Biopolymers for Biomedical and Biotechnological Applications

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Biopolymers for Biomedical and Biotechnological Applications: краткое содержание, описание и аннотация

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This book highlights the technical and methodological advancements in introducing biopolymers, their study and promoted applications. Organized in four parts, the book provides initially a general overview over biopolymers, properties and biocompatibility and continues with dedicated parts on ?Biopolyemrs through Bioengineering and Biotechnology Venues?, ?Polymeric Biomaterials with wide applications? and ?Biopolymers for Specific Applications?.

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182 182 Delattre, C., Pierre, G., Laroche, C., and Michaud, P. (2016). Production, extraction and characterization of microalgal and cyanobacterial exopolysaccharides. Biotechnology Advances 34 (7): 1159–1179.

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186 186 Kumar, D., Kaštánek, P., and Adhikary, S.P. (2018). Exopolysaccharides from cyanobacteria and microalgae and their commercial application. Current Science 115 (2): 9.

187 187 Phélippé, M., Gonçalves, O., Thouand, G. et al. (2019). Characterization of the polysaccharides chemical diversity of the cyanobacteria Arthrospira platensis. Algal Research 38: 101426.

188 188 Sun, L., Wang, L., and Zhou, Y. (2012). Immunomodulation and antitumor activities of different‐molecular‐weight polysaccharides from Porphyridium cruentum. Carbohydrate Polymers 87 (2): 1206–1210.

189 189 Xiao, R. and Zheng, Y. (2016). Overview of microalgal extracellular polymeric substances (EPS) and their applications. Biotechnology Advances 34 (7): 1225–1244.

190 190 Liu, L., Pohnert, G., and Wei, D. (2016). Extracellular metabolites from industrial microalgae and their biotechnological potential. Marine Drugs 14 (10): 191.

191 191 Raposo, M.F.J., Morais, A.M.M.B., and Morais, R.M.S.C. (2014). Bioactivity and applications of polysaccharides from marine microalgae. In: Polysaccharides (eds. K.G. Ramawat and J.‐M. Mérillon), 1–38. Springer International Publishing.

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193 193 Talyshinsky, M.M., Souprun, Y.Y., and Huleihel, M.M. (2002). Anti‐viral activity of red microalgal polysaccharides against retroviruses. Cancer Cell International 2: 8.

194 194 Li, J., Shen, B., Nie, S., and Chen, K. (2019). Marine microbial polysaccharides: promising immunomodulatory and anticancer potential. In: Marine Polysaccharides: Advances and Multifaceted Applications (eds. S. Ahmed and A. Soundararajan), 13–28. Pan Stanford Publishing Pte. Ltd.

195 195 Khan, T., Date, A., Chawda, H., and Patel, K. (2019). Polysaccharides as potential anticancer agents – a review of their progress. Carbohydrate Polymers 210: 412–428.

196 196 Morais, M.G., Stillings, C., Dersch, R. et al. (2010). Preparation of nanofibers containing the microalga Spirulina (Arthrospira). Bioresource Technology 101 (8): 2872–2876.

197 197 Wijesekara, I., Pangestuti, R., and Kim, S.‐K. (2011). Biological activities and potential health benefits of sulfated polysaccharides derived from marine algae. Carbohydrate Polymers 84 (1): 14–21.

198 198 Ngo, D.‐H. and Kim, S.‐K. (2013). Sulfated polysaccharides as bioactive agents from marine algae. International Journal of Biological Macromolecules 62: 70–75.

199 199 Deng, R. and Chow, T.‐J. (2010). Hypolipidemic, antioxidant, and antiinflammatory activities of microalgae spirulina: hypolipidemic, antioxidant, and antiinflammatory activities of microalgae spirulina. Cardiovascular Therapeutics 28 (4): 33–45.

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203 203 Borowitzka, M.A. (2013). High‐value products from microalgae – their development and commercialization. Journal of Applied Phycology 25 (3): 743–756.

204 204 Ariede, M.B., Candido, T.M., Jacome, A.L.M. et al. (2017). Cosmetic attributes of algae – a review. Algal Research 25: 483–487.

205 205 Bayona, K.C.D. (2012). Activity of sulfated polysaccharides from microalgae Porphyridium cruentum over degenerative mechanisms of the skin. International Journal of Science and Advanced Technology 2 (8): 85–92.

206 206 Croisier, F. and Jérôme, C. (2013). Chitosan‐based biomaterials for tissue engineering. European Polymer Journal 49: 780–792.

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