Effects of elevated CO2 and nutrients on the community metabolismof a Cymodocea nodosa bed

Effects of elevated CO2 and nutrients on the community metabolismof a Cymodocea nodosa bed

We assessed the combined effects of elevated CO2 and nutrients on the metabolism of a benthic community dominated by the seagrass Cymodocea nodosa (Ucria) Ascherson in a mesocosm experiment. C. nodosa plants and their associated community were exposed to two CO2 levels simulating future (700 ppm, pH 7.84) and current (360 ppm, pH 8.12) conditions, and two nutrient levels (enriched and ambient concentration) in a total of four treatments (-C-N, -C+N, +C-N, +C+N). Net community production (NCP) was estimated from changes in the concentration of dissolved inorganic carbon in the seawater in light incubations using benthic chambers. The variation pattern of NCP with the ordinance was consistent for all treatments. Although differences among treatments were not statistically significant, average NCP values were lowest under CO2 enrichment conditions. NCP was lower at a high CO2 level and ambient nitrogen concentration compared to when nutrient availability was higher, suggesting that the low nutrient availability may modulate the community response to CO2 enrichment. The results obtained suggest that the stimulation of the net community production of C. nodosa by elevated CO2 concentrations may be curtailed by low nutrient availability.

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  • Abal E, Lonegaran N, Bowen P, Perry C, Udy J, Dennison W (1994). Physiological and morphological responses of the seagrass Zostera capricorni (Aschers) to light intensity. J Exp Mar Biol Ecol 178: 113–129.
  • Alexandre A, Silva J, Buapet P, Björk M, Santos R (2012). Effects of CO2 enrichment on photosynthesis, growth, and nitrogen metabolism of the seagrass Zostera noltii. Ecol Evol 2: 2625–2635.
  • Anderson DH, Robinson RJ (1946). Rapid electrometric determination of the alkalinity of sea water. Ind Eng Chem Anal Ed 18: 767–769.
  • Apostolaki ET, Holmer M, Marba N, Karakassis I (2010). Metabolic imbalance in coastal vegetated (Posidonia oceanica) and unvegetated benthic ecosystems. Ecosystems 13: 459–471.
  • Apostolaki ET, Vizzini S, Hendriks IE, Olsen YS (2014). Seagrass ecosystem response to long-term high CO2 in a Mediterranean volcanic vent. Mar Env Res 99: 9–15.
  • Björk M, Short FT, McLeod E, Beer S (2008). Managing Seagrasses for Resilience to Climate Change. Gland, Switzerland: IUCN.
  • CDIAC (2014). Recent Greenhouse Gas Concentrations. Oak Ridge, TN, USA: Oak Ridge National Laboratory.Duarte CM, Chiscano CL (1999). Seagrass biomass and production: a reassessment. Aqua Bot 65: 159–174.
  • Duarte C, Marbà N, Gacia E, Fourqurean J, Beggins J, Barrón C, Apostolaki E (2010). Seagrass community metabolism: assessing the carbon sink capacity of seagrass meadows. Global Biogeochem Cy 24: 1–8.
  • Hall-Spencer JM, Rodolfo-Metalpa R, Martin S, Ransome E, Fine M, Turner SM, Rowley SJ, Tedesco D, Buia MC (2008). Volcanic carbon dioxide vents show ecosystem effects of ocean acidification. Nature 454: 96–99.
  • Heck KL Jr, Hays LG, Orth RJ (2003). Critical evaluation of the nursery role hypothesis for seagrass meadows. Mar Ecol Progr Ser 253: 123–136.
  • Henderson C (2006). Ocean acidification: the other CO2 problem. New Scientist. Available online at http://environment.newscientist.com/article/mg19125631.200.
  • Invers O, Zimmerman RC, Alberte RS, Pérez M, Romero R (2001). Inorganic carbon sources for seagrass photosynthesis: an experimental evaluation of bicarbonate use in species inhabiting temperate waters. J Exp Mar Biol Ecol 265: 203–217.
