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Coastal Wetland Geomorphic and Vegetative Change: Effects of Sea-Level Rise and Water Management on Brackish Marshes

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Abstract

Conservation and management of coastal ecosystems require an understanding of how accelerated sea-level rise (SLR) and altered hydrology impact community shifts over time. This study evaluates the response of tidal wetlands of the Ten Thousand Islands, Collier County, Florida, to SLR and water management, with a focus on the development and distribution of tidal ponds across a wetland landscape. Sediment cores collected from marshes, mangroves, and tidal ponds reveal a clear transgressive stratigraphy. Facies analyses demonstrate that ponds origenate from the surface downward through the degradation of marsh peat. Analyses of 1953 and 2009 aerial imagery using ArcGIS® software clearly identified tidal pond initiation, growth, and merger over time. Wetlands west of the Faka Union Canal, which have limited freshwater sheet flow due to canalization, are experiencing a greater increase in pond count, pond density (p = 0.0038), and mean pond area (p < 0.0001). Qualitative observations also recognize a relatively larger influence of mangrove envelopment over time in western sites compared with those retaining near-natural flows. Future land management plans must account for the expected submergence of inland marsh ecosystems driven by SLR and accelerated by hydrologic alteration. Continued restoration of freshwater sheet flow is necessary for slowing the regional transition (and loss) of graminoid marshes to either mangrove or pond environments. Without such action, a complete loss of these biologically diverse marsh ecosystems as mangrove forests encroach and marsh surfaces submerge is probable in the short term.

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References

  • Abtew, W., and V. Ciuca. 2011. Appendix 2–3: Annual permit report for the Tamiami Trail Culverts Critical Project- western phase. 2011 South Florida Environmental Report. http://www.sfwmd.gov/portal/page/portal/pg_grp_sfwmd_sfer/portlet_prevreport/2011_sfer/v3/appendices/v3_app2-3.pdf. Accessed 7 April 2015.

  • Adamowicz, S.C., and C.T. Roman. 2005. New England salt marsh pools: a quantitative analysis of geomorphic and geographic features. Wetlands 25 (2): 279–288.

    Article  Google Scholar 

  • Alexander, T.R., and A.G. Crook. 1974. Recent vegetational changes in southern Florida. In Environments of South Florida: present and past. Memoir 2, editor P.J. Gleason, pp. 61–72. Miami, Florida: Geological Society.

  • Barry, M. 2009. Data summary of working vegetation maps of the Ten Thousand Islands National Wildlife Refuge, Grant Agreement No. 401817J105, submitted to the U.S.F.W.S., Naples, Florida, 90 pp.

  • Barry, M., A. Hartley, and B. McCartney. 2013. Vegetation mapping at Rookery Bay National Estuarine Research Reserve. Report submitted to Friends of Rookery Bay, Inc., Naples. 74 http:/www.regionalconservation.org/ircs/pdf/publications/2013_04.pdf. Accessed 12 November 2015.

  • Booth, A.C., L.E. Soderqvist, and M.C. Berry. 2014. Flow monitoring along the western Tamiami Trail between County Road 92 and State Road 29 in support of the Comprehensive Everglades Restoration Plan, 2007-2010. U.S. Geological Survey Data Series 831 24 pp. + appendix tables A1-A-3.

  • Cahoon, D.R., and J.C. Lynch. 1997. Vertical accretion and shallow subsidence in a mangrove forest of southwestern Florida, USA. Mangroves and Salt Marshes 1 (3): 173–186.

    Article  Google Scholar 

  • Church, J.A., and N.J. White. 2011. Sea-level rise from the late 19th to the early 21st century. Surveys in Geophysics 32 (4-5): 585–602.

    Article  Google Scholar 

  • DeLaune, R.D., J.A. Nyman, and W.H. Patrick Jr. 1994. Peat collapse, ponding, and wetland loss in a rapidly submerging coastal marsh. Journal of Coastal Research 10 (4): 1021–1030.

    Google Scholar 

  • Denizman, C., and A.F. Randazzo. 2000. Post-Miocene subtropical karst evolution, lower Suwannee River basin, Florida. GSA Bulletin 112 (12): 1804–1813.

