[1] Zvereva, E.L. and Kozlov, M.V. (2006) Consequences of Simultaneous Elevation of Carbon Dioxide and Temperature for Plant-Herbivore Interactions: A Metaanalysis. Global Change Biology, 12, 27-41. http://dx.doi.org/10.1111/j.1365-2486.2005.01086.x
[2] Bidart-Bouzat, M.G. and Imeh-Nathaniel, A. (2008) Global Change Effects on Plant Chemical Defenses against Insect Herbivores. Journal of Integrative Plant Biology, 50, 1339-1354.
http://dx.doi.org/10.1111/j.1744-7909.2008.00751.x
[3] Cyr, H. and Face, M.L. (1993) Magnitude and Patterns of Herbivory in Aquatic and Terrestrial Ecosystems. Nature, 361, 148-150. http://dx.doi.org/10.1038/361148a0
[4] Burkepile, D.E. (2013) Comparing Aquatic and Terrestrial Grazing Ecosystems: Is the Grass Really Greener? Oikos, 122, 306-312. http://dx.doi.org/10.1111/j.1600-0706.2012.20716.x
[5] O’Connor, M.I. (2009) Warming Strengthens an Herbivore-Plant Interaction. Ecology, 90, 388-398. http://dx.doi.org/10.1890/08-0034.1
[6] Poore, A.G., Graba-Landry, A., Favret, M., Brennand, H.S., Byrne, M. and Dworjanyn, S.A. (2013) Direct and Indirect Effects of Ocean Acidification and Warming on a Marine Plant-Herbivore Interaction. Oecologia, 173, 1113-1124. http://dx.doi.org/10.1007/s00442-013-2683-y
[7] Burnell, O.W., Russell, B.D., Irving, A.D. and Connell, S.D. (2013) Eutrophication Offsets Increased Sea Urchin Grazing on Seagrass Caused by Ocean Warming and Acidification. Marine Ecology Progress Series, 485, 37-46. http://dx.doi.org/10.3354/meps10323
[8] Schiel, D.R. and Foster, M.S. (1986) The Structure of Subtidal Algal Stands in Temperate Waters. Oceanography and Marine Biology Annual Review, 24, 265-307.
[9] Steneck, R.S., Graham, M.H., Bourque, B.J., Corbett, D., Erlandson, J.M., Estes, J.A. and Tegner, M.J. (2002) Kelp Forest Ecosystems: Biodiversity, Stability, Resilience and Future. Environmental Conservation, 29, 436-459. http://dx.doi.org/10.1017/S0376892902000322
[10] Poore, A.G., Campbell, A.H., Coleman, R.A., Edgar, G.J., Jormalainen, V., Reynolds, P.L., Sotka, E.E., Stachowicz, J.J., Taylor, R.B., Vanderklift M.A. and Duffy, J.E. (2012) Global Patterns in the Impact of Marine Herbivores on Benthic Primary Producers. Ecology Letters, 15, 912-922.
http://dx.doi.org/10.1111/j.1461-0248.2012.01804.x
[11] Amsler, C.D. and Fairhead, V.A. (2005) Defensive and Sensory Chemical Ecology of Brown Algae. Advances in Botanical Research, 43, 1-91. http://dx.doi.org/10.1016/S0065-2296(05)43001-3
[12] Hay, K.B., Millers, K.A., Poore, A.G. and Lovelock, C.E. (2010) The Use of Near Infrared Reflectance Spectrometry for Characterization of Brown Algal Tissue. Journal of Phycology, 46, 937-946.
http://dx.doi.org/10.1111/j.1529-8817.2010.00890.x
[13] Van Alstyne, K.L., Pelletreau, K.N. and Kirby, A. (2009) Nutritional Preferences Override Chemical Defenses in Determining Food Choice by a Generalist Herbivore, Littorina sitkana. Journal of Experimental Marine Biology and Ecology, 379, 85-91. http://dx.doi.org/10.1016/j.jembe.2009.08.002
[14] Chan, A.Y., Lubarsky, K., Judy, K.N. and Fong, P. (2012) Nutrient Addition Increases Consumption Rates of Tropical Algae with Different Initial Palatabilities. Marine Ecology Progress Series, 465, 25-31.
