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Biotechnological applications of marine natural substances (pp. 1–5). Tokyo, Japan: CMC
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Gaur, M., Dobke, M., & Lunyak, V. V. (2017). Mesenchymal stem cells from adipose tissue in
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Hwang, D. S., Choi, Y. S., & Cha, H. J. (2013). Mussel-derived adhesive biomaterials. In S.
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Je, J. Y., & Ahn, C. B. (2011). Antihypertensive actions of chitosan and its derivatives. In S.
K. Kim (Ed.), Chitin, chitosan oligosaccharides and their derivatives; biological activities and
applications (pp. 263–269). CRC Press.
Jeon, Y.-J., Shahidi, F., & Kim, S.-K. (2000). Preparation of chitin and chitosan oligomers and
their applications in physiological functional foods. Food Reviews International, 16(2),
159–176.
Jeon, Y.-J., Park, P.-J., & Kim, S.-K. (2001). Antimicrobial effect of chitooligosaccharides
produced by bioreactor. Carbohydrate Polymers, 44(1), 71–76.
Jun, S.-Y., Park, P.-J., Jung, W.-K., & Kim, S.-K. (2004). Purification and characterization of an
antioxidative peptide from enzymatic hydrolysate of yellowfin sole (Limanda aspera) frame
protein. European Food Research and Technology, 219(1), 20–26.
Kamino, K. (2008). Underwater adhesive of marine organisms as the vital link between biological
science and material science. Marine Biotechnology, 10(2), 111–121.
Kang, N.-H., Lee, W. K., Yi, B.-R., Park, M.-A., Lee, H.-R., Park, S.-K., et al. (2012). Modulation
of lipid metabolism by mixtures of protamine and chitooligosaccharide through pancreatic
lipase inhibitory activity in a rat model. Laboratory Animal Research, 28(1), 31–38.
Karadeniz, F., Zafer Karagozlu, M., Kong, C.-S., & Kim, S.-K. (2011). In vitro anti-HIV-1 activity
of the aqueous extract of Asterina pectinifera. Current HIV Research, 9(2), 95–102.
Khan, I. A., & Abourashed, E. A. (2011). Leung’s encyclopedia of common natural ingredients:
Used in food, drugs and cosmetics. Wiley.
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and burns: Antimicrobial and wound-healing effects. Expert Review of Anti-infective Therapy,
9(7), 857–879.
Dove, J., & Sheridan, P. (1986). Adhesive protein from mussels: Possibilities for dentistry,
medicine, and industry. Journal of the American Dental Association, 112(6), 879.
Dutta, P. K., Dutta, J., & Tripathi, V. (2004). Chitin and chitosan: Chemistry, properties and
applications.
Ehresmann, D., Deig, E., Hatch, M., DiSalvo, L., & Vedros, N. (1977). Antiviral substances from
California marine algae 1. Journal of Phycology, 13(1), 37–40.
Endo, M., Nakagawa, M., Hamamoto, Y., & Ishihama, M. (1986). Pharmacologically active
substances from southern Pacific marine invertebrates. Pure and Applied Chemistry, 58(3),
387–394.
Erdman, J., Oria, M., & Pillsbury, L. (2011). Eicosapentaenoic acid (EPA) and docosahexaenoic
acid (DHA).
Fanning, L., Mahon, R., & McConney, P. (2011). Towards marine ecosystem-based management
in the wider Caribbean. Amsterdam: Amsterdam University Press.
Fusetani, N. (2005). Research development of marine natural substances. In N. Fusetani (Ed.),
Biotechnological applications of marine natural substances (pp. 1–5). Tokyo, Japan: CMC
Pub. Co.
Gaur, M., Dobke, M., & Lunyak, V. V. (2017). Mesenchymal stem cells from adipose tissue in
clinical applications for dermatological indications and skin aging. International Journal of
Molecular Sciences, 18(1), 208.
Gillies, P. J., & Schaefer, E. J. (2011). Clinical benefits of eicosapentaenoic acid in humans.
Google Patents.
Hineno, T. (2005). Cosmetics. In N. Fusetani (Ed.), Biotechnological application of marine
natural substance (pp. 178–192). CMC.
Huang, R., Mendis, E., Rajapakse, N., & Kim, S.-K. (2006). Strong electronic charge as an
important factor for anticancer activity of chitooligosaccharides (COS). Life Sciences, 78(20),
2399–2408.
Hwang, D. S., Choi, Y. S., & Cha, H. J. (2013). Mussel-derived adhesive biomaterials. In S.
K. Kim (Ed.), Marine biomaterials (pp. 289–309). NW: CRC Press.
Je, J. Y., & Ahn, C. B. (2011). Antihypertensive actions of chitosan and its derivatives. In S.
K. Kim (Ed.), Chitin, chitosan oligosaccharides and their derivatives; biological activities and
applications (pp. 263–269). CRC Press.
Jeon, Y.-J., Shahidi, F., & Kim, S.-K. (2000). Preparation of chitin and chitosan oligomers and
their applications in physiological functional foods. Food Reviews International, 16(2),
159–176.
Jeon, Y.-J., Park, P.-J., & Kim, S.-K. (2001). Antimicrobial effect of chitooligosaccharides
produced by bioreactor. Carbohydrate Polymers, 44(1), 71–76.
Jun, S.-Y., Park, P.-J., Jung, W.-K., & Kim, S.-K. (2004). Purification and characterization of an
antioxidative peptide from enzymatic hydrolysate of yellowfin sole (Limanda aspera) frame
protein. European Food Research and Technology, 219(1), 20–26.
Kamino, K. (2008). Underwater adhesive of marine organisms as the vital link between biological
science and material science. Marine Biotechnology, 10(2), 111–121.
Kang, N.-H., Lee, W. K., Yi, B.-R., Park, M.-A., Lee, H.-R., Park, S.-K., et al. (2012). Modulation
of lipid metabolism by mixtures of protamine and chitooligosaccharide through pancreatic
lipase inhibitory activity in a rat model. Laboratory Animal Research, 28(1), 31–38.
Karadeniz, F., Zafer Karagozlu, M., Kong, C.-S., & Kim, S.-K. (2011). In vitro anti-HIV-1 activity
of the aqueous extract of Asterina pectinifera. Current HIV Research, 9(2), 95–102.
Khan, I. A., & Abourashed, E. A. (2011). Leung’s encyclopedia of common natural ingredients:
Used in food, drugs and cosmetics. Wiley.
Kibo, H. (1994). Application of artificial skin (pp. 71–104). Tokyo, Japan: Gihodo Pub. Co.
References
293
