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REFERENCESAiroldi, L., & Beck, M. W. (2007). Loss, status and trends for coastal marine habitats of europe. Oceanography and Marine Biology: An Annual Review, 45, 345–405.Aitken, S. N., & Whitlock, M. C. (2013). Assisted gene flow to facilitate local adaptation to climate change. Annual Review of Ecology, Evolution, and Systematics, 44, 367–388.Andrews, S., Bennett, S., & Wernberg, T. (2014). Reproductive seasonality and early life temperature sensitivity reflect vulnerability of a seaweed undergoing range reduction. Marine Ecology Progress Series, 495, 119–129.Babcock, R. C., Kelly, S., Shears, N. T., Walker, J. W., & Willis, T. J. (1999). Changes in community structure in temperate marine reserves. Marine Ecology Progress Series, 189, 125–134.Babcock, R. C., Shears, N. T., Alcala, A. C., Barrett, N. S., Edgar, G. J., Lafferty, K. D., … Russ, G. R. (2010). Decadal trends in marine reserves reveal differential rates of change in direct and indirect effects. Proceedings of the National Academy of Sciences, 107, 18256–18261.Baker, J. L., & Edyvane, K. S. (2003). Subtidal macrofloral survey of St Francis and Fenelon Islands, South Australia. Transactions of the Royal Society of South Australia, 127, 177–187.Barrett, N. S., Buxton, C. D., & Edgar, G. J. (2009). Changes in invertebrate and macroalgal populations in Tasmanian marine reserves in the decade following protection. Journal of Experimental Marine Biology and Ecology, 370, 104–119.Bennett, S., & Wernberg, T. (2014). Canopy facilitates seaweed recruitment on subtidal temperate reefs. Journal of Ecology, 102, 1462–1470.Bennett, S., Wernberg, T., Connell, S. D., Hobday, A. J., Johnson, C. R., & Poloczanska, E. S. (2016). The ‘Great Southern Reef’: Social, ecological and economic value of Australia's neglected kelp forests. Marine and Freshwater Research, 67, 47–56.Bennett, S., Wernberg, T., Joy, B. A., De Bettignies, T., & Campbell, A. H. (2015). Central and rear-edge populations can be equally vulnerable to warming. Nature Communications, 6, 10280.Bianchelli, S., Buschi, E., Danovaro, R., & Pusceddu, A. (2016). Biodiversity loss and turnover in alternative states in the Mediterranean Sea: A case study on meiofauna. Scientific Reports, 6, 34544.Bishop, M. J., Coleman, M. A., & Kelaher, B. P. (2010). Cross-habitat impacts of species decline: Response of estuarine sediment communities to changing detrital resources. Oecologia, 163, 517–525.Bolton, J. J. (2016). What is aquatic botany?—And why algae are plants: The importance of non-taxonomic terms for groups of organisms. Aquatic Botany, 132, 1–4.Borowitzka, M. A. (1972). Intertidal algal species diversity and the effect of pollution. Australian Journal of Marine and Freshwater Research, 23, 73–84.Burridge, T. R., & Bidwell, J. (2002). Review of the potential use of brown algal ecotoxicological assays in monitoring effluent discharge and pollution in Southern Australia. Marine Pollution Bulletin, 45, 140–147.Burridge, T., & Hallam, N. D. (1993). Early development and apical growth in Phyllospora-Comosa (Labillardiere) Agardh, C. (Seirococcaceae, Phaeophyta). Botanica Marina, 36, 159–168.Burridge, T. R., Lavery, T., & Lam, P. K. S. (1995). Acute toxicity tests using Phyllospora-Comosa (Labillardiere) Agardh, C. (Phaeophyta, Fucales) and Allorchestes Compressa Dana (Crustacea, Amphipoda). Bulletin of Environmental Contamination and Toxicology, 55, 621–628.Burridge, T. R., Portelli, T., & Ashton, P. (1996). Effect of sewage effluents on germination of three marine brown algal macrophytes. Marine and Freshwater Research, 47, 1009–1014.Burridge, T. R., & Shir, M. A. (1995). The comparative effects of oil dispersants and oil/dispersant conjugates on germination of the marine macroalga Phyllospora comosa (Fucales: Phaeophyta). Marine Pollution Bulletin, 31, 