In modern society, novel marine resources are scrutinized pursuing compounds of use in the medical, pharmaceutical, biotech, food or feed industry. Few of the numerous marine macroalgae are currently exploited. In this study, the contents of nutritional compounds from nine common North Atlantic red macroalgae were compared: the lipid content was low and constant among the species, whereas the fatty acid profiles indicated that these species constitute interesting sources of polyunsaturated fatty acids (PUFA). The dominating essential and non-essential amino acids were lysine and leucine, aspartic acid, glutamic acid, and arginine, respectively. The amino acid score of the nine algae varied from 44% to 92%, the most commonly first limiting amino acid being histidine. Lutein, β -carotene, and zeaxanthin were the identified carotenoids. Contents of all macro and trace minerals, with the exception of phosphorus, were higher than those described for conventional food. Low sodium/potassium ratios (0.08 - 2.54) suggested a potential for using the ash fraction for sodium salt replacement. The algae constituted rich sources of carbohydrates (40% to 71% of DM) which show their potential for a broader commercial exploitation. In some species, the concentrations of arsenic, cadmium, and lead exceeded limit values for application in food or feed. In conclusion, the nine algae represent promising potential sources of health promoting additives for human and animal diets, in whole or in a biorefinery concept.
KeywordsProteinLipidCarotenoidsDry MatterArsenic
Hamed, I., Ozogul, F., Ozogul, Y. and Regenstein, J.M. (2015) Marine Bioactive Compounds and Their Health Benefits: A Review. Comprehensive Review in Food Science and Food Safety, 14, 446-465. http://dx.doi.org/10.1111/1541-4337.12136
Holdt, S.L. and Kraan, S. (2011) Bioactive Compounds in Seaweed: Functional Food Applications and Legislation. Journal of Applied Phycology, 23, 543-597. http://dx.doi.org/10.1007/s10811-010-9632-5
Lee, R. (2008) Phycology. 4th Edition, Cambridge University Press, Cambridge. http://dx.doi.org/10.1017/CBO9780511812897
MacArtain, P., Gill, C.I.R., Brooks, M., Campbell, R. and Rowland, I.R. (2007) Nutritional Value of Edible Seaweeds. Nutrition Reviews, 65, 535-543. http://dx.doi.org/10.1111/j.1753-4887.2007.tb00278.x
Soler-Vila, A., Coughlan, S., Guiry, M.D. and Kraan, S. (2009) The Red Alga Porphyra dioica as a Fish-feed Ingredient for Rainbow Trout (Oncorhynchus mykiss): Effects on Growth, Feed Efficiency, and Carcass Composition. Journal of Applied Phycology, 21, 617-624. http://dx.doi.org/10.1007/s10811-009-9423-z
Bixler, H. and Porse, H. (2011) A Decade of Change in the Seaweed Hydrocolloids Industry. Journal of Applied Phycology, 23, 321-335. http://dx.doi.org/10.1007/s10811-010-9529-3
Galland-Irmouli, A.-V., Fleurence, J., Lamghari, R., Luéon, M., Rouxel, C., Barbaroux, O., Bronowicki, J.-P., Villaume, C. and Guéant, J.-L. (1999) Nutritional Value of Proteins from Edible Seaweed Palmaria palmata (Dulse). The Journal of Nutritional Biochemistry, 10, 353-359. http://dx.doi.org/10.1016/S0955-2863(99)00014-5
Marsham, S., Scott, G.W. and Tobin, M.L. (2007) Comparison of Nutritive Chemistry of a Range of Temperate Seaweeds. Food Chemistry, 100, 1331-1336. http://dx.doi.org/10.1016/j.foodchem.2005.11.029
Morgan, K., Wright, J.C. and Simpson, F.J. (1980) Review of Chemical Constituents of the Red Alga Palmaria palmata (Dulse). Economic Botany, 34, 27-50. http://dx.doi.org/10.1007/BF02859553
Murata, M. and Nakazoe, J. (2001) Production and Use of Marine Algae in Japan. Japan Agricultural Research Quarterly, 35, 281-290.
Marrion, O., Fleurence. J., Schwertz, A., Guéant, J.-L., Mamelouk, L., Ksouri, J. and Villaume, C. (2005) Evaluation of Protein in Vitro Digestibility of Palmaria palmata and Gracilaria verrucosa. Journal of Applied Phycology, 17, 99-102. http://dx.doi.org/10.1007/s10811-005-5154-y
Nordy, A. and Dyerberg, J. (1988) Omega-3 Fatty Acids in Health and Disease. Journal of Internal Medicine, 225, 81-83.
