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PLOS ONE  2014 

Herbivory Drives the Spread of Salt Marsh Die-Off

DOI: 10.1371/journal.pone.0092916

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Abstract:

Salt marsh die-off is a Western Atlantic conservation problem that has recently spread into Narragansett Bay, Rhode Island, USA. It has been hypothesized to be driven by: 1) eutrophication decreasing plant investment into belowground biomass causing plant collapse, 2) boat wakes eroding creek banks, 3) pollution or disease affecting plant health, 4) substrate hardness controlling herbivorous crab distributions and 5) trophic dysfunction releasing herbivorous crabs from predator control. To distinguish between these hypotheses we quantified these variables at 14 Narragansett Bay salt marshes where die-off intensity ranged from <5% to nearly 98%. Nitrogen availability, wave intensity and plant growth did not explain any variation in die-off. Herbivory explained 73% of inter-site variation in die-off and predator control of herbivores and substrate hardness also varied significantly with die-off. This suggests that salt marsh die-off is being largely driven by intense herbivory via the release of herbivorous crabs from predator control. Our results and those from other marsh systems suggest that consumer control may not simply be a factor to consider in marsh conservation, but with widespread predator depletion impacting near shore habitats globally, trophic dysfunction and runaway consumption may be the largest and most urgent management challenge for salt marsh conservation.