446–452.Campbell, A. H., Marzinelli, E. M., Verges, A., Coleman, M. A., & Steinberg, P. D. (2014). Towards restoration of missing underwater forests. PLoS ONE, 9(1), e84106.Campbell, A. H., Verges, A., & Steinberg, P. D. (2014). Demographic consequences of disease in a habitat-forming seaweed and impacts on interactions between natural enemies. Ecology, 95, 142–152.Castorani, M. C. N., Reed, D. C., Alberto, F., Bell, T. W., Simons, R. D., Cavanaugh, K. C., … Raimondi, P. T. (2015). Connectivity structures local population dynamics: A long-term empirical test in a large metapopulation system. Ecology, 96, 3141–3152.Cetina-Heredia, P., Roughan, M., vanSebille, E., & Coleman, M. A. (2014). Long-term trends in the East Australian current separation latitude and eddy driven transport. Journal of Geophysical Research: Oceans, 119, 4351–4366.Cetina-Heredia, P., Roughan, M., vanSebille, E., Feng, M., & Coleman, M. A. (2015). Strengthened currents override the effect of warming on lobster larval dispersal and survival. Global Change Biology, 21, 4377–4386.Coleman, M. A., & Brawley, S. H. (2005a). Spatial and temporal variability in dispersal and population genetic structure of a rockpool alga. Marine Ecology Progress Series, 300, 63–77.Coleman, M. A., & Brawley, S. H. (2005b). Variability in temperature and historical patterns in reproduction in the Fucus distichus complex (Heterokontophyta; Phaeophyceae): Implications for speciation and the collection of herbarium specimens. Journal of Phycology, 41, 1110–1119.Coleman, M. A., Cetina-Heredia, P., Roughan, M., Feng, M., vanSebille, E., & Kelaher, B. P. (2017). Anticipating changes to future connectivity within a network of marine protected areas. Global Change Biology, https://doi.org/10.1111/gcb.13634Coleman, M. A., Chambers, J., Knott, N. A., Malcolm, H. A., Harasti, D., Jordan, A., & Kelaher, B. P. (2011). Connectivity within and among a network of temperate marine reserves. PLoS ONE, 6(5), e20168.Coleman, M. A., Dolman, G., Kelaher, B. P., & Steinberg, P. D. (2008). Characterisation of microsatellite loci in the subtidal habitat-forming alga, Phyllospora comosa (Phaeophyceae, Fucales). Conservation Genetics, 9, 1015–1017.Coleman, M. A., & Kelaher, B. P. (2009). Connectivity among fragmented populations of a habitat-forming alga, Phyllospora comosa (Phaeophyceae, Fucales) on an urbanised coast. Marine Ecology Progress Series, 381, 63–70.Coleman, M. A., Kelaher, B. P., Steinberg, P. D., & Millar, A. J. K. (2008). Absence of a large brown macroalga on urbanized rocky reefs around Sydney, Australia, and evidence for historical decline. Journal of Phycology, 44, 897–901.Coleman, M. A., & Muhlin, J. F. (2008). Patterns of spatial variability in the morphology of sympatric fucoids. Northeastern Naturalist, 15, 111–122.Coleman, M. A., Palmer-Brodie, A., & Kelaher, B. P. (2013). Conservation benefits of a network of marine reserves and partially protected areas. Biological Conservation, 167, 257–264.Coleman, M. A., Roughan, M., MacDonald, H. S., Connell, S. D., Gillanders, B. M., Kelaher, B. P., & Steinberg, P. D. (2011). Variation in the strength of continental boundary currents determines continent-wide connectivity in kelp. Journal of Ecology, 99, 1026–1032.Coleman, M. A., Vytopil, E., Goodsell, P. J., Gillanders, B. M., & Connell, S. D. (2007). Diversity and depth-related patterns of mobile invertebrates associated with kelp forests. Marine and Freshwater Research, 58, 589–595.Connell, S. D., & Irving, A. D. (2008). Integrating ecology with biogeography using landscape characteristics: A case study of subtidal habitat across continental Australia. Journal of Biogeography, 35, 1608–1621.Dayton, P. K. (1972). Toward an understanding of community resilience and the potential effects of enrichments to the benthos at McMurdo Sound, Antarctica. In Proceedings of the colloquium