http://dx.doi.org/10.3354/meps09946
[15] Gao, X., Endo, H., Taniguchi, K. and Agatsuma, Y. (2013) Combined Effects of Seawater Temperature and Nutrient Condition on Growth and Survival of Juvenile Sporophytes of the Kelp Undaria pinnatifida (Laminariales; Phaeophyta) Cultivated in Northern Honshu, Japan. Journal of Applied Phycology, 25, 269-275. http://dx.doi.org/10.1007/s10811-012-9861-x
[16] Agatsuma, Y., Narita, K. and Taniguchi, K. (2002) Annual Life Cycle and Productivity of the Brown Alga Sargassum yezoense off the Coast of the Oshika Peninsula, Japan. Aquaculture Science, 50, 25-30.
[17] Kinoshita, J., Endo, H. and Agatsuma, Y. (2013) Sexual Differences in Gonad Size and Color of Strongylocentrotusnudus and Hemicentrotus pulcherrimus (Echinoidea: Echinodermata), from Maturation to Post-Spawning in Sargassum yezoense Bed (Phaeophyceae: Heterokontophyta). Cahiers de Biologie Marine, 54, 633-639.
[18] Yoshida, T. (1998) Marine Algae of Japan. Uchida Roukakuho Publishing, Tokyo.
[19] Lawrence, J.M., Plank, L.R. and Lawrence, A.L. (2003) The Effect of Feeding Frequency on Consumption of Food, Absorption Efficiency, and Gonad Production in the Sea Urchin Lytechinus variegatus. Comparative Biochemistry and Physiology Part A: Molecular and Integrative Physiology, 134, 69-75.
http://dx.doi.org/10.1016/S1095-6433(02)00222-2
[20] Tatewaki, M. (1966) Formation of a Crustaceous Sporophyte with Unilocular Sporangia in Scytosiphon lomentaria. Phycologia, 6, 62-66. http://dx.doi.org/10.2216/i0031-8884-6-1-62.1
[21] Jormalainen, V. and Ramsay, T. (2009) Resistance of the Brown Alga Fucus vesiculosus to Herbivory. Oikos, 118, 713-722. http://dx.doi.org/10.1111/j.1600-0706.2008.17178.x
[22] Gao, K. and Umezaki, I. (1988) Comparative Photosynthetic Capacities of the Leaves of Upper and Lower Parts of Sargassum Plants. Botanica Marina, 31, 231-236. http://dx.doi.org/10.1515/botm.1988.31.3.231
[23] Kamiya, M., Nishio, T., Yokoyama, A., Yatsuya, K., Nishigaki, T., Yoshikawa, S. and Ohki, K. (2010) Seasonal Variation of Phlorotannin in Sargassacean Species from the Coast of the Sea of Japan. Phycological Research, 58, 53-61. http://dx.doi.org/10.1111/j.1440-1835.2009.00558.x
[24] Endo, H., Suehiro, K., Kinoshita, J., Gao, X. and Agatsuma, Y. (2013) Combined Effects of Temperature and Nutrient Availability on Growth and Phlorotannin Concentration of the Brown Alga Sargassum patens (Fucales; Phaeophyceae). American Journal of Plant Sciences, 4, 14-20.
http://dx.doi.org/10.4236/ajps.2013.412A2002
[25] Liu, L., Heinrich, M., Myers, S. and Dworjanyn, S.A. (2012) Towards a Better Understanding of Medicinal Uses of the Brown Seaweed Sargassum in Traditional Chinese Medicine: A Phytochemical and Pharmacological Review. Journal of Ethnopharmacology, 142, 591-619.
http://dx.doi.org/10.1016/j.jep.2012.05.046
[26] Arnold, T.M. and Targett, N.M. (2003) To Grow and Defend: Lack of Tradeoffs for Brown Algal Phlorotannins. Oikos, 100, 406-408. http://dx.doi.org/10.1034/j.1600-0706.2003.11680.x
[27] Schaffelke, B. and Klumpp, D.W. (1998) Nutrient-Limited Growth of the Coral Reef Macroalga Sargassum baccularia and Experimental Growth Enhancement by Nutrient Addition in Continuous Flow Culture. Marine Ecology Progress Series, 164, 199-211. http://dx.doi.org/10.3354/meps164199
[28] Steinberg, P.D., Estes, J.A. and Winter, F.C. (1995) Evolutionary Consequences of Food Chain Length in Kelp Forest Communities. Proceedings of the National Academy of Sciences of the United States of America, 92, 8145-8148. http://dx.doi.org/10.1073/pnas.92.18.8145
[29] Bird, K.T., Habig, C. and DeBusk, T. (1982) Nitrogen Allocation and Storage Patterns in Gracilaria tikvahiae (Rhodophyta). Journal of Phycology, 18, 344-348.