Ransom, A.M. and Boris, W. (2003) Rapid Worldwide Depletion of Predatory Fish Communities. Nature, 423, 280-283. http://dx.doi.org/10.1038/nature01610
Tacon, A.G.J. and Metian, M. (2008) Global Overview on the Use of Fish Meal and Fish Oil in Industrially Compounded Aquafeeds: Trends and Future Prospects. Aquaculture, 285, 146-158. http://dx.doi.org/10.1016/j.aquaculture.2008.08.015
Gammone, M.A. and D’Orazio, N. (2015) Anti-Obesity Activity of the Marine Carotenoid Fucoxanthin. Marine Drugs, 13, 2196-2214. http://dx.doi.org/10.3390/md13042196
Zemke-White, W. and Ohno, M. (1999) World Seaweed Utilisation: An End-of-Century Summary. Journal of Applied Phycology, 11, 369-376. http://dx.doi.org/10.1023/A:1008197610793
Takaichi, S. (2011) Carotenoids in Algae: Distributions, Biosyntheses and Functions. Marine Drugs, 9, 1101-1118. http://dx.doi.org/10.3390/md9061101
Jaswir, I., Noviendri, D., Hasrini, R.F. and Octavianti, F. (2011) Carotenoids: Sources, Medicinals Properties and Their Application in Food and Nutraceutical Industry. Journal of Medicinal Plants Research, 5, 7119-7131.
März, U. (2008) The Global Market for Carotenoids. BCC Research Report FOD025C.
Mageswaran, R. and Sivasubramanian, S. (1984) Mineral and Protein Content of Some Marine Algae from Costal Areas of Northern Sri Lanka. Journal of the National Science Foundation, 12, 179-189
Ruperez, P. (2002) Mineral Content of Edible Marine Seaweeds. Food Chemistry, 79, 23-26. http://dx.doi.org/10.1016/S0308-8146(02)00171-1
Tabarsa, M., Rezaei, M., Ramezanpour, Z. and Waaland, J.R. (2012) Chemical Compositions of the Marine Algae Gracilaria salicornia (Rhodophyta) and Ulva lactuca (Chlorophyta) as a Potential Food Source. Journal of Science and Food Agriculture, 92, 2500-2506. http://dx.doi.org/10.1002/jsfa.5659
Percival, E. (1979) Polysaccharides of Green, Red and Brown Seaweeds: Their Basic Structure, Biosynthesis and Function. British Phycological Journal, 14, 103-117. http://dx.doi.org/10.1080/00071617900650121
Necas, J. and Bartosikova, L. (2013) Carrageenan: A Review. Veterinarni Medicina, 58, 187-205.
Middelboe, A.L., Sand-Jensen, K. and Brodersen, K. (1997) Patterns of Macroalgal Distribution in the Kattegat-Baltic Region. Phycologia, 36, 208-219. http://dx.doi.org/10.2216/i0031-8884-36-3-208.1
Culmo, R.F. (2010) Methods of Organic Nitrogen Analysis: Kjeldahl and the EA2410 N Analyzer (Dumas Method) PerkinElmer Publication EAN-8, Washington DC.
Angell, A.R., Mata, L., de Nys, R. and Paul, N.A. (2016) The Protein Content of Seaweeds: A Universal Nitrogen-to-Protein Conversion Factor of Five. Journal of Applied Phycology, 28, 511-524. http://dx.doi.org/10.1007/s10811-015-0650-1
Jung, S., Rickert, D.A., Deak, N.A., Aldin, E.D., Recknor, J., Johnson, L.A. and Murphy, P.A. (2003) Comparison of Kjeldahl and Dumas Methods for Determining Protein Contents of Soybean Products. Journal of the American Oil Chemists’ Society, 80, 1169-1173. http://dx.doi.org/10.1007/s11746-003-0837-3
World Health Organization/Food and Agriculture Organization/United Nations University (2007) Protein and Amino Acid Requirement in Human Nutrition Report of a Joint WHO/FAO/UNU Expert Consultation. WHO Technical Report Series No. 935, Geneva.
Dawczynski, C., Schubert, R. and Jahreis, G. (2007) Amino Acids, Fatty Acids, and Dietary Fibre in Edible Seaweed Products. Food Chemistry, 103, 891-899. http://dx.doi.org/10.1016/j.foodchem.2006.09.041
Razi Parjikolaei, B., Kloster, L.A.B., Rasmussen, M.B., Fretté, X.C. and Christensen, K.V. (2013) Effect of Light Quality and Nitrogen Availability on the Biomass Production and Pigment Content of Palmaria palmata (Rhodophyta). Chemical Engineering Transactions, 32, 967-972.
Gentili, A. and Caretti, F. (2011) Evaluation of a Method Based on Liquid Chromatography-Diode Array Detector-Tandem Mass Spectrometry for a Rapid and Comprehensive Characterization of the Fat-Soluble Vitamin and Carotenoid Profile of Selected Plant Foods. Journal of Chromatography, 1218, 684-697. http://dx.doi.org/10.1016/j.chroma.2010.12.001
Uhe, A.M., Collier, G.R. and O’Dea, K. (1992) A Comparison of the Effects of Beef, Chicken and Fish Protein on Satiety and Amino Acid Profiles in Lean Male Subjects.Journal of Nutrition, 122, 467-472
Misciattelli, L., Hvelplund, T., Weisbjerg, M.R., Madsen, J., Møller, J., Thøgersen, R. and Kjeldsen, A.M. (2002) Fodermidlernes Indhold af Aminosyrer og Aminosyrernes Andel af AAT. Rapport nr. 98. Landbrugets Rådgivningscenter, Denmark.