on conservation problems. Lawrence, KS: Allen Press.Dempster, T., & Kingsford, M. J. (2004). Drifting objects as habitat for pelagic juvenile fish off New South Wales, Australia. Marine and Freshwater Research, 55, 675–687.Durrant, H. M. S., Barrett, N. S., Edgar, G. J., Coleman, M. A., & Burridge, C. P. (2015). Shallow phylogeographic histories of key species in a biodiversity hotspot. Phycologia, 54, 556–565.Edgar, G. J. (1984). General features of the ecology and biogeography of Tasmanian subtidal rocky shore communities. Papers and Proceedings of the Royal Society of Tasmania, 118, 173–186.Filbee-Dexter, K., & Scheibling, R. E. (2014). Sea urchin barrens as alternative stable states of collapsed kelp ecosystems. Marine Ecology Progress Series, 495, 1–25.Flukes, E. B., Wright, J. T., & Johnson, C. R. (2015). Phenotypic plasticity and biogeographic variation in physiology of habitat-forming seaweed: Response to temperature and nitrate. Journal of Phycology, 51, 896–909.Fraser, C. I. (2012). Is bull-kelp kelp? The role of common names in science. New Zealand Journal of Marine and Freshwater Research, 46, 279–284.Fraser, C. I., Nikula, R., & Waters, J. M. (2011). Oceanic rafting by a coastal community. Proceedings of the Royal Society B: Biological Sciences, 278, 649–655.Gianni, F., Bartolini, F., Airoldi, L., Ballesteros, E., Francour, P., Guidetti, P., … Mangialajo, L. (2013). Conservation and restoration of marine forests in the Mediterranean Sea and the potential role of Marine Protected Areas. Advances in Oceanography and Limnology, 4, 83–101.Glasby, T. M., Gibson, P. T., West, G., Davies, P., & Voerman, S. (2015). Range and habitat associations of the native macroalga Caulerpa filiformis in New South Wales, Australia. Marine and Freshwater Research, 66, 1018–1026.Goldberg, N. A. (2007). Colonization of subtidal macroalgae in a fucalean-dominated algal assemblage, southwestern Australia. Hydrobiologia, 575, 423–432.Goodsell, P. J., Fowler-Walker, M. J., Gillanders, B. M., & Connell, S. D. (2004). Variations in the configuration of algae in subtidal forests: Implications for invertebrate assemblages. Austral Ecology, 29, 350–357.Graham, M. H. (2004). Effects of local deforestation on the diversity and structure of southern California giant kelp forest food webs. Ecosystems, 7, 341–357.Guiry, M. D. (2012). How many species of algae are there?Journal of Phycology, 48, 1057–1063.Harman, N., Harvey, E. S., & Kendrick, G. A. (2003). Differences in fish assemblages from different reef habitats at Hamelin Bay, south-western Australia. Marine and Freshwater Research, 54, 177–184.Hinojosa, I. A., Green, B. S., Gardner, C., & Jeffs, A. (2015). Settlement and early survival of southern rock lobster, Jasus edwardsii, under climate-driven decline of kelp habitats. Ices Journal of Marine Science, 72, 59–68.Hay, K. B., Poore, A. G. B., & Lovelock, C. E. (2011). The effects of nutrient availability on tolerance to herbivory in a brown seaweed. Journal of Ecology, 99, 1540–1550.Hirst, A. J. (2006). Influence of taxonomic resolution on multivariate analyses of arthropod and macroalgal reef assemblages. Marine Ecology Progress Series, 324, 83–93.Hobday, A. J., & Pecl, G. T. (2014). Identification of global marine hotspots: Sentinels for change and vanguards for adaptation action. Reviews in Fish Biology and Fisheries, 24, 415–425.Hughes, A. R., Inouye, B. D., Johnson, M. T. J., Underwood, N., & Vellend, M. (2008). Ecological consequences of genetic diversity. Ecology Letters, 11, 609–623.Huisman, J. M. (2000). Marine plants of Australia. Nedlands, WA: University of Western Australia Press.Irving, A. D., & Connell, S. D. (2006). Physical disturbance by kelp abrades erect algae from the understorey. Marine Ecology Progress Series, 324, 127–137.Irving, A. D., Connell, S. D., & Gillanders, B. M. (2004). Local complexity in