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Patterns of Mangrove Wood and Litter Production Within a Beach Ridge-Fringing Reef Embayment, Northern Great Barrier Reef Coast

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Abstract

Mortality, litter fall, and patterns of stem growth were examined in Rhizophora- and Ceriops-dominated forests located upstream and downstream in four tidally dominated creeks within a beach reef embayment on the northern Great Barrier Reef coast. Although patterns of stem densities, basal area, and diameter-at-breast height (DBH) between upstream–downstream sites and creeks were inconsistent, aboveground biomass, wood production, litter fall, and aboveground net primary productivity (ANPP) were greater in the Rhizophora-dominated forests. Incremental growth of stems (SI, cm year−1) was slow compared to other mangroves, declining among species as follows: Rhizophora stylosa (mean = 0.080) > Bruguiera exaristata (0.066) = Xylocarpus australasicus (0.064) = Ceriops australis (0.056); SI was greater upstream than downstream, possibly due to nutrient inputs from upland sugarcane cultivation. The DBH of dead trees were less than the DBH of live trees, suggesting natural mortality, which was greatest for X. australasicus (annual rate = 3.27%), followed by B. exaristata (0.84%), C. australis (0.48%), and R. stylosa (0.33%). Rates of litter fall were seasonal and equivalent to those measured in other mangroves, but rates of ANPP were, on average, low in most plots. Salinity was likely the main factor limiting growth as correlations of salinity with tree growth and production were negative. Nutrients may have also played a key regulatory role, with positive correlations between mangrove production and N and P content of soils and leaves and the comparatively low nutrient content of these sandy soils. The low ratio of wood to litter production suggests that these forests are in a mature stage of development.

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References

  • Allen, J.A., K.W. Krauss, and R.D. Hauff. 2003. Factors limiting the intertidal distribution of the mangrove species Xylocarpus grantum. Oecologia 135: 110–121.

    Google Scholar 

  • Alongi, D.M. 2009. The energetics of mangrove forests. Dordrecht: Springer.

    Google Scholar 

  • Amarasinghe, M.D., and S. Balasubramaniam. 1992. Net primary productivity of two mangrove forest stands on the northwestern coast of Sri Lanka. Hydrobiologia 247: 37–47.

    Article  Google Scholar 

  • Ball, M.C. 1988. Ecophysiology of mangroves. Trees 2: 129–142.

    Article  Google Scholar 

  • Ball, M.C. 1996. Comparative ecophysiology of tropical lowland moist rainforest and mangrove forest. In Tropical forest plant physiology, ed. S.S. Mulkey, R.L. Chazon, and A.P. Smith, 461–496. New York: Chapman and Hall.

    Google Scholar 

  • Bouillon, S., A.V. Borges, E. Castañeda-Moya, K. Diele, T. Dittmar, N.C. Duke, E. Kristensen, S.Y. Lee, C. Marchard, J.J. Middelburg, V.H. Rivera-Monroy, T.J. Smith III, and R.R. Twilley. 2008. Mangrove production and carbon sinks: A revision of global budget estimates. Global Biogeochemical Cycles 22: GB 2013. doi:10.1029/2007GB003OS2.

    Article  Google Scholar 

  • Bunt, J.S. 1982. Mangrove transect data from Northern Queensland. Coastal studies series reference AIMS-CS-81-1. Townsville: Australian Institute of Marine Science.

    Google Scholar 

  • Bunt, J.S. 1995. Continental scale patterns in mangrove litter fall. Hydrobiologia 295: 135–140.

    Article  Google Scholar 

  • Bunt, J.S., and W.T. Williams. 1981. Vegetational relationships in the mangroves of tropical Australia. Marine Ecology Progress Series 4: 349–359.

    Article  Google Scholar 

  • Cheeseman, J.M., L.B. Herendeen, A.T. Cheeseman, and B.F. Clough. 1997. Photosynthesis and photoprotection in mangroves under field conditions. Plant, Cell and Environment 20: 579–588.