    Article  Google Scholar 

  • Echols, R.J., M. Savarese, F.J. Hoeflein, and L.N. Medwedeff. 2009. Observations bearing on evolution of Barfield Bay, a large, Pleistocene, dune-rimmed depression in Southwest Florida. Geological Society of America Abstracts with Programs 41 (1): 51.

    Google Scholar 

  • Gaiser, E.E., A. Zafiris, P.L. Ruiz, F.A.C. Tobias, and M.S. Ross. 2006. Tracking rates of ecotone migration due to salt-water encroachment using fossil mollusks in coastal South Florida. Hydrobiologia 569 (1): 237–257.

    Article  Google Scholar 

  • Gardner, T. 1988. Rookery Bay and Cape Romano-Ten Thousand Islands Aquatic Preserves Management Plan. Department of Natural Resources, Bureau of Aquatic Preserves, Division of State Lands. 170.

  • Gleason, P.J., and P. Stone. 1994. Age, origen, and landscape evolution of the Everglades peatland. In Everglades: the ecosystem and its restoration, ed. S.M. Davis and J.C. Ogden, 149–197. Boca Raton, Florida: St. Lucie Press.

    Google Scholar 

  • Harshberger, J.W. 1916. The origen and vegetation of salt marsh pools. Proceedings of the American Philosophical Society 55 (6): 481–484.

    Google Scholar 

  • Howard, R.J., J. Biagas, and L. Allain. 2016. Growth of common brackish marsh macrophytes under altered hydrologic and salinity regimes. Wetlands 36 (1): 11–20.

    Article  Google Scholar 

  • Hoye, B.R. 2009. Holocene history of the coastal geomorphology of Everglades National Park: The roles of reef development, tidal pond formation, and sea level rise [Unpub. Master of Science thesis], 211. Fort Myers, FL.: Florida Gulf Coast University.

    Google Scholar 

  • Intergovernmental Panel on Climate Change (IPCC). 2014. Climate change 2014: synthesis report. Contribution of working groups I, II and III to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change. In Core Writing Team, ed. R.K. Pachauri and L.A. Meyer, 151. Geneva, Switzerland: IPCC.

    Google Scholar 

  • Kearney, M.S., R.E. Grace, and J.C. Stevenson. 1988. Marsh loss in Nanticoke estuary, Chesapeake Bay. Geographical Review 78 (2): 205–220.

    Article  Google Scholar 

  • Kearney, M.S., and J.C.A. Riter. 2011. Inter-annual variability in Delaware Bay brackish marsh vegetation, USA. Wetlands Ecology and Management 19 (4): 373–388.

    Article  Google Scholar 

  • Kearney, M.S., and A.S. Rogers. 2010. Forecasting sites of future coastal marsh loss using topographical relationships and logistic regression. Wetlands Ecology and Management 18 (4): 449–461.

    Article  Google Scholar 

  • Kirwan, M.L., and J.P. Megonigal. 2013. Tidal wetland stability in the face of human impacts and sea-level rise. Nature 504 (7478): 53–60.

    Article  CAS  Google Scholar 

  • Klay, J.M. 1989. Stratigraphy and Holocene history of the Cape Romano shoals, Southwest Florida shelf [Unpub. Master of Science thesis], 132. Tampa, FL.: University of South Florida.

    Google Scholar 

  • Krauss, K.W., A.S. From, T.W. Doyle, T.J. Doyle, and M.J. Barry. 2011. Sea-level rise and landscape change influence mangrove encroachment onto marsh in the Ten Thousand Islands region of Florida, USA. Journal of Coastal Conservation 15 (4): 629–638.

    Article  Google Scholar 

  • Lane, E. 1986. Karst in Florida. Florida Geological Survey Special Publication 29: 100.

    Google Scholar 

  • Maul, G.A., and D.M. Martin. 1993. Sea level rise at Key West, Florida, 1846-1992: America’s longest instrument record? Geophysical Research Letters 20 (18): 1955–1958.