patterns of canopy-benthos associations produces regional patterns across temperate Australasia. Marine Biology, 144, 361–368.James, N. P., Reid, C. M., Bone, Y., Levings, A., & Malcolm, I. (2013). The macroalgal carbonate factory at a cool-to-warm temperate marine transition, Southern Australia. Sedimentary Geology, 291, 1–26.Kendrick, G. A. (1994). Effects of propagule settlement density and adult canopy on survival of recruits of Sargassum spp. (Sargassaceae, Phaeophyta). Marine Ecology Progress Series, 103, 129–140.Kendrick, G. A., & Walker, D. I. (1991). Dispersal distances for propagules of sargassum-spinuligerum (Sargassaceae, Phaeophyta) measured directly by vital staining and venturi suction sampling. Marine Ecology Progress Series, 79, 133–138.Kendrick, G. A., & Walker, D. I. (1994). Role of recruitment in structuring beds of Sargassum spp. (Phaeophyta) at Rottnest Island, Western-Australia. Journal of Phycology, 30, 200–208.Kendrick, G. A., & Walker, D. I. (1995). Dispersal of propagules of Sargassum spp. (Sargassaceae, Phaeophyta) – Observations of local patterns of dispersal and consequences for recruitment and population-structure. Journal of Experimental Marine Biology and Ecology, 192, 273–288.Krumhansl, K. A., & Scheibling, R. E. (2012). Production and fate of kelp detritus. Marine Ecology Progress Series, 467, 281–302.Lanham, B. S., Gribben, P. E., & Poore, A. G. B. (2015). Beyond the border: Effects of an expanding algal habitat on the fauna of neighbouring habitats. Marine Environmental Research, 106, 10–18.Ling, S. D. (2008). Range expansion of a habitat-modifying species leads to loss of taxonomic diversity: A new and impoverished reef state. Oecologia, 156, 883–894.Mangialajo, L., Gianni, F., Airoldi, L., Bartolini, F., Francour, P., Meinesz, A., … Ballesteros, E. (2008). Conservation and restoration of Cystoseira forests in the Mediterranean Sea: The role of marine protected areas. Rapport Commission International Mer Mediterranee, 40, 2013.Marzinelli, E. M., Campbell, A. H., Verges, A., Coleman, M. A., Kelaher, B. P., & Steinberg, P. D. (2014). Restoring seaweeds: Does the declining fucoid Phyllospora comosa support different biodiversity than other habitats?Journal of Applied Phycology, 26, 1089–1096.Marzinelli, E. M., Leong, M. R., Campbell, A. H., Steinberg, P. D., & Verges, A. (2016). Does restoration of a habitat-forming seaweed restore associated faunal diversity?Restoration Ecology, 24, 81–90.May, V. (1985). Observation on algal floras close to 2 sewerage outlets. Cunninghamia, 1, 385–394.May, D. I., & Clayton, M. N. (1991). Oogenesis, the formation of oogonial stalks and fertilization in Sargassum-Vestitum (Fucales, Phaeophyta) from southern Australia. Phycologia, 30, 243–256.Millar, A. J. K., & Kraft, G. T. (1993). Catalogue of marine and freshwater red algae (Rhodophyta) of New South Wales, including Lord Howe Island, South-western Pacific. Australian Systematic Botany, 6, 1–90.Muhlin, J. F., Coleman, M. A., Rees, T. A. V., & Brawley, S. H. (2011). Modeling of reproduction in the intertidal macrophyte Fucus vesiculosus and implications for spatial subsidies in the nearshore environment. Marine Ecology Progress Series, 440, 79–94.Nilsson, J., Engkvist, R., & Persson, L. E. (2004). Long-term decline and recent recovery of Fucus populations along the rocky shores of southeast Sweden, Baltic Sea. Aquatic Ecology, 38, 587–598.vanOppen, M. J. H., Oliver, J. K., Putnam, H. M., & Gates, R. D. (2015). Building coral reef resilience through assisted evolution. Proceedings of the National Academy of Sciences, 112, 2307–2313.Pearce, A., Lenanton, R., Jackson, G., Moore, J., Feng, M., & Gaughan, D. (2011). The “marine heat wave” off Western Australia during the summer of 2010/11. Fisheries Research Report. Western Australia: Government of Western Australia, Department of