References

[1]  Bertness MD, Silliman BR (2008) Consumer control of salt marshes driven by human disturbance. Conserv Biol 22: 618–623. doi: 10.1111/j.1523-1739.2008.00962.x
[2]  Barbier EB, Hacker SD, Kennedy C, Koch EW, Stier AC, et al. (2011) The value of estuarine and coastal ecosystem services. Ecol Monogr 81: 169–193. doi: 10.1890/10-1510.1
[3]  Jefferies RL, Jano AP, Abraham KF (2006) A biotic agent promotes large-scale catastrophic change in the coastal marshes of Hudson Bay. J Eco 94: 234–242. doi: 10.1111/j.1365-2745.2005.01086.x
[4]  Silliman BR, van de Koppel J, Bertness MD, Stanton LE, Mendelssohn IA (2005) Drought, snails, and large-scale die-off of southern US salt marshes. Science 310: 1803–1806. doi: 10.1126/science.1118229
[5]  Holdredge C, Bertness MD, Altieri AH (2009) Role of crab herbivory in die-off of New England salt marshes. Conserv Biol 23: 672–679. doi: 10.1111/j.1523-1739.2008.01137.x
[6]  Altieri AH, Bertness MD, Coverdale TC, Herrmann NC, Holdredge C (2012) A trophic cascade triggers collapse of a salt marsh ecosystem with intensive recreational fishing. Ecology 93: 1402–1410. doi: 10.1890/11-1314.1
[7]  Coverdale TC, Herrmann NC, Altieri AH, Bertness MD (2013) Latent impacts: the role of historical human activity in coastal habitat loss. Front Ecol Environ 11: 69–74. doi: 10.1890/120130
[8]  Odum EP (1971) Fundamentals of Ecology (Saunders, Philadelphia).
[9]  Mendelssohn IA, Morris JT (2000) Eco-physiological constraints on the primary productivity of Spartina alterniflora. Concepts and Controversies of Tidal Marsh Ecology (Kluwer Academic Publishers, Dordrecht, The Netherlands), pp 59–80.
[10]  Deegan LA, Johnson DS, Warren RS, Peterson BJ, Fleeger JW, et al. (2012) Coastal eutrophication as a driver of salt marsh loss. Nature 490: 388–392. doi: 10.1038/nature11533
[11]  Ogburn MB, Alber M (2006) An investigation of salt marsh dieback in Georgia using field transplants. Estuar Coast 29: 54–62.
[12]  Kiehn WM, Morris JT (2009) Relationships between Spartina alterniflora and Littoraria irrorata in a South Carolina salt marsh. Wetlands 29: 818–825. doi: 10.1672/08-178.1
[13]  Alber M, Swenson EM, Adamowicz SC, Mendelssohn IA (2008) Salt marsh dieback: An overview of recent events in the US. Est Coast Shelf Sci 80: 1–11. doi: 10.1016/j.ecss.2008.08.009
[14]  Elmer WH, Useman S, Schneider RW, Marra RE, LaMondia JA, et al. (2013) Sudden Vegetation Dieback in Atlantic and Gulf Coast Salt Marshes. Plant Dis 97: 436–445. doi: 10.1094/pdis-09-12-0871-fe
[15]  Smith JP, Carullo M (2007) Survey of Potential Marsh Dieback Sites in Coastal Massachusetts (Massachusetts Office of Coastal Zone Management Special report).
[16]  Bertness MD, Holdredge C, Altieri AH (2009) Substrate mediates consumer control of salt marsh cordgrass on Cape Cod, New England. Ecology 90: 2108–2117. doi: 10.1890/08-1396.1
[17]  Bertness MD, Crain CM, Holdredge C, Sala N (2008) Eutrophication and Consumer Control of New England Salt Marsh Primary Productivity. Conserv Biol 22: 131–139. doi: 10.1111/j.1523-1739.2007.00801.x
[18]  Bertness MD, Ewanchuk PJ, Silliman BR (2002) Anthropogenic modification of New England salt marsh landscapes. Proc Natl Acad Sci USA 99: 1395–1398. doi: 10.1073/pnas.022447299
[19]  Yund P, Gaines SD, Bertness MD (1991) Cylindrical tube traps for larval sampling. Limnol Oceanogr 36: 1167–1177. doi: 10.4319/lo.1991.36.6.1167
[20]  Bertness MD (1988) Peat accumulation and the success of marsh plants. Ecology 69: 703–713. doi: 10.2307/1941018
[21]  Hines AH (1982) Allometric constraints and variables of reproductive effort in Brachyuran crabs. Mar Biol 69: 309–320. doi: 10.1007/bf00397496
[22]  Olmi EJ, Bishop JM (1983) Variations in total width–weight relationships of blue crabs, Callinectes sapidus, in relation to sex, maturity, molt stage, and carapace form. J Crustac Biol 3: 575–581. doi: 10.2307/1547952
[23]  Wigley SE, McBride HM, McHugh NJ (2003) Length-weight relationships for 74 fish species collected during NEFSC research vessel bottom trawl surveys, 1992–99. NOAA Technical Memorandum NMFS-NE-171 (National Marine Fisheries Service, NOAA, Woods Hole, Massachusetts, USA).
[24]  Anisfeld SC, Hill TD (2012) Fertilization effects on elevation change and belowground carbon balance in a Long Island Sound tidal marsh. Estuar Coast 35: 201–211. doi: 10.1007/s12237-011-9440-4
[25]  Valiela I (1995) Marine Ecological Processes, 2nd Ed. Springer, Verlag. pp 686.
[26]  Alberti J, Escapa M, Iribarne O, Silliman BR, Bertness MD (2008) Crab herbivory regulates plant facilitative and competitive processes in Argentinean marshes. Ecology 89: 155–164. doi: 10.1890/07-0045.1
[27]  Jackson JBC, Kirby MX, Berger WH, Bjorndal KA, Botsford LW, et al. (2001) Historical overfishing and the recent collapse of coastal ecosystems. Science 293: 629–637. doi: 10.1126/science.1059199
[28]  Estes JA, Palmisano JF (1974) Sea otters: Their role in structuring nearshore communities. Science 185: 1058–1060. doi: 10.1126/science.185.4156.1058
[29]  Hughes TP (1994) Catastrophes, phase shifts, and large-scale degradation of a Caribbean coral reef. Science 265: 1547–1551. doi: 10.1126/science.265.5178.1547
[30]  Lotze HK, Lenihan HS, Bourque BJ, Bradbury RH, Cooke RG, et al. (2006) Depletion, degradation, and recovery potential of estuaries and coastal seas. Science 312: 1806–1809. doi: 10.1126/science.1128035
[31]  Worm BR, Hilborn R, Baum JK, Branch TA, Collie JS, et al. (2009) Rebuilding Global Fisheries. Science 325: 378–585. doi: 10.1126/science.1173146

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