http://dx.doi.org/10.1111/j.1529-8817.1982.tb03194.x
[30] Naldi, M. and Wheeler, P.A. (1999) Changes in Nitrogen Pools in Ulva fenestrata (Chlorophyta) and Gracilaria pacifica (Rhodophyta) under Nitrate and Ammonium Enrichment. Journal of Phycology, 35, 70-77. http://dx.doi.org/10.1046/j.1529-8817.1999.3510070.x
[31] Chapman, A.R.O. and Craigie, J.S. (1977) Seasonal Growth in Laminaria longicruris: Relations with Dissolved Inorganic Nutrients and Internal Reserves of Nitrogen. Marine Biology, 40, 197-205. http://dx.doi.org/10.1007/BF00390875
[32] Klinger, T.S. and Lawrence, J.M. (1984) Phagostimulation of Lytechinus variegatus (Lamarck) (Echinodermata: Echi- noidea). Marine and Freshwater Behaviour and Physiology, 11, 49-67.
http://dx.doi.org/10.1080/10236248409387034
[33] Johnson, C.R., Banks, S.C., Barrett, N.S., Cazassus, F., Dunstan, P.K., Edgar, G.J., Frusher, S.D., Gardner, C., Haddon, M., Helidoniotis, F., Hill, K.L., Holbrook, N.J., Hosie, G.W., Last, P.R., Ling, S.D., Melbourne-Thomas, J., Miller, K., Pecl, G.T., Richardson, A.J., Ridgway, K.R., Rintoul, S.R., Ritz, D.A., Ross, D.J., Sanderson, J.C., Shepherd, S.A., Slotwinski, A., Swadling, K.M. and Taw, N. (2011) Climate Change Cascades: Shifts in Oceanography, Species’ Ranges and Subtidal Marine Community Dynamics in Eastern Tasmania. Journal of Experimental Marine Biology and Ecology, 400, 17-32.
http://dx.doi.org/10.1016/j.jembe.2011.02.032
[34] Díez, I., Muguerza, N., Santolaria, A., Ganzedo, U. and Gorostiaga, J.M. (2012) Seaweed Assemblage Changes in the Eastern Cantabrian Sea and Their Potential Relationship to Climate Change. Estuarine, Coastal and Shelf Science, 99, 108-120. http://dx.doi.org/10.1016/j.ecss.2011.12.027
[35] Tanaka, K., Taino, S., Haraguchi, H., Prendergast, G. and Hiraoka, M. (2012) Warming off Southwestern Japan Linked to Distributional Shifts of Subtidal Canopy-Forming Seaweeds. Ecology and Evolution, 2, 2854-2865. http://dx.doi.org/10.1002/ece3.391
[36] Agatsuma, Y., Endo, H., Yoshida, S., Ikemori, C., Takeuchi, Y., Fujishima, H., Nakajima, K., Sano, M., Kanezaki, N., Imai, H., Yamamoto, N., Kanahama, H., Matsubara, T., Takahashi, S., Isogai, T. and Taniguchi, K. (2014) Enhancement of Saccharina Kelp Production by Nutrient Supply in the Sea of Japan off Southwestern Hokkaido, Japan. Journal of Applied Phycology, 26, 1845-1852.
http://dx.doi.org/10.1007/s10811-013-0196-z
[37] North, W.J. and Zimmerman, R.C. (1984) Influences of Macronutrients and Water Temperatures on Summertime Survival of Macrocystis Canopies. Hydrobiologia, 116-117, 419-424.
http://dx.doi.org/10.1007/BF00027713
[38] Hernández-Carmona, G., Robledo, D. and Serviere-Zaragoza, E. (2001) Effect of Nutrient Availability on Macrocystis pyrifera Recruitment and Survival near Its Southern Limit off Baja California. Botanica Marina, 44, 221-229. http://dx.doi.org/10.1515/BOT.2001.029