Fisheries.Pearson, G. A., & Serrão, E. A. (2006). Revisiting synchronous gamete release by fucoid algae in the intertidal zone: Fertilization success and beyond?Integrative and Comparative Biology, 46, 587–597.Perkol-Finkel, S., & Airoldi, L. (2010). Loss and recovery potential of marine habitats: An experimental study of factors maintaining resilience in subtidal algal forests at the Adriatic Sea. PLoS ONE, 5, e10791.Peters, T. A. (2015). Patterns, mechanisms and consequences of disease in a habitat forming macroalga. PhD, University of New South Wales.Phillips, J. A. (2001). Marine macroalgal biodiversity hotspots: Why is there high species richness and endemism in southern Australian marine benthic flora?Biodiversity & Conservation, 10, 1555–1577.Phillips, J. A., & Blackshaw, J. K. (2011). Extirpation of macroalgae (Sargassum spp.) on the subtropical east Australian coast. Conservation Biology, 25, 913–921.Phillips, J. C., Kendrick, G. A., & Lavery, P. S. (1997). A test of a functional group approach to detecting shifts in macroalgal communities along a disturbance gradient. Marine Ecology Progress Series, 153, 125–138.Poore, A. G. B., Graba-Landry, A., Favret, M., Brennand, H. S., Byrne, M., & Dworjanyn, S. A. (2013). Direct and indirect effects of ocean acidification and warming on a marine plant-herbivore interaction. Oecologia, 173, 1113–1124.Poore, A. G. B., & Hill, N. A. (2005). Spatial associations among palatable and unpalatable macroalgae: A test of associational resistance with a herbivorous amphipod. Journal of Experimental Marine Biology and Ecology, 326, 207–216.Poore, A. G. B., & Steinberg, P. D. (1999). Preference-performance relationships and effects of host plant choice in an herbivorous marine amphipod. Ecological Monographs, 69, 443–464.Reusch, T. B. H., Ehlers, A., Hämmerli, A., & Worm, B. (2005). Ecosystem recovery after climatic extremes enhanced by genotypic diversity. Proceedings of the National Academy of Sciences of the United States of America, 102, 2826–2831.Scanes, P. R., & Phillip, N. (1995). Environmental impact of deepwater discharge of sewage off Sydney, NSW, Australia. Marine Pollution Bulletin, 31, 343–346.Schiel, D. R. (1988). Algal interactions on shallow subtidal reefs in northern New Zealand: A review. New Zealand Journal of Marine and Freshwater Research, 22, 481–489.Shepherd, S. A., & Edgar, G. J. (2013). Large Brown Algae: The Fucoids. In S. A.Shepherd & G. J.Edgar (Eds.), Ecology of Australian temperate reefs (pp. 91–110).Shepherd, S. A., & Womersley, H. B. S. (1971). Pearson Island expedition 1969.-7. The subtidal ecology of benthic algae. Transactions. Royal Society of South Australia, 93, 155–167.Smale, D. A., Kendrick, G. A., Waddington, K. I., vanNiel, K. P., Meeuwig, J. J., & Harvey, E. S. (2010). Benthic assemblage composition on subtidal reefs along a latitudinal gradient in Western Australia. Estuarine Coastal and Shelf Science, 86, 83–92.Smale, D. A., & Wernberg, T. (2013). Extreme climatic event drives range contraction of a habitat-forming species. Proceedings of the Royal Society B-Biological Sciences, 280, 20122829.Steinberg, P. D., Edyvane, K., de Nys, R., Birdsey, R., & van Altena, I. A. (1991). Lack of avoidance of phenolic-rich brown algae by tropical herbivorous fish. Marine Biology, 109, 335–343.Steneck, R. S., Graham, M. H., Bourque, B. J., Corbett, D., Erlandson, J. M., Estes, J. A., & Tegner, M. J. (2002). Kelp forest ecosystems: Biodiversity, stability, resilience and future. Environmental Conservation, 29, 436–459.Steneck, R. S., & Johnson, C. R. (2013). Kelp forests: Dynamic patterns, processes, and feedbacks. In M. D.Bertness, J. F.Bruno, B. R.Silliman & J. J.Stachowicz (Ed.), Marine community ecology (pp. 315–336). Sunderland, MA: Sinauer Associates.Tanaka, K., Taino, S., Haraguchi, H., Prendergast, G., & Hiraoka, M. (2012). Warming off southwestern