Mishra, V.K., Temelli, F., Ooraikul, B., Shacklock, P.F. and Craigie, J.S. (1993) Lipids of the Red Alga, Palmaria palmata. Botanica Marina, 36, 169-174. http://dx.doi.org/10.1515/botm.1993.36.2.169
Mouritsen, O.G., Dawczynski, C., Duelund, L., Jahreis, G., Vetter, W. and Schröder, M. (2013) On the Human Consumption of the Red Seaweed Dulse (Palmaria palmata (L.) Weber & Mohr). Journal of Applied Phycology, 25, 1777-1791. http://dx.doi.org/10.1007/s10811-013-0014-7
Fleurence, J. (1999) Seaweed Proteins: Biochemical, Nutritional Aspects and Potential Uses. Trends in Food Science and Technology, 10, 25-28. http://dx.doi.org/10.1016/S0924-2244(99)00015-1
Marinho, G.S., Holdt, S.L. and Angelidaki, I. (2015) Seasonal Variations in the Amino Acid Profile and Protein Nutritional Value of Saccharina latissima Cultivated in a Commercial IMTA System. Journal of Applied Phycology, 25, 1991-2000. http://dx.doi.org/10.1007/s10811-015-0546-0
Layman, D.K. (2004) Protein Quantity and Quality at Levels above the RDA Improves Adult Weight Loss. The Journal of the American College of Nutrition, 23, 631S-636S. http://dx.doi.org/10.1080/07315724.2004.10719435
McCarty, M.F., Barroso-Aranda, J. and Contreras, F. (2009) The Low-Methionine Content of Vegan Diets May Make Methionine Restriction Feasible as a Life Extension Strategy. Medical Hypotheses, 72, 125-128. http://dx.doi.org/10.1016/j.mehy.2008.07.044
Mouritsen, O.G. (2012) Umami Flavour as a Means of Regulating Food Intake and Improving Nutrition and Health. The Journal of Nutrition Health and Aging, 21, 56-75. http://dx.doi.org/10.1177/0260106012445537
Yaich, H., Garna, H., Besbes, S., Paquot, M., Blecker, C. and Attia, H. (2011) Chemical Composition and Functional Properties of Ulva lactuca Seaweed Collected in Tunisia. Food Chemistry, 128, 895-901. http://dx.doi.org/10.1016/j.foodchem.2011.03.114
Brody, T. (1998) Nutritional Biochemistry. University of California, Berkeley.
Matanjun, P., Mohamed, S., Mustapha, N.M. and Muhammad, K. (2008) Nutrient Content of Tropical Edible Seaweeds, Eucheuma cottonii, Caulerpa lentillifera and Sargassum polycystum. Journal of Applied Phycology, 21, 75-80. http://dx.doi.org/10.1007/s10811-008-9326-4
Kolb, N., Vallorani, L., Milanovi, N. and Stocchi, V. (2004) Evaluation of Marine Algae Wakama (Undaria pinnatifida) and Kombu (Laminaria digitata japonica) as Food Supplements. Food Technology and Biotechnology Journal, 42, 57-61.
Fleurence, J., Morançais, M., Dumay, J., Decottignies, P., Turpin, V., Munier, M., Garcia-Bueno, N. and Jaouen, P. (2012) What Are the Prospects for Using Seaweed in Human Nutrition and for Marine Animals Raised through Aquaculture? Trends in Food Science and Technology, 27, 57-61. http://dx.doi.org/10.1016/j.tifs.2012.03.004
National Research Council (2005) Dietary Reference Intakes for Energy, Carbohydrate, Fiber, Fat, Fatty Acids, Cholesterol, Protein, and Amino Acids (Macronutrients). The National Academies Press, Washington DC.
FAO Statistical Yearbook (Food and Agriculture Organization of the United Nations) (2004) Animal Production and Health Proceedings. FAO, Rome.
Ayadi, F.Y., Rosentrater, K.A. and Muthukumarappan, K. (2012) Alternative Protein Sources for Aquaculture Feeds. Journal of Aquaculture Feed Science and Nutrition, 4, 1-26. http://dx.doi.org/10.3923/joafsnu.2012.1.26
USDA (2013) Agricultural Research Service. National Nutrient Database for Standard Reference, Release 26, Beltsville.
Miles, R.D. and Jacob, J.P. (2011) Fishmeal: Understanding Why This Feed Ingredient Is So Valuable in Poultry Diets (PS30). Institute of Food and Agricultural Sciences, University of Florida, Gainesville.