    Article  CAS  Google Scholar 

  • Christensen, B. 1978. Biomass and primary production of Rhizophora apiculata Bl in a mangrove in southern Thailand. Aquatic Botany 4: 43–52.

    Article  Google Scholar 

  • Clark, D.A., S. Brown, D.W. Kicklighter, J.Q. Chambers, J.R. Thomlinson, and J. Ni. 2001. Measuring net primary production in forests: Concepts and field methods. Ecological Applications 11: 356–370.

    Article  Google Scholar 

  • Clough, B.F. 1992. Primary productivity and growth of mangrove forests. In Tropical mangrove ecosystems, ed. A.I. Robertson and D.M. Alongi, 225–249. Washington: American Geophysical Union.

    Google Scholar 

  • Clough, B.F. 1998. Mangrove forest productivity and biomass accumulation in Hinchinbrook Channel, Australia. Mangroves and Salt Marshes 2: 191–198.

    Article  Google Scholar 

  • Clough, B.F., and R.G. Sim. 1989. Changes in gas exchange characteristics and water-use efficiency of mangroves in response to salinity and vapour pressure deficit. Oecologia 79: 38–44.

    Article  Google Scholar 

  • Clough, B.F., and K. Scott. 1989. Allometric relationships for estimating above-ground biomass in six mangrove species. Forest Ecology and Management 27: 117–127.

    Article  Google Scholar 

  • Clough, B.F., J.E. Ong, and W.K. Gong. 1997. Estimating leaf area index and photosynthetic production in canopies of the mangrove Rhizophora apiculata. Marine Ecology Progress Series 159: 285–292.

    Article  Google Scholar 

  • Cox, E.F., and J.A. Allen. 1999. Stand structure and productivity of the introduced Rhizophora mangle in Hawaii. Estuaries 22: 276–284.

    Article  Google Scholar 

  • Day, J.W., W.H. Conner, L.F. Ley, R.H. Day, and A.M. Navarro. 1987. The productivity and composition of mangrove forests, Laguna de Terminos, Mexico. Aquatic Botany 27: 267–284.

    Article  Google Scholar 

  • Ewe, S.M.L., E.E. Gaiser, D.L. Childers, D. Iwaniec, V.H. Rivera-Monroy, and R.R. Twilley. 2006. Spatial and temporal patterns of aboveground net primary productivity (ANPP) along two freshwater–estuarine transects in the Florida Coastal Everglades. Hydrobiologia 569: 459–474.

    Article  Google Scholar 

  • Feller, I.C., D.F. Whigham, J.P. O’Neill, and K.L. McKee. 1999. Effects of nutrient enrichment on within-stand cycling in a mangrove forest. Ecology 80: 2193–2205.

    Article  Google Scholar 

  • Galloway, R.W. 1982. Distribution and physiographic patterns of Australian mangroves. In Mangrove ecosystems in Australia, ed. B. Clough, 43–74. Canberra: Australian National University Press.

    Google Scholar 

  • Golley, F.B., H.T. Odum, and R.F. Wilson. 1962. The structure and metabolism of a Puerto Rican mangrove forest in May. Ecology 43: 9–19.

    Article  CAS  Google Scholar 

  • Gong, W.K., J.E. Ong, and B.F. Clough. 1991. The light attenuation method for the measurement of potential productivity in mangrove ecosystems. In Proceedings of the ASEAN–Australia Regional Symposium on Living Resources in Coastal Areas, ed. A. Alcala, 399–406. Manila: ASEAN.

    Google Scholar 

  • Hopley, D., S.G. Smithers, and K.E. Parnell. 2007. The geomorphology of the Great Barrier Reef: Development, diversity, and change. Cambridge: Cambridge University Press.

    Book  Google Scholar 

  • Hossain, M., S. Othman, J.S. Bujang, and M. Kusnan. 2008. Net primary productivity of Bruguiera parviflora (Wight & Arn.) dominated mangrove forest at Kuala Selangor, Malaysia. Forest Ecology and Management 255: 179–182.