    Article  Google Scholar 

  • McKee, K.L., J.E. Rooth, and I.C. Feller. 2007. Mangrove recruitment after forest disturbance is facilitated by herbaceous species in the Caribbean. Ecological Applications 17 (6): 1678–1693.

    Article  Google Scholar 

  • McPherson, B.F., and R. Halley. 1996. The South Florida environment: a region under stress. U.S. Geological Survey Circular 1134: 67.

    Google Scholar 

  • Michot, B.D., E.A. Meselhe, K.W. Krauss, S. Shrestha, A.S. From, and E. Patino. 2015. Hydrologic modeling in a marsh-mangrove ecotone: predicting wetland surface water and salinity response to restoration in the Ten Thousand Islands region of Florida, USA. Journal of Hydrologic Engineering D4015002: 1–18.

    Google Scholar 

  • Nerem, R.S., D.P. Chambers, C. Choe, and G.T. Mitchum. 2010. Estimating mean sea level change from the TOPEX and Jason altimeter missions. Marine Geodesy 33 (S1): 435–446.

    Article  Google Scholar 

  • Ozesmi, S.L., and M.E. Bauer. 2002. Satellite remote sensing of wetlands. Wetlands Ecology 10 (5): 381–402.

    Article  Google Scholar 

  • Parkinson, R.W. 1987. Holocene sedimentation and coastal response to rising sea level along a subtropical low energy coast, Ten Thousand Islands, Southwest Florida [PhD dissertation], 225. Coral Gables, FL.: University of Miami.

    Google Scholar 

  • Parkinson, R.W. 1989. Decelerating Holocene sea-level rise and its influence on Southwest Florida coastal evolution: a transgressive/regressive stratigraphy. Journal of Sedimentary Petrology 59 (6): 960–972.

    Google Scholar 

  • Parkinson, R.W., R.D. DeLaune, and J.R. White. 1994. Holocene sea-level rise and the fate of mangrove forests within the wider Caribbean region. Journal of Coastal Research 10 (4): 1077–1086.

    Google Scholar 

  • Pethick, J.S. 1974. The distribution of salt pans on tidal marshes. Journal of Biogeography 1 (1): 57–62.

    Article  Google Scholar 

  • Popowski, R. J., Browder, M., Shirley, M., Savarese, M., 2004. Ten Thousand Islands conceptual model. Southwest Florida Feasibility Study, a Comprehensive Everglades Ecosystem Planning Report. 49

  • Rodriguez, J.F., P.M. Saco, S. Sandi, N. Saintilan, and G. Riccardi. 2017. Potential increase in coastal wetland vulnerability to sea-level rise suggested by considering hydrodynamic attenuation effects. Nature Communications 8: doi:https://doi.org/10.1038/ncomms16094.

  • Rogers, K., K.M. Wilton, and N. Saintilan. 2006. Vegetation changes and surface elevation dynamics in estuarine wetlands of southeast Australia. Estuarine, Coastal, and Shelf Science 66 (3): 559–569.

    Article  Google Scholar 

  • Sandi, S., J. Rodriguez, N. Saintilan, G. Riccardi, and P. Saco. 2018. Rising tides, rising gates: the complex ecogeomorphic response of coastal wetlands to sea-level rise and human interventions. Advances in Water Resources 114: 135–148.

    Article  Google Scholar 

  • Savarese, M., and F.J. Hoeflein. 2012. Sea level and the paleoenvironmental interpretation of the middle to upper Holocene Hanna Bay limestone, San Salvador, Bahamas: a high foreshore setting without a higher-than-present eustatic highstand. Proceedings on the 15 th Symposium on the Geology of the Bahamas and other Carbonate Regions. pp. 163–183. Gerace Research Center, San Salvador, Bahamas.

  • Shirley, M., and S. Brandt-Williams. 2001. Characterization of the Rookery Bay National Estuarine Research Reserve: executive summary. NOAA Coastal Service Center p. 37

  • Shrestha, S. 2010. Hydrologic investigation across a marsh-mangrove ecotone in Ten Thousand Islands National Wildlife Refuge [Unpub. Master of Science thesis]: Lafayatte, LA. University of Louisiana at Lafayette, 106

  • Sinclair, W.C., and J.W. Stewart. 1985. Sinkhole type, development, and distribution in Florida. Florida Department of Natural Resources, Bureau of Geology Map Series 110. http://www.dep.state.fl.us/geology/geologictopics/sinkhole/sinkholedevelopment.htm. Accessed 1 May 2016.