Millwar, D.J. (2012) Amino Acid Scoring Patterns for Protein Quality Assessment. British Journal of Nutrition, 108, S31-S43. http://dx.doi.org/10.1017/S0007114512002462
Wegner, C.-E., Richter-Heitmann, T., Klindworth, A., Klockow, C., Richter, M., Achstetter, T., Gloeckner, F.O. and Harder, J. (2013) Expression of Sulfatases in Rhodopirellula baltica and the Diversity of Sulfatases in the Genus Rhodopirellula. Marine Genomics, 9, 51-61. http://dx.doi.org/10.1016/j.margen.2012.12.001
Wison, R.P. and Halver, J.E. (1986) Protein and Amino acid Requirement of Fishes. Annual Review of Nutrition, 6, 225-244. http://dx.doi.org/10.1146/annurev.nu.06.070186.001301
Vinoj Kumar, V. and Kaladharan, P. (2007) Amino Acids in the Seaweeds as an Alternate Source of Protein for Animal Feed. Journal of the Marine Biological Association of India, 49, 35-40.
Mabeau, S. and Fleurence, J. (1993) Seaweed in Food Products: Biochemical and Nutritional Aspects. Trends in Food Science and Technology, 4, 103-107. http://dx.doi.org/10.1016/0924-2244(93)90091-N
Morrissey, J., Kraan, S. and Guiry, M.D. (2001) A Guide to Commercially Important Seaweeds on the Irish Coast. Bord Iascaigh Mhara/Irish Sea Fisheris Board, Dublin.
Kumari, P., Kumar, M., Gupta, V., Reddy, C.R.K. and Jha, B. (2010) Tropical Marine Macroalgae as Potential Sources of Nutritionally Important PUFAs. Food Chemistry, 120, 749-757. http://dx.doi.org/10.1016/j.foodchem.2009.11.006
Fleurence, J., Gutbier, G., Mabeau, S. and Leray, C. (1994) Fatty Acids from 11 Marine Macroalgae of the French Brittany Coast. Journal of Applied Phycology, 6, 527-532. http://dx.doi.org/10.1007/BF02182406
van Ginneken, V.J., Helsper, J.P., de Visser, W., van Keulen, H. and Brandenburg, W.A. (2011) Polyunsaturated Fatty Acids in Various Macroalgal Species from North Atlantic and Tropical Seas. Lipid in Health and Disease, 10, 104. http://dx.doi.org/10.1186/1476-511X-10-104
Chuecas, L. and Riley, J.P. (1966) The Component Fatty Acids of Some Seaweed Fats. Journal of the Marine Biological Association UK, 46, 153-159. http://dx.doi.org/10.1017/S0025315400017616
Tasende, M.G. (1999) Fatty Acid and Sterol Composition of Gametophytes and Sporophytes of Chondrus crispus (Gigartinaceae, Rhodophyta). Scientia Marina, 64, 421-426
Dillon, J.T., Aponte, J.C., Tarozo, R. and Huang, Y. (2013) Purification of Omega-3 Polyunsaturated Fatty Acids from Fish Oil Using Silver-Thiolate Chromatographic Material and High Performance Liquid Chromatography. Journal of Chromatography, 1312, 18-25. http://dx.doi.org/10.1016/j.chroma.2013.08.064
Pereira, L. (2011) A Review of the Nutrient Composition of Selected Edible Seaweeds. In: Pomin, V.H., Ed., Seaweed: Ecology, Nutrient Composition and Medicinal Uses, Nova Science Publishers, Inc., Coimbra, 15-47.
Bruhn, A., Rasmussen, M., Olesen, B. and Worm, T. (2008) Kommerciel Dyrkning af Carrageentang (Chondrus crispus) i danske Farvande. Aarhus University, Aarhus.
Black, W.A.P. (1950) The Seasonal Variation in Weight and Chemical Composition of the Common British Laminariaceae. Journal of the Marine Biological Association UK, 29, 45-72. http://dx.doi.org/10.1017/S0025315400056186
Gatenby, C., Orcutt, D., Kreeger, D., Parker, B., Jones, V. and Neves, R. (2003) Biochemical Composition of Three Algal Species Proposed as Food for Captive Freshwater Mussels. Journal of Applied Phycology, 15, 1-11. http://dx.doi.org/10.1023/A:1022929423011
Renaud, S. and Luong-Van, J. (2007) Seasonal Variation in the Chemical Composition of Tropical Australian Marine Macroalgae. In: Anderson, R., Brodie, J., Onsøyen, E. and Critchley, A., Eds., Eighteenth International Seaweed Symposium, Developments in Applied Phycology, Vol. 1, Springer Netherlands, Dordrecht, 155-161. http://dx.doi.org/10.1007/978-1-4020-5670-3_20
Bruhn, A., Dahl, J., Nielsen, H.B., Nikolaisen, L.S., Rasmussen, M.B., Markager, S., Olesen, B., Arias, C. and Jensen, P.D. (2011) Bioenergy Potential of Ulva lactuca: Growth Yield, Methane Production and Combustion.Bioresource Technology, 102, 2595-2604. http://dx.doi.org/10.1016/j.biortech.2010.10.010
Lund-Hansen, L.C. (1994) Basisbog i Fysisk-biologisk Oceanografi. GAD.
Sambamurty, A.V.S.S. (2005) A Textbook of Algae. I.K. International Pvt. Ltd., New Delhi.
Lobban, C.S. and Wynne, M.J. (1981) The Biology of Seaweeds. University of California Press, Oakland.
