “Nori”, on Contact Hypersensitivity in Mice. Biosci. Biotechnol. Biochem., 69, 10, 1824–1830, 2005.

      189. Kwon, M.J. and Nam, T.J., Chromatographically purified porphyran from Porphyra yezoensis effectively inhibits proliferation of human cancer cells. Food Sci. Biotechnol., 16, 873–878, 2007.

      190. Noda, H. et al., Antitumor activity of marine algae, in: Thirteenth International Seaweed Symposium, Springer Netherlands, Dordrecht, 1990.

      191. El-Sayed, I.H. et al., Prominent free radicals scavenging activity of tannic acid in lead-induced oxidative stress in experimental mice. Toxicol. Ind. Health, 22, 4, 157–163, 2006.

      192. Wijesinghe, W.A.J.P. and Jeon, Y.-J., Biological activities and potential industrial applications of fucose rich sulfated polysaccharides and fucoidans isolated from brown seaweeds: A review. Carbohydr. Polym., 88, 13–20, 2012.

      193. Ustyuzhanina, N.E. et al., Influence of Fucoidans on Hemostatic System. Mar. Drugs, 11, 7, 2444–2458, 2013.

      194. Nishino, T. et al., An anticoagulant fucoidan from the brown seaweed Ecklonia kurome. Phytochemistry, 30, 2, 535–539, 1991.

      195. Choi, E.-M. et al., Immunomodulating Activity of Arabinogalactan and Fucoidan In Vitro. J. Med. Food, 8, 4, 446–453, 2005.

      196. Whiteside, T.L. and Herberman, R.B., The role of natural killer cells in immune surveillance of cancer. Curr. Opin. Immunol., 7, 5, 704–710, 1995.

      197. Matsumoto, S. et al., Fucoidan derived from Cladosiphon okamuranus Tokida ameliorates murine chronic colitis through the down-regulation of interleukin-6 production on colonic epithelial cells. Clin. Exp. Immunol., 136, 3, 432–439, 2004.

      198. Iraha, A. et al., Fucoidan enhances intestinal barrier function by upregulating the expression of claudin-1. World J. Gastroenterol., 19, 33, 5500–5507, 2013.

      199. Park, J., Yeom, M., Hahm, D.-H., Fucoidan improves serum lipid levels and atherosclerosis through hepatic SREBP-2-mediated regulation. J. Pharmacol. Sci., 131, 2, 84–92, 2016.

      200. Whistler, R., Industrial gums: Polysaccharides and their derivatives, Elsevier, Amsterdam, Netherlands, 2012.

      201. Venkatesan, J., Anil, S., Kim, S.-K., Introduction to Seaweed Polysaccharides, in: Seaweed Polysaccharides, pp. 1–9, Elsevier, Amsterdam, Netherlands, 2017.

      202. Photchanachai, S., Singkaew, J., Thamthong, J., Effects of chitosan seed treatment on Colletotrichum sp. and seedling growth of chili cv. jinda, in: IV International Conference on Managing Quality in Chains—The Integrated View on Fruits and Vegetables Quality 712, 2006.

      203. Bell, A.A. et al., Effects of chitin and chitosan on the incidence and severity of Fusarium yellows of celery. Plant Dis., 82, 3, 322–328, 1998.

      204. Ben-Shalom, N. et al., Controlling gray mould caused by Botrytis cinerea in cucumber plants by means of chitosan. Crop Prot., 22, 2, 285–290, 2003.

      205. Wojdyła, A., Chitosan (biochikol 020 PC) in the control of some ornamental foliage diseases. Commun. Agric. Appl. Biol. Sci., 69, 4, 705–715, 2004.

      206. Atia, M. et al., Antifungal activity of chitosan against Phytophthora infestans and activation of defence

Скачать книгу