Japan linked to distributional shifts of subtidal canopy-forming seaweeds. Ecology and Evolution, 2, 2854–2865.Thibault, T., Pinedo, S., Torras, X., & Ballesteros, E. (2005). Long-term decline of the populations of Fucales (Cystoseira spp. and Sargassum spp.) in the Albères coast (France, North-western Mediterranean). Marine Pollution Bulletin, 50, 1472–1489.Thomsen, M. S., Wernberg, T., Staehr, P. A., & Pedersen, M. F. (2006). Spatio-temporal distribution patterns of the invasive macroalga Sargassum muticum within a Danish Sargassum-bed. Helgoland Marine Research, 60, 50–58.Thomson, D. P., Babcock, R. C., Vanderklift, M. A., Symonds, G., & Gunson, J. R. (2012). Evidence for persistent patch structure on temperate reefs and multiple hypotheses for their creation and maintenance. Estuarine Coastal and Shelf Science, 96, 105–113.Turner, D. J., & Cheshire, A. C. (2003). Encounter 2002 expedition to the Isles of St Francis, South Australia: Structure and productivity of benthic macroalgal communities. Transactions of the Royal Society of South Australia, 127, 153–166.Tuya, F., Wernberg, T., & Thomsen, M. S. (2008). The spatial arrangement of reefs alters the ecological patterns of fauna between interspersed algal habitats. Estuarine Coastal and Shelf Science, 78, 774–782.Tuya, F., Wernberg, T., & Thomsen, M. S. (2009). Habitat structure affect abundances of labrid fishes across temperate reefs in south-western Australia. Environmental Biology of Fishes, 86, 311–319.Valentine, J. P., & Johnson, C. R. (2004). Establishment of the introduced kelp Undaria pinnatifida following dieback of the native macroalga Phyllospora comosa in Tasmania, Australia. Marine and Freshwater Research, 55, 223–230.Vanderklift, M. A., & Wernberg, T. (2008). Detached kelps from distant sources are a food subsidy for sea urchins. Oecologia, 157, 327–335.Verges, A., Steinberg, P. D., Hay, M. E., Poore, A. G. B., Campbell, A. H., Ballesteros, E., … Wilson, S. K. (2014). The tropicalization of temperate marine ecosystems: Climate-mediated changes in herbivory and community phase shifts. Proceedings of the Royal Society B-Biological Sciences, 281, 20140846.Vergés, A., Tomas, F., Cebrian, E., Ballesteros, E., Kizilkaya, Z., Dendrinos, P., … Sala, E. (2014). Tropical rabbitfish and the deforestation of a warming temperate sea. Journal of Ecology, 102, 1518–1527.Vogt, H., & Schramm, W. (1991). Conspicuous decline of Fucus in Kiel Bay (Western Baltic): What are the causes?Marine Ecology Progress Series, 69, 189–194.Weigner, K.2016. Facilitating modern genetic analysis of the habitat forming macroalga, Phyllospora comosa. BSc (Honours), Southern Cross University.Wernberg, T., Bennett, S., Babcock, R. C., deBettignies, T., Cure, K., Depczynski, M., … Wilson, S. (2016). Climate-driven regime shift of a temperate marine ecosystem. Science, 353, 169–172.Wernberg, T., Coleman, M., Fairhead, A., Miller, S., & Thomsen, M. (2003). Morphology of Ecklonia radiata (Phaeophyta: Laminarales) along its geographic distribution in south-western Australia and Australasia. Marine Biology, 143, 47–55.Wernberg, T., & Connell, S. D. (2008). Physical disturbance and subtidal habitat structure on open rocky coasts: Effects of wave exposure, extent and intensity. Journal of Sea Research, 59, 237–248.Wernberg, T., deBettignies, T., Bijo, A. J., & Finnegan, P. (2016). Physiological responses of habitat-forming seaweeds to increasing temperatures. Limnology and Oceanography, 61, 2180–2190.Wernberg, T., Kendrick, G. A., & Phillips, J. C. (2003). Regional differences in kelp-associated algal assemblages on temperate limestone reefs in south-western Australia. Diversity and Distributions, 9, 427–441.Wernberg, T., Kendrick, G. A., & Toohey, B. D. (2005). Modification of the physical environment by an Ecklonia radiata (Laminariales) canopy and implications for associated