Bjørnland, T. and Aguilar-Martinez, M. (1976) Carotenoids in Red Algae. Phytochemistry, 15, 291-296. http://dx.doi.org/10.1016/S0031-9422(00)89006-8
Bianchi, T.S., Kautsky, L. and Argyrou, M. (1997) Dominant Chlorophylls and Carotenoids in Macroalgae of the Baltic Sea (Baltic Proper): Their Use as Potential Biomarkers. Sarsia, 82, 55-62. http://dx.doi.org/10.1080/00364827.1997.10413637
Marquardt, J. and Hanelt, D. (2004) Carotenoid Composition of Delesseria lancifolia and Other Marine Red Algae from Polar and Temperate Habitats. European Journal of Phycology, 39, 285-292. http://dx.doi.org/10.1080/09670260410001712572
Guedes, A.C., Amaro, H.M. and Malcata, F.X. (2011) Microalgae as Sources of Carotenoids. Marine Drugs, 9, 625-644. http://dx.doi.org/10.3390/md9040625
Masetto, A., Flores-Cotera, L.B., Díaz, C., Langley, E. and Sanchez, S. (2001) Application of a Complete Factorial Design for the Production of Zeaxanthin by Flavobacterium sp. Journal of Bioscience and Bioengineering, 92, 55-58. http://dx.doi.org/10.1016/S1389-1723(01)80199-7
O’Neill, M.E., Carroll, Y., Corridan, B., Olmedilla, B., Granado, F., Blanco, I., Van den Berg, H., Hininger, I., Rausell, A.M., Chopra, M., Southon, S. and Thurnham, D.I. (2001) A European Carotenoid Database to Assess Carotenoid Intakes and Its Use in a Five-Country Comparative Study. British Journal of Nutrition, 85, 499-507. http://dx.doi.org/10.1079/BJN2000284
Torrissen, O.J. and Christiansen, R. (1995) Requirements for Carotenoids in Fish Diets. Journal of Applied Ichthyology, 11, 225-230. http://dx.doi.org/10.1111/j.1439-0426.1995.tb00022.x
Britton, G., Liaaen-Jensen, S. and Pfander, H. (2009) Carotenoids: Natural Functions. Vol. 4, Springer, Berlin. http://dx.doi.org/10.1007/978-3-7643-7501-0
Holdt, S.L. (2009) Nutrient Reduction in Aquaculture Waste by Macroalgae Production. PhD Dissertation, University of Southern Denmark, Odense.
Munda, I. (1972) Chemical Composition, Distribution and Ecology of Some Common Benthicmarine Algae from Iceland. Botanica Marina, 15, 1-45. http://dx.doi.org/10.1515/botm.1972.15.1.1
Ruperez, P. and Toledano, G. (2003) Indigestible Fraction of Edible Marine Seaweeds. Journal of Science and Food Agriculture, 83, 1267-1272. http://dx.doi.org/10.1002/jsfa.1536
Kebelmann, K., Hornung, A., Karsten, U. and Griffiths, G. (2013) Thermo-Chemical Behaviour and Chemical Product Formation from Polar Seaweeds during Intermediate Pyrolysis. Journal of Analytical and Applied Pyrolysis, 104, 131-138. http://dx.doi.org/10.1016/j.jaap.2013.08.012
Pereira, L. and van de Velde, F. (2011) Portuguese Carrageenophytes: Carrageenan Composition and Geographic Distribution of Eight Species (Gigartinales, Rhodophyta). Carbohydrate Polymers, 84, 614-623. http://dx.doi.org/10.1016/j.carbpol.2010.12.036
Morgan, K.C. and Simpson, F.J. (1981) The Cultivation of Palmaria palmate. Effect of Light Intensity and Nitrate Supply on Growth and Chemical Composition. Botanica Marina, 24, 273-277. http://dx.doi.org/10.1515/botm.1981.24.5.273
Lund-Hansen, L.C. (2011) Subsurface Chlorophyll Maximum (SCM) Location and Extension in the Water Column as Governed by a Density Interface in the Strongly Stratified Kattegat Estuary. Hydrobiologia, 673, 105-118. http://dx.doi.org/10.1515/botm.1981.24.5.273
Lamare, M.D. and Wing, S.R. (2001). Calorific Content of New Zealand Marine Macrophytes. New Zealand Journal of Marine and Freshwater Research, 35, 335-341. http://dx.doi.org/10.1080/00288330.2001.9517004
Ross, A.B., Jones, J.M., Kubacki, M.L. and Bridgeman, T. (2008) Classification of Macroalgae as Fuel and Its Thermochemical Behavior. Bioresource Technology, 99, 6494-6504. http://dx.doi.org/10.1016/j.biortech.2007.11.036
Adams, J.M.M., Ross, A.B., Anastasakis, K., Hodgson, E.M., Gallagher, J.A., Jone, J.M. and Donnison, I.S. (2011) Seasonal Variation in the Chemical Composition of the Bioenergy Feedstock Laminaria digitata for Thermochemical Conversion. Bioresource Technology, 102, 226-234. http://dx.doi.org/10.1016/j.biortech.2010.06.152
Jayasree, N.B., Aneesh, T., Prabhakar, V.A. and Anandan, R.B. (2012) GC-MS, HPLC and AAS Analysis of Fatty Acids, Amino Acids and Minerals in Red Algae Ampheroa Anceps. International Journal of Pharmaceutical Sciences, 4, 187-190.