    Article  Google Scholar 

  • Imbert, D., and B. Rollet. 1989. Phytomasse aeienne et production primaire dans la mangrove du Grand Cul-de-Sac Marin (Guadeloupe, Antilles Françaises). Bulletin Ecologie 20: 27–39.

    Google Scholar 

  • Jiménez, J.A., A.E. Lugo, and G. Cintron. 1985. Tree mortality in mangrove forests. Biotropica 17: 177–185.

    Article  Google Scholar 

  • Kaly, U.L., G. Eugelink, and A.I. Robertson. 1997. Soil conditions in damaged North Queensland mangroves. Estuaries 20: 291–300.

    Article  CAS  Google Scholar 

  • Khan, Md N.I., R. Suwa, and A. Hagihara. 2009. Biomass and aboveground net primary production in a subtropical mangrove stand of Kandelia obovata (S.L.) Yong at Manko Wetland, Okinawa, Japan. Wetlands Ecology and Management 17: 585–599. doi:10.1007/s11273-009-9136-8.

    Article  Google Scholar 

  • Lovelock, C.E. 2008. Soil respiration and belowground carbon allocation in mangrove forests. Ecosystems 11: 342–354.

    Article  CAS  Google Scholar 

  • Lovelock, C.E., and M.C. Ball. 2002. Influence of salinity on photosynthesis of halophytes. In Salinity: Environment–plants–molecules, ed. A. Läuchi and U. Lüttge, 315–339. Utrecht: Kluwer.

    Google Scholar 

  • Lovelock, C.E., M.C. Ball, K.C. Martin, and I.C. Feller. 2009. Nutrient enrichment increases mortality of mangroves. PloS ONE 4: e5600. doi:10.1371/journal.pone.0005600.

    Article  Google Scholar 

  • Lovelock, C.E., I.C. Feller, M.C. Ball, J. Ellis, and B. Sorrell. 2007. Testing the growth rate vs. geochemical hypothesis for latitudinal variation in plant nutrients. Ecology Letters 10: 1154–1163.

    Article  CAS  Google Scholar 

  • Loring, D.H., and R.T.T. Rantala. 1992. Manual for the geochemical analyses of marine sediments and suspended particulate matter. Earth Science Reviews 32: 235–283.

    Article  CAS  Google Scholar 

  • Lugo, A.E., and F.N. Scatena. 1996. Background and catastrophic tree mortality in tropical moist, wet, and rain forests. Biotropica 28: 585–599.

    Article  Google Scholar 

  • McKee, K.L., and P.L. Faulkner. 2000. Restoration of biogeochemical function in mangrove forests. Restoration Ecology 8: 247–259.

    Article  Google Scholar 

  • McKinnon, A.D., L.A. Trott, D.M. Alongi, and A. Davidson. 2002a. Water column production and nutrient characteristics in mangrove creeks receiving shrimp farm effluent. Aquaculture Research 33: 55–73.

    Article  CAS  Google Scholar 

  • McKinnon, A.D., L.A. Trott, M. Cappo, D. Miller, P. Speare, and A. Davidson. 2002b. The trophic fate of prawn farm effluent in mangrove creeks of North Queensland, Australia. Estuarine, Coastal and Shelf Science 55: 655–671.

    Article  CAS  Google Scholar 

  • Ong, J.E., W.K. Gong, and B.F. Clough. 1995. Structure and productivity of a 20 year-old stand of Rhizophora apiculata Bl. mangrove forest. Journal of Biogeography 22: 417–424.

    Article  Google Scholar 

  • Putz, F.E., and H.T. Chan. 1986. Tree growth, dynamics, and productivity in a mature mangrove forest in Malaysia. Forest Ecology and Management 17: 211–230.

    Article  Google Scholar 

  • Ross, M.S., P.L. Ruiz, G.J. Telesnicki, and J.F. Meeder. 2001. Estimating above-ground biomass and production in mangrove communities of Biscayne National Park, Florida (U.S.A.). Wetlands Ecology and Management 9: 27–37.

