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Marine Drugs  2012 

Antioxidant Activity of Hawaiian Marine Algae

DOI: 10.3390/md10020403

Keywords: antioxidant activity, algae, Hawaii, Turbinaria, carotenoids, fucoxanthin, chemoprevention

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Abstract:

Marine algae are known to contain a wide variety of bioactive compounds, many of which have commercial applications in pharmaceutical, medical, cosmetic, nutraceutical, food and agricultural industries. Natural antioxidants, found in many algae, are important bioactive compounds that play an important role against various diseases and ageing processes through protection of cells from oxidative damage. In this respect, relatively little is known about the bioactivity of Hawaiian algae that could be a potential natural source of such antioxidants. The total antioxidant activity of organic extracts of 37 algal samples, comprising of 30 species of Hawaiian algae from 27 different genera was determined. The activity was determined by employing the FRAP (Ferric Reducing Antioxidant Power) assays. Of the algae tested, the extract of Turbinaria ornata was found to be the most active. Bioassay-guided fractionation of this extract led to the isolation of a variety of different carotenoids as the active principles. The major bioactive antioxidant compound was identified as the carotenoid fucoxanthin. These results show, for the first time, that numerous Hawaiian algae exhibit significant antioxidant activity, a property that could lead to their application in one of many useful healthcare or related products as well as in chemoprevention of a variety of diseases including cancer.