Martinez-Ballesta, M.C., Dominguez-Perles, R., Moreno, D.A., Muries, B., Alcaraz-López, C., Bastías, E., García-Viguera, C. and Carvajal, M. (2010) Minerals in Plant Food: Effect of Agricultural Practices and Role in Human Health. Agronomy for Sustainable Development, 30, 295-309. http://dx.doi.org/10.1051/agro/2009022
Spears, J.W. (1996) Organic Trace Minerals in Ruminant Nutrition. Animal Feed Science and Technology, 58, 151-163. http://dx.doi.org/10.1016/0377-8401(95)00881-0
Suttle, N.F. (2010) Mineral Nutrition of Livestock. 4th Edition, CABI, London. http://dx.doi.org/10.1079/9781845934729.0000
Nisizawa, K., Noda, H., Kikuchi, R. and Watanabe, T. (1987) TheMain Seaweed Foods in Japan. Hydrobiologia, 151, 5-29. http://dx.doi.org/10.1007/BF00046102
FAO/WHO (2001) Human Vitamin and Mineral Requirements.
Sundhedsministeriet (2003) Sundhedsministeriets Bekendtgørelse 683 af 21.07.2003 om kosttilskud.
Henney, J.E., Taylor, C.L. and Boon, C.S. (2010) Appendix C. International Efforts to Reduce Sodium Consumption. Institute of Medicine (US) Committee on Strategies to Reduce Sodium Intake, The National Academies Press, Washington DC, Bookshelf ID: NBK50961.
Ortega-Calvo, J.J., Mazuelos, C., Hermosin, B. and Saizjimenez, C. (1993) Chemical Composition of Spirulina and Eukaryotic Algae Food Products Marketed in Spain. Journal of Applied Phycology, 5, 425-435. http://dx.doi.org/10.1007/BF02182735
EU (2002) EU Directive 2002/32/EC of the European Parliament and of the Council of 7th May 2002 on Undesirable Substances in Animal Feed.
Almela, C., Clemente, M.J., Velez, D. and Montoro, R. (2006) Total Arsenic, Inorganic Arsenic, Lead and Cadmium Contents in Edible Seaweed Sold in Spain. Food and Chemical Toxicology, 44, 1901-1908. http://dx.doi.org/10.1016/j.fct.2006.06.011
Besada, V., Andrade, J.M., Schultze, F. and Gonzalez, J.J. (2009) Heavy Metals in Edible Seaweeds Commercialised for Human Consumption. Journal of Marine Systems, 75, 305-313. http://dx.doi.org/10.1016/j.jmarsys.2008.10.010
Sharp, G.J., Samant, H.S. and Vaidya, O.C. (1988) Selected Metal Levels of Commercially Valuable Seaweeds Adjacent to and Distant from Point Sources of Contamination in Nova Scotia and New Brunswick. Bulletin of Environmental Contamination and Toxicology, 40, 724-730. http://dx.doi.org/10.1007/BF01697522
Adams, J.M.M., Toop, T.A., Donnison, I.S. and Gallagher, J.A. (2011) Seasonal Variation in Laminaria digitata and Its Impact on Biochemical Conversion Routes to Biofuels. Bioresource Technology, 102, 9976-9984. http://dx.doi.org/10.1016/j.biortech.2011.08.032
Thomson, D., Maher, W. and Foster, S. (2007) Arsenic and Selected Elements in Inter-Tidal and Estuarine Marine Algae, South-East Coast, NSW, Australia. Applied Organometallic Chemistry, 21, 396-411. http://dx.doi.org/10.1002/aoc.1231
FAO (2012) The State of World Fisheries and Aquaculture 2012. FAO Fisheries and Aquaculture Department, Rome, 230.
Mansilla, A., ávila, M. and Yokoya, N.S. (2012) Current Knowledge on Biotechnological Interesting Seaweeds from the Magellan Region, Chile. Revista Brasileira de Farmacognosia, 22, 760-767. http://dx.doi.org/10.1590/S0102-695X2012005000074
Maggs, C.A. and Pueschel, C.M. (1989) Morphology and Development of Ahnfeltia plicata (Rhodophyta: Proposal of Ahnfeltiales Ord.Nov.1. Journal of Phycology, 25, 333-351. http://dx.doi.org/10.1111/j.1529-8817.1989.tb00131.x
Laos, K. and Ring, S. (2005) Note: Characterisation of Furcellaran Samples from Estonian Furcellaria lumbricalis (Rhodophyta). Journal of Applied Phycology, 17, 461-464. http://dx.doi.org/10.1007/s10811-005-1635-2
Bidwell, R.G.S., McLachlan, J. and Lloyd, N.D.H. (1985) Tank Cultivation of Irish Moss, Chondrus crispus Stackh. Botanica Marine, 28, 87-97. http://dx.doi.org/10.1007/s10811-005-1635-2
Braud, J. (2006) Continuous Seaweed Tank Culture in France: From Chondrus crispus to Coculture of Macroalgae and the Diatom Odontella aurita. In: Critchley, A.T., Ohno, M. and Largo, D.B., Eds., Seaweed Resources of the World, Japan International Cooperation Agency, Yokosuka.