    Article  Google Scholar 

  • Ryan, M.G., D. Binkley, and J.H. Fowles. 1997. Age-related decline in forest productivity: Pattern and processes. Advances in Ecological Research 27: 214–262.

    Article  Google Scholar 

  • Ryle, V.D., and J.T. Wellington. 1982. Reduction column for automated determination of nitrates. Analytical Laboratory Note No. 19. Townsville: Australian Institute of Marine Science.

    Google Scholar 

  • Ryle, V.D., H.R. Mueller, and P. Gentien. 1981. Automated analysis of nutrients in tropical seawater. Monograph OS-81-4, Australian Institute of Marine Science Monograph Series, Townsville, Australia.

  • Saenger, P., and S.C. Snedaker. 1993. Pantropical trends in mangrove above-ground biomass and annual litterfall. Oecologia 96: 293–299.

    Article  Google Scholar 

  • Saintilan, N. 1997. Above- and below-ground biomasses of two species of mangrove on the Hawkesbury River estuary, New South Wales. Marine and Freshwater Research 48: 147–152.

    Article  CAS  Google Scholar 

  • Sherman, R.E., T.J. Fahey, and P. Martinez. 2003. Spatial patterns of biomass and aboveground net primary productivity in a mangrove ecosystem in the Dominican Republic. Ecosystems 6: 384–398.

    Article  Google Scholar 

  • Smith III, T.J. 1992. Forest structure. In Tropical mangrove ecosystems, ed. A.I. Robertson and D.M. Alongi, 101–136. Washington: American Geophysical Union.

    Google Scholar 

  • Sokal, R.R., and F.J. Rohlf. 1995. Biometry, 3rd ed. New York: Freeman.

    Google Scholar 

  • Sukardjo, S., and I. Yamada. 1992. Biomass and productivity of a Rhizophora mucronata Lamarck plantation in Tritih, Central Java, Indonesia. Forest Ecology and Management 49: 195–209.

    Article  Google Scholar 

  • Trott, L.A., and D.M. Alongi. 1999. Variability in surface water chemistry and phytoplankton biomass in two tropical, tidally-dominated mangrove creeks. Marine and Freshwater Research 50: 451–457.

    CAS  Google Scholar 

  • Trott, L.A., A.D. McKinnon, D.M. Alongi, A. Davidson, and M.A. Burford. 2004. Carbon and nitrogen processes in a mangrove creek receiving shrimp pond effluent. Estuarine, Coastal and Shelf Science 59: 197–207.

    Article  CAS  Google Scholar 

  • Wolanski, E., S. Spagnol, S. Thomas, K. Moore, D.M. Alongi, L.A. Trott, and A. Davidson. 2000. Modelling and visualizing the fate of shrimp pond effluent in a mangrove-fringed tidal creek. Estuarine, Coastal and Shelf Science 50: 85–97.

    Article  CAS  Google Scholar 

  • Woodroffe, C.D. 2002. Coasts: Form, process and evolution. Cambridge: Cambridge University Press.

    Google Scholar 

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Acknowledgments

I thank L. Trott, F. Patel, A. Davidson, and many others for doing the fieldwork and S. Boyle, C. Payn, and J. WuWon for performing most of the chemical analyses. Britta Schaffelke is thanked for allowing me to complete this study, as is Mark Brinson and an anonymous reviewer for helpful comments. The Fisheries Industry Research and Development Corporation, Co-operative Research Centre for Aquaculture Pty Ltd, the Australian Prawn Farmers Association and the Australian Institute of Marine Science provided financial assistance.

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Correspondence to Daniel M. Alongi.

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Alongi, D.M. Patterns of Mangrove Wood and Litter Production Within a Beach Ridge-Fringing Reef Embayment, Northern Great Barrier Reef Coast. Estuaries and Coasts 34, 32–44 (2011). https://doi.org/10.1007/s12237-010-9289-y

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