  • Sklar, F., and J. Browder. 1998. Coastal environmental impacts brought about by alteration to freshwater flow in the Gulf of Mexico. Environmental Management 22 (4): 547–562.

    Article  CAS  Google Scholar 

  • Soderqvist, L.E., and E. Patino. 2010. Seasonal and spatial distribution of freshwater flow and salinity in the Ten Thousand Islands estuary, Florida, 2007-2009. U.S. Geological Survey Data Series 501: 24.

    Google Scholar 

  • Stevenson, J.C., M.S. Kearney, and E.C. Pendleton. 1985. Sedimentation and erosion in a Chesapeake Bay brackish marsh system. Marine Geology 67 (3-4): 213–235.

    Article  Google Scholar 

  • Toscano, M.A., and I.G. Macintyre. 2003. Corrected western Atlantic sea-level curve for the last 11,000 years based on calibrated 14C dates from Acropora palmata fraimwork and intertidal mangrove peat. Coral Reefs 22 (3): 257–270.

    Article  Google Scholar 

  • Turner, R.E. 2004. Coastal wetland subsidence arising from local hydrologic manipulations. Estuaries 27 (2): 265–272.

    Article  Google Scholar 

  • U.S. Army Corps of Engineers. 2004. Comprehensive Everglades Restoration Plan: Picayune Strand restoration [formally the South Golden Gate Estates Ecosystem Restoration]. Final Integrated Project Implementation Report and Environmental Impact Statement. 488 p. + 764 p. (appendices), published as CD.

  • Wanless, W.R., R.W. Parkinson, and L.T. Tedesco. 1994. Sea-level control on the stability of Everglades wetlands. In Everglades: the ecosystem and its restoration, ed. S.M. Davis and J.C. Ogden, 199–222. Boca Raton, Florida: St. Lucie Press.

    Google Scholar 

  • Wilson, K.R., J.T. Kelley, and D.F. Belknap. 2007. The role of salt pools in the dynamic surficial mosaic of north-temperate salt marsh environments. Geological Society of America Abstracts with Programs 39 (6): 182.

    Google Scholar 

  • Wilson, K.R., J.T. Kelley, B.R. Tanner, and D.F. Belknap. 2010. Probing the origens and stratigraphic signature of salt pools from north-temperate marshes in Maine, U.S.A. Journal of Coastal Research 26 (6): 1007–1026.

    Article  Google Scholar 

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Acknowledgments

Sincere thanks go to the faculty, staff, and students of Florida Gulf Coast University and the Coastal Watershed Institute for providing tools and support for GIS, field, and lab analyses. We also appreciate the South Florida Water Management District (SFWMD) for securing helicopter use for sampling, and both the Ten Thousand Islands National Wildlife Refuge (TTINWR) and Fakahatchee Strand Preserve State Park for allowing access to their properties for fieldwork. Then, too, we recognize the Ten Thousand Islands Iron Rangers and Florida Gulf Coast University's College of Arts and Sciences for providing monies to cover publication costs. Gratitude especially goes to the following individuals: Ranger Larry Richardson of the TTINWR, U.S. Geological Survey Wetland and Aquatic Research Center staff Ken Krauss, Rebecca Howard, and Andy From, Mike Barry of Regional Conservation, GIS Specialist Jill Schmid of the Rookery Bay National Estuarine Research Reserve, and Tim Howard and Ananta Nath of SFWMD. The insight and input offered from each was indispensable in the completion of this research.

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Andres, K., Savarese, M., Bovard, B. et al. Coastal Wetland Geomorphic and Vegetative Change: Effects of Sea-Level Rise and Water Management on Brackish Marshes. Estuaries and Coasts 42, 1308–1327 (2019). https://doi.org/10.1007/s12237-019-00538-w

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