References

[1]  Cardozo, K.H.M.; Guaratini, T.; Barros, M.P.; Falcao, V.R.; Tonon, A.P.; Lopes, N.P.; Campos, S.; Torres, M.A.; Souza, A.O.; Colepicolo, P.; et al. Review: Metabolites from algae with economical impact. Comp. Biochem. Physiol. C 2007, 146, 60–78.
[2]  Faulkner, D.J. Marine natural products. Nat. Prod. Rep. 2002, 19, 1–49.
[3]  Blunt, J.W.; Copp, B.R.; Munro, M.H.; Northcote, P.T.; Prinsep, M.R. Marine natural products. Nat. Prod. Rep. 2011, 28, 196–268.
[4]  Smit, A.J. Medicinal and pharmaceutical uses of seaweed natural products: A review. J. Appl. Phycol. 2004, 16, 245–262.
[5]  Mallick, N.; Mohn, F.H. Reactive oxygen species: Response of algal cells. J. Plant Physiol. 2000, 157, 183–193.
[6]  Matanjun, P.; Mohamed, S.; Mustapha, N.M.; Muhammad, K.; Ming, C.H. Antioxidant activities and phenolics content of eight species of seaweeds from north Borneo. J. Appl. Phycol. 2008, 20, 367–373.
[7]  Halliwell, B. Antioxidant defence mechanisms: From the beginning to the end (of the beginning). Free Radic. Res. 1999, 31, 261–272.
[8]  Ozben, T. Oxidative stress and apoptosis: Impact on cancer therapy. J. Pharm. Sci. 2007, 96, 2181–2196.
[9]  Vijayavel, K.; Martinez, J.A. In vitro antioxidant and antimicrobial activities of two Hawaiian marine limu: Ulva fasciata (Chlorophyta) and Gracilaria salicornia (Rhodophyta). J. Med. Food 2010, 13, 1494–1499.
[10]  Cornish, M.L.; Garbary, D.J. Antioxidants from macroalgae: Potential applications in human health and nutrition. Algae 2010, 25, 155–171.
[11]  Zubia, M.; Robledo, D.; Freile-Pelegrin, Y. Antioxidant activities in tropical marine macroalgae from the Yucatan Peninsula, Mexico. J. Appl. Phycol. 2007, 19, 449–458.
[12]  Abbott, I.A. Marine Red Algae of the Hawaiian Islands; Bishop Museum Press: Honolulu, HI, USA, 1999.
[13]  Abbott, I.A.; Huisman, J.M. Marine Green and Brown Algae of the Hawaiian Islands; Bishop Museum Press: Honolulu, HI, USA, 2004.
[14]  McDermid, K.J.; Stuercke, B. Nutritional composition of edible Hawaiian seaweeds. J. Appl. Phycol. 2003, 15, 513–524.
[15]  Hardt, I.H.; Fenical, W.; Cronin, G.; Hay, M.E. Acutilols, potent herbivore feeding deterrents from the tropical brown alga, Dictyota acutiloba. Phytochemistry 1996, 43, 71–73.
[16]  Chandini, S.K.; Ganesan, P.; Bhaskar, N. In vitro antioxidant activities of three selected brown seaweeds of India. Food Chem. 2008, 107, 707–713.
[17]  Ananthi, S.; Raghavendran, H.R.B.; Sunil, A.G.; Gayathri, V.; Ramakrishnan, G.; Vasanthi, H.R. In vitro antioxidant and in vivo anti-inflammatory potential of crude polysaccharide from Turbinaria ornata (marine brown alga). Food Chem. Toxicol. 2010, 48, 187–192.
[18]  Chattopadhyay, N.; Ghosh, T.; Sinha, S.; Chattopadhyay, K.; Karmakar, P.; Ray, B. Polysaccharides from Turbinaria conoides: Structural features and antioxidant capacity. Food Chem. 2010, 118, 823–829.
[19]  Takaichi, S. Carotenoids in algae: Distribution, biosynthesis and functions. Mar. Drugs 2011, 9, 1101–1118.
[20]  Peng, J.; Yuan, J.-P.; Wu, C.-F.; Wang, J.-H. Fucoxanthin, a marine carotenoid present in seaweeds and diatoms: Metabolism and bioactivities relevant to human health. Mar. Drugs 2011, 9, 1806–1828.
[21]  Sugawara, T.; Matsubara, K.; Akagi, R.; Mori, M.; Hirata, T. Antiangiogenic activity of brown algae fucoxanthin and its deacetylated product, fucoxanthiol. J. Agric. Food Chem. 2006, 54, 9805–9810.
[22]  Maeda, H.; Hosokawa, M.; Sashima, T.; Funayama, K.; Miyashita, K. Fucoxanthin from edible seaweed, Undaria pinnatifida, shows antiobesity effect through UCP1 expression in white adipose tissues. Biochem. Biophys. Res. Commun. 2005, 332, 392–397, doi:10.1016/j.bbrc.2005.05.002.
[23]  Maeda, H.; Tsukui, T.; Sashima, T.; Hosokawa, M.; Miyashita, K. Seaweed carotenoid, fucoxanthin, as a multi-functional nutrient. Asia Pac. J. Clin. Nutr. 2008, 17, 196–199.