Martinez, B., Viejo, R.M., Rico, J.M., Rodde, R.H., Faes, V.A., Oliveros, J. and Alvarez, D. (2006) Open Sea Cultivation of Palmaria palmata (Rhodophyta) on the Northern Spanish Coast. Aquaculture, 254, 376-387. http://dx.doi.org/10.1016/j.aquaculture.2005.10.025
Pang, S.J. and Lüning, K. (2006) Tank Cultivation of the Red Alga Palmaria palmata: Year-Round Induction of Tetrasporangia, Tetraspore Release in Darkness and Mass Cultivation of Vegetative Thalli. Aquaculture, 252, 20-30. http://dx.doi.org/10.1016/j.aquaculture.2005.11.046
Corey, P., Kim, J.K., Duston, J., Garbary, D.J. and Prithiviraj, B. (2013) Bioremediation Potential of Palmaria palmata and Chondrus crispus (Basin Head): Effect of Nitrate and Ammonium Ratio as Nitrogen Source on Nutrient Removal. Journal of Applied Phycology, 25, 1349-1358. http://dx.doi.org/10.1007/s10811-013-9977-7
Hafting, J.T., Critchley, A.T., Cornish, M.L., Hubley, S.A. and Archibald, A.F. (2012) On-Land Cultivation of Functional Seaweed Products for Human Usage. Journal of Applied Phycology, 24, 385-392. http://dx.doi.org/10.1007/s10811-011-9720-1
Msuya, F. and Neori, A. (2008) Effect of Water Aeration and Nutrient Load Level on Biomass Yield, N Uptake and Protein Content of the Seaweed Ulva lactuca Cultured in Seawater Tanks. Journal of Applied Phycology, 20, 1021-1031. http://dx.doi.org/10.1007/s10811-007-9300-6
Bolton, J., Robertson-Andersson, D., Shuuluka, D. and Kandjengo, L. (2009) Growing Ulva (Chlorophyta) in Integrated Systems as a Commercial Crop for Abalone Feed in South Africa: A SWOT Analysis. Journal of Applied Phycology, 21, 575-583. http://dx.doi.org/10.1007/s10811-008-9385-6
Abreu, M.H., Pereira, R., Yarish, C., Buschmann, A.H. and Sousa-Pinto, I. (2011) IMTA with Gracilaria vermiculophylla: Productivity and Nutrient Removal Performance of the Seaweed in a Land-Based Pilot Scale System. Aquaculture, 312, 77-87. http://dx.doi.org/10.1016/j.aquaculture.2010.12.036
Nielsen, M.M., Bruhn, A., Rasmussen, M.B., Olesen, B., Larsen, M.M. and Moller, H.B. (2012) Cultivation of Ulva lactuca with Manure for Simultaneous Bioremediation and Biomass Production. Journal of Applied Phycology, 24, 449-458. http://dx.doi.org/10.1007/s10811-011-9767-z
Sode, S., Bruhn, A., Balsby, T.S.J., Larsen, M.M., Gotfredsen, A. and Rasmussen, M.B. (2013) Bioremediation of Reject Water from Anaerobically Digested Waste Water Sludge with Macroalgae (Ulva lactuca, Chlorophyta). Bioresource Technology, 146, 426-435. http://dx.doi.org/10.1016/j.biortech.2013.06.062
McHugh, D.J. (2003) A Guide to the Seaweed Industry. FAO Fisheries Technical Paper, Rome, 1-105.
