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Therapeutic Uses of Red Macroalgae

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Therapeutic Uses of Red Macroalgae ( therapeutic-uses-red-macroalgae )

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Molecules 2020, 25, 4411 11 of 14 18. Pandian, P.; Selvamuthukumar, S.; Manavalan, R.; Parthasarathy, V. Screening of antibacterial and antifungal activities of red marine algae Acanthaphora spicifera (Rhodophyceae). J. Biomed. Sci. Res. 2011, 3, 444–448. 19. Mendis, E.; Kim, S.K. Present and future prospects of seaweed in developing functional foods. Adv. Food Nutr. Res. 2011, 64, 1–15. 20. Kwon, H.J.; Ryu, Y.B.; Kim, Y.M.; Song, N.; Kim, C.Y.; Rho, M.-C.; Jeong, J.-H.; Cho, K.-O.; Lee, W.S.; Park, S.J. In vitro antiviral activity of phlorotannins isolated from Ecklonia cava against porcine epidemic diarrhea coronavirus infection and hemagglutination. Bioorg. Med. Chem. 2013, 21, 4706–4713. [CrossRef] 21. Shi, Q.; Wang, A.; Lu, Z.; Qin, C.; Hu, J.; Yin, J. Overview on the antiviral activities and mechanisms of marine polysaccharides from seaweed. Carbohydr. Res. 2017, 453–454. 22. Gheda, S.F.; El-Adawib, H.L.; EL-Deebc, N.M. Antiviral profile of brown and red seaweed polysaccharides against hepatitis C virus. Iran. J. Pharmaceut. Res. 2016, 15, 483–491. 23. Diogo, J.V.; Novo, S.G.; Gonzalez, M.J.; Ciancia, M.; Bratanich, A.C. Antiviral activity of lambda-carrageenan prepared from red seaweed (Gigartina skottsbergii) against BoHV-1 and SuHV-1. Res. Veter. Sci. 2015, 98, 142–144. 24. Boulho, R.; Marty, C.; Freile-Pelegrín, Y.; Robledo, D.; Bourgougnon, N.; Bedoux, G. Antiherpetic (HSV-1) activity of carrageenans from the red seaweed Solieria chordalis (Rhodophyta, Gigartinales) extracted by microwave-assisted extraction (MAE). J. Appl. Phycol. 2017, 29, 2219–2228. 25. Morán-Santibañez, K.; Peña-Hernández, M.A.; Cruz-Suárez, L.E.; Ricque-Marie, D.; Skouta, R.; Vasquez, A.H.; Rodríguez-Padilla, C.; Trejo-Avila, L. Virucidal and synergistic activity of polyphenol-rich extracts of seaweeds against measles virus. Viruses 2018, 10, 465. [CrossRef] 26. Huang, H.L.; Wang, B.G. Antioxidant capacity and lipophilic content of seaweed collected from the Qingdao coastline. J. Agric. Food Chem. 2004, 52, 4993–4997. 27. Collins, K.G.; Fitzgerald, G.F.; Stanton, C.; Ross, R.P. Looking beyond the terrestrial, the potential of seaweed derived bioactives to treat non-communicable diseases. Mar. Drugs 2016, 14, 60. [CrossRef] 28. Vizetto-Duarte, C.; Cust-odio, L.; Acosta, G.; Lago, J.H.G.; Morais, T.R.; de Sousa, C.B.; Gangadhar, K.N.; Rodrigues, M.J.; Pereira, H.; Lima, R.T.; et al. Can macroalgae provide promising anti-tumoral compounds? A closer look at Cystoseira tamariscifolia as a source for antioxidant and anti-hepatocarcinoma compounds. Peer J. 2016, 4, 1704. 29. Ina, A.; Kamei, Y. Vitamin B (12), a chlorophyll-related analog to pheophytin a from marine brown algae, promotes neurite outgrowth and stimulates differentiation in PC12 cells. Cytotechnol 2006, 52, 181–187. 30. Manlusoc, J.K.T.; Hsieh, C.-L.; Hsieh, C.-Y.; Salac, E.S.; Lee, Y.-T.; Tsai, P.-W. Pharmacologic application potentials of sulfated polysaccharide from marine algae. Polymers 2019, 11, 1163. [CrossRef] 31. Wijesekara, I.; Pangestuti, R.; Kim, S. Biological activities and potential health benefits of sulphate polysaccharides derived from marine algae. Carbohydr. Polym. 2011, 84, 14–21. [CrossRef] 32. Benattouche, Z.; Raho, G.B.; Sahnouni, F.; Hariri, A.; Bouhadi, G.; Benchohra, M. Anioxidant activities of sulfated polysaccharide obtained from red algae Corallina officinalis. IJP 2017, 4, 88–91. 33. Punampalam, R.; Khoo, K.S.; Sit, N.M. Evaluation of antioxidant properties of phycobiliproteins and phenolic compounds extracted from Bangia atropurpurea. Malays. J. Fundam. Appl Sci. 2018, 14, 289–297. [CrossRef] 34. Nguyen, H.P.T.; Morançais, M.; Fleurence, J.; Dumay, J. Mastocarpus stellatus as a source of R-phycoerythrin, Optimization of enzyme assisted extraction using response surface methodology. J. Appl. Phycol. 2017, 29, 1563–1570. [CrossRef] 35. Fitzgerald, C.; Gallagher, E.; O’Connor, P.; Prieto, J.; Mora-Soler, L.; Grealy, M.; Hayes, M. Development of a seaweed derived platelet activating factor acetylhydrolase (PAF-AH) inhibitory hydrolysate, synthesis of inhibitory peptides and assessment of their toxicity using the Zebrafish larvae assay. Peptides 2013, 50, 119–124. [CrossRef] [PubMed] 36. Ismail, M.M.; El Zokm, G.M.; El-Sayed, A.M. Variation in biochemical constituents and master elements in common seaweed from Alexandria Coast, Egypt, with special reference to their antioxidant activity and potential food uses, prospective equations. Environ. Monit Assessm. 2017, 189, 648. [CrossRef] [PubMed] 37. Cotas, J.; Leandro, A.; Monteiro, P.; Pacheco, D.; Figueirinha, A.; Gonçalves, A.M.M.; da Silva, G.J.; Pereira, L. Seaweed Phenolics, From Extraction to Applications. Mar. Drugs 2020, 18, 384. [CrossRef] 38. Liu, M.; Hansen, P.E.; Lin, X. Bromophenols in marine algae and their bioactivities. Mar. Drugs 2011, 9, 1273–1292. [CrossRef] [PubMed]

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