[24]  Nishino, H. Cancer chemoprevention by natural carotenoids and their related compounds. J. Cell. Biochem. Suppl. 1995, 22, 231–235.
[25]  Sangeetha, R.K.; Bhaskar, N.; Baskaran, V. Comparative effects of β-carotene and fucoxanthin on retinol deficiency induced oxidative stress in rats. Mol. Cell. Biochem. 2009, 331, 59–67.
[26]  Sachindra, N.M.; Sato, E.; Maeda, H.; Hosokawa, M.; Niwano, Y.; Kohno, M.; Miyashita, K. Radical scavenging and singlet oxygen quenching activity of marine carotenoid fucoxanthin and its metabolites. J. Agric. Food Chem. 2007, 55, 8516–8522.
[27]  Kim, K.N.; Heo, S.J.; Kang, S.M.; Ahn, G.; Jeon, Y.J. Fucoxanthin induces apoptosis in human leukemia HL-60 cells through a ROS-mediated Bcl-xL pathway. Toxicol. in Vitro 2010, 24, 1648–1654.
[28]  Heo, S.J.; Cha, S.H.; Lee, K.W.; Cho, S.K.; Jeon, Y.J. Antioxidant activities of Chlorophyta and Phaeophyta from Jeju Island. Algae 2005, 20, 251–260.
[29]  Wang, H.; Chiu, L.C.M.; Ooi, V.E.C.; Ang, P.O. Seaweed polysaccharides with anticancer potential. Bot. Mar. 2008, 51, 313–319.
[30]  Kang, K.; Park, Y.; Hwang, H.J.; Kim, S.H.; Lee, J.G.; Shin, H.-C. Antioxidative properties of brown algae polyphenolics and their perspectives as chemopreventive agents against vascular risk factors. Arch. Pharm. Res. 2003, 26, 286–293.
[31]  Firdaus, M.; Astawan, M.; Muchtadi, D.; Wresdiyati, T.; Waspadji, S.; Karyono, S.S. Prevention of endothelial dysfunction in streptozotocin-induced diabetic rats by Sargassum echinocarpum extract. Med. J. Indones. 2010, 19, 32–35.
[32]  Cassolato, J.E.F.; Noseda, M.D.; Pujol, C.A.; Pellizzari, F.M.; Damonte, E.B.; Duarte, M.E.R. Chemical structure and antiviral activity of the sulfated heterorhamnan isolated from the green seaweed Gayralia oxysperma. Carbohydr. Res. 2008, 343, 3085–3095.
[33]  Li, H.; Mao, W.; Zhang, X.; Qi, X.; Chen, Y.; Chen, Y.; Xu, J.; Zhao, C.; Hou, Y.; Yang, Y.; et al. Structural characterization of an anticoagulant-active sulfated polysaccharide isolated from the green alga Monostroma latissimum. Carbohyd. Polym. 2011, 85, 394–400, doi:10.1016/j.carbpol.2011.02.042.
[34]  Premalatha, M.; Dhasarathan, P.; Theriappan, P. Phytochemical characterization and antimicrobial efficiency of seaweed samples, Ulva fasciata and Chaetomorpha antennina. Int. J. Pharm. Biol. Sci. 2011, 2, 288–293.
[35]  Murcia, M.A.; Jimenez, A.M.; Martinez-Tome, M. Vegetables antioxidant losses during industrial processing and refrigerated storage. Food Res. Int. 2009, 42, 1046–1052.
[36]  Fujimoto, K.; Ohmura, H.; Kaneda, T. Screening for antioxygenic compounds in marine algae and bromophenols as effective principles in a red alga Polysiphonia ulceolata. Bull. Jpn. Soc. Sci. Fish. 1985, 51, 1139–1143.
[37]  Kim, Y.A.; Kong, C.S.; Um, Y.R.; Lee, J.I.; Nam, T.J.; Seo, Y. Antioxidant efficacy of extracts from a variety of seaweeds in a cellular system. Ocean Sci. J. 2008, 43, 31–37.
[38]  De la Coba, F.; Aguilera, J.; Figueroa, F.L.; de Galvez, M.V.; Herrera, E. Antioxidant activity of mycosporine-like amino acids isolated from three red macroalgae and one marine lichen. J. Appl. Phycol. 2008, 21, 161–169.
[39]  Huisman, J.M.; Abbott, I.A.; Smith, C.M. Hawaiian Reef Plants; University of Hawaii Sea Grant College Program: Honolulu, HI, USA, 2007.
[40]  Benzie, I.F.F.; Strain, J.J. The ferric reducing ability of plasma (FRAP) as a measure of “antioxidant power”: The FRAP assay. Anal. Biochem. 1996, 239, 70–76.
[41]  Benzie, I.F.F.; Strain, J.J. Ferric reducing antioxidant power assay: Direct measure of total antioxidant activity of biological fluids and modified version for simultaneous measurement of total antioxidant power and ascorbic acid concentration. Meth. Enzymol. 1999, 299, 15–27.

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