Jung, K.A., Lim, S.R., Kim, Y. and Park, J.M. (2013) Potentials of Macroalgae as Feedstocks for Biorefinery. Bioresource Technology, 135, 182-190. http://dx.doi.org/10.1016/j.biortech.2012.10.025
Ruiz, H.A., Rodriguez-Jasso, R.M., Fernandes, B.D., Vicente, A.A. and Teixeira, J.A. (2013) Hydrothermal Processing, as an Alternative for Upgrading Agriculture Residues and Marine Biomass According to the Biorefinery Concept: A Review. Renewable and Sustainable Energy Reviews, 21, 35-51. http://dx.doi.org/10.1016/j.rser.2012.11.069
Wei, N., Quarterman, J. and Jin, Y.S. (2013) Marine Macroalgae: An Untapped Resource for Producing Fuels and Chemicals. Trends in Biotechnology, 31, 70-77. http://dx.doi.org/10.1016/j.tibtech.2012.10.009
Lorbeer, A.J., Tham, R. and Zhang, W. (2013) Potential Products from the Highly Diverse and Endemic Macroalgae of Southern Australia and Pathways for Their Sustainable Production. Journal of Applied Phycology, 25, 717-732. http://dx.doi.org/10.1007/s10811-013-0003-x
Kern, M., McGeehan, J.E., Streeter, S.D., et al. (2013) Structural Characterization of a Unique Marine Animal Family 7 Cellobiohydrolase Suggests a Mechanism of Cellulose Salt Tolerance. Proceedings of the National Academy of Sciences of the United States of America, 110, 10189-10194. http://dx.doi.org/10.1073/pnas.1301502110
Crist, R.H., Martin, J.R., Guptill, P.W., Eslinger, J.M. and Crist, D.R. (1990) Interaction of Metals and Protons with Algae. 2. Ion Exchange in Adsorption and Metal Displacement by Protons. Environmental Science and Technology, 24, 337-342. http://dx.doi.org/10.1021/es00073a008
Vasconcelos, M.T.S.D. and Leal, M.F.C. (2001) Seasonal Variability in the Kinetics of Cu, Pb, Cd and Hg Accumulation by Macroalgae. Marine Chemistry, 74, 65-85. http://dx.doi.org/10.1016/S0304-4203(00)00096-7
Tyler, R.T., Youngs, C.G. and Sosulski, F.W. (1981) Air Classification of Legumes. 1. Separation Efficiency, Yield, and Composition of the Starch and Protein Fractions. Cereal Chemistry, 58, 144-148.
EU (1997) EU Novel Food Catalogue.
Lísa, M., Netusilová, K., Franěk, L., Dvoráková, H., Vrkoslav, V. and Holcapek, M. (2011) Characterization of Fatty Acid and Triacylglycerol Composition in Animal Fats Using Silver-Ion and Non-Aqueous Reversed-Phase High-Performance Liquid Chromatography/Mass Spectrometry and Gas Chromatography/Flame Ionization Detection. Journal of Chromatography A, 1218, 7499-7510. http://dx.doi.org/10.1016/j.chroma.2011.07.032
Landim, A.V., Cardoso, M.T., Castanheira, M., Fioravanti, M.C., Louvandini, H. and McManus, C. (2011) Fatty Acid Profile of Hair Lams and Their Crossbreds Slaughtered at Different Wrights. Tropical Animal Health and Production, 8, 1561-1566. http://dx.doi.org/10.1007/s11250-011-9842-0
Hoekman, S.K., Broch, A., Robbins, C., Ceniceros, E. and Natarajan, M. (2012) Review of Biodiesel Composition, Properties, and Specifications. Renewable & Sustainable Energy Reviews, 16, 143-169. http://dx.doi.org/10.1016/j.rser.2011.07.143
Grunewald, N., Groth, I. and Alban, S. (2009) Evaluation of Seasonal Variations of the Structure and Anti-Inflammatory Activity of Sulfated Polysaccharides Extracted from the Red Alga Delesseria sanguinea (Hudson) Lamouroux (Ceramiales, Delesseriaceae). Biomacromolecule, 10, 1155-1162. http://dx.doi.org/10.1021/bm8014158
Tariq, V.N. (1991) Antifungal Activity in Crude Extracts of Marine Red Algae. Mycological Research, 95, 1433-1435. http://dx.doi.org/10.1016/S0953-7562(09)80398-5
Lahaye, M. and Vigouroux, J. (1992) Liquefaction of Dulse (Palmaria palmata (L.) Kuntze) by a Commercial Enzyme Preparation and a Purified Endo,β-1,4-D-xylanase. Journal of Applied Phycology, 4, 329-337. http://dx.doi.org/10.1007/BF02185790
Dauguet, J.C., Bert, M., Dolley, J. and Bert, J.J. (1993) Sterols of Phycodrys rubens (Delesseriaceae, Ceramiales). Cryptogamie. Algologie, 14, 99-104.
Potin, P., Patier, P., Floch, J.Y., Yvin, J.C. and Rochas, C. (1992) Chemical Characterization of Cell-Wall Polysaccharides from Tank-Cultivated and Wild Plants of Delesseria sanguinea (Hudson) Lamouroux (Ceramiales, Delesseriaceae): Culture Patterns and Potent Anticoagulant Activity. Journal of Applied Phycology, 4, 119-128. http://dx.doi.org/10.1007/BF02442460
Martin, G., Paalme, T. and Torn, K. (2006) Growth and Production Rates of Loose-Lying and Attached Forms of the Red Algae Furcellaria lumbricalis and Coccotylus truncatus in Kassari Bay, the West Estonian Archipelago Sea. Hydrobiologia, 554, 107-115. http://dx.doi.org/10.1007/s10750-005-1010-y
van de Poll, W.H., Eggert, A., Buma, A.G.J. and Breeman, A.M. (2001) Effects of UV-Binduced DNA Damage and Photoinhibition on Growth of Temperate Marine Red Macrophytes: Habitat-Related Differences in UV-B Tolerance. Journal of Phycology, 37, 30-37. http://dx.doi.org/10.1007/s10750-005-1010-y
Gordillo, F.J.L. (2008) Ecophysiological Changes in Arctic Seaweeds Triggered by Rising Temperature and Dissolved CO2 (SEATEC). University of Malaga, Malaga.