foliose algae. Aquatic Ecology, 39, 419–430.Wernberg, T., Russell, B. D., Moore, P. J., Ling, S. D., Smale, D. A., Campbell, A., … Connell, S. D. (2011). Impacts of climate change in a global hotspot for temperate marine biodiversity and ocean warming. Journal of Experimental Marine Biology and Ecology, 400, 7–16.Wernberg, T., Smale, D. A., Tuya, F., Thomsen, M. S., Langlois, T. J., deBettignies, T., … Rousseaux, C. S. (2013). An extreme climatic event alters marine ecosystem structure in a global biodiversity hotspot. Nature Climate Change, 3, 78–82.Wernberg, T., Thomsen, M. S., Staehr, P. A., & Pedersen, M. F. (2004). Epibiota communities of the introduced and indigenous macroalgal relatives Sargassum muticum and Halidrys siliquosa in Limfjorden (Denmark). Helgoland Marine Research, 58, 154–161.Wernberg, T., Thomsen, M. S., Tuya, F., & Kendrick, G. A. (2011). Biogenic habitat structure of seaweeds change along a latitudinal gradient in ocean temperature. Journal of Experimental Marine Biology and Ecology, 400, 264–271.Wikström, S. A., & Kautsky, L. (2007). Structure and diversity of invertebrate communities in the presence and absence of canopy-forming Fucus vesiculosus in the Baltic Sea. Estuarine, Coastal and Shelf Science, 72, 168–176.Womersley, H. B. S. (1987). The marine benthic flora of Southern Australia. Part II. Adelaide, SA, Australia: Government Printer.Xiao, X., De Bettignies, T., Olsen, Y. S., Agusti, S., Duarte, C. M., & Wernberg, T. (2015). Sensitivity and acclimation of three canopy-forming seaweeds to UVB radiation and warming. PLoS ONE, 10, e0143031.Zhang, D., Glasby, T. M., Ralph, P. J., & Gribben, P. E. (2014). Mechanisms influencing the spread of a native marine alga. PLoS ONE, 9(4), e94647.
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Kelp forests dominated by species of Laminariales are globally recognized as key habitats on subtidal temperate rocky reefs. Forests characterized by fucalean seaweed, in contrast, receive relatively less attention despite being abundant, ubiquitous, and ecologically important. Here, we review information on subtidal fucalean taxa of Australia's Great Southern Reef, with a focus on the three most abundant and widely distributed genera (Phyllospora, Scytothalia, and Sargassum) to reveal the functionally unique role of fucoids in temperate reef ecology. Fucalean species span the entire temperate coastline of Australia (~71,000 km2) and play an important role in supporting subtidal temperate biodiversity and economic values on rocky reefs as well as in adjacent habitats. Climatic and anthropogenic stressors have precipitated significant range retractions and declines in many fucoids, with critical implications for associated assemblages. Such losses are persistent and unlikely to be reversed naturally due to the life history of these species and colonization of competitors and grazers following loss. Active restoration is proving successful in bringing back some fucoid species (Phyllospora comosa) lost from urban shores and will complement other passive and active forms of conservation. Fucalean forests play a unique role on subtidal temperate reefs globally, especially in Australia, but are comparatively understudied. Addressing this knowledge gap will be critical for understanding, predicting, and mitigating extant and future loss of these underwater forests and the valuable ecosystem services they support.
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Details
Title
Forgotten underwater forests: The key role of fucoids on Australian temperate reefs
Author
Coleman, Melinda A 1
; Wernberg, Thomas 2
1 NSW Fisheries, Coffs Harbour, NSW, Australia; National Marine Science Centre, Southern Cross University, Coffs Harbour, NSW, Australia
2 UWA Oceans Institute and School of Biological Sciences, University of Western Australia, Crawley, WA, Australia