  • Jiang ZJ, Huang XP, Zhang JP (2010). Effects of CO2 enrichment on photosynthesis, growth and biochemical composition of seagrass Thalassia hemprichii (Ehrenb.) Aschers. J Integrative Plant Biol 52: 904–913.
  • Kim YK, Kim JH, Kim SH, Kim JW, Park SR, Lee KS (2012). Growth dynamics of the seagrass, Zostera marina in Jindong Bay on the southern coast of Korea. Algae 27: 215–224.
  • Lee KS, Park SR, Kim YK (2007). Effects of irradiance, temperature, and nutrients on growth of seagrasses: a review. Exp Mar Biol Ecol 350: 144–175.
  • Lewis E, Wallace DW (1998). Program Developed for CO2 System Calculations. ORNL/CDIAC-105. Oak Ridge, TN, USA: Carbon Dioxide Information Analysis Center, Oak Ridge National Laboratory, US Department of Energy.
  • MacLeod N, Barton D (1988). Effects of light intensity, water velocity, and species composition on carbon and nitrogen stable isotope ratios in periphyton. Canadian J Fish Aqu Sci 55: 1919–1925.
  • Orr JC, Fabry VJ, Aumont O, Bopp L, Doney SC, Feely RA, Gnanadesikan A, Gruber N, Ishida A, Joos F et al. (2005). Anthropogenic ocean acidification over the twenty-first century and its impact on calcifying organisms. Nature 437: 681–687.
  • Palacios SL, Zimmerman RC (2007). Eelgrass (Zostera marinaL.) response to CO2 enrichment: possible impacts of climate change and potential for remediation of coastal habitats. Mar Ecol Progress Ser 344: 1–13.
  • Parsons TR, Maita Y, Lalli CM (1984). A Manual of Chemical and Biological Methods for Seawater Analysis. Oxford, UK: Pergamon Press. Pelejero C, Calvo E, Hoegh-Guldberg O (2010). Paleo-perspectives on ocean acidification. Trends Ecol Evol 25: 332–344.
  • Ralph PJ, Burchett MD (1995). Photosynthetic responses of the seagrass Halophilaovalis (R. Br.) Hook. f. to high irradiance stress, using chlorophyll a fluorescence. Aqu Bot 51: 55–66.
  • Ralph P, Gademann R, Dennison W (1998). In situ seagrass photosynthesis measured using a submersible, pulse-amplitude modulated fluorometer. Mar Biol 132: 367–373.
  • Sand-Jensen K, Borum J (1984). Epiphyte shading and its effect on photosynthesis and diel metabolism of Lobelia dortmanna L. during the spring bloom in a Danish lake. Aqua Bot 20: 109–119.
  • Semesi IS, Beer S, Björk M (2009). Seagrass photosynthesis controls rates of calcification and photosynthesis of calcareous macroalgae in a tropical seagrass meadow. Mar Ecol Progress Ser 382: 41–47.
  • Shao Q, Wang H, Guo H, Zhou A, Huang Y, Sun Y, Li M (2014). Effects of shade treatments on photosynthetic characteristics, chloroplast ultrastructure, and physiology of Anoectochilus roxburghii. PLoS ONE 9(2): e85996.
  • Stutes J, Cebrian J, Stutes AL, Hunter A, Corcoran AA (2007). Benthic metabolism across a gradient of anthropogenic impact in three shallow coastal lagoons in NW Florida. Mar Ecol Prog Ser 348: 55–70.
  • Stitt M, Krapp A (1999). The interaction between elevated carbon dioxide and nitrogen nutrient: the physiological and molecular background. Plant Cell Env 22: 583–621.
  • Thom RM (1996). CO2 enrichment effect on eelgrass (Zostera marinaL.) and bull kelp (Nereocystis luetkeana (MERT.) P. & R.). Wat Air Soil Poll 88: 383–391.
  • Turan S (2012). Light acclimation in plants: photoinhibition and photoprotection. Adv BioResearch 3: 90–94.
  • Turley C (2005). The other CO2 problem. Open Democracy. Available online at http://www.acamedia.info/sciences/sciliterature/global/reference/carolturley.html.
  • Vézina AF, Hoegh-Guldberg O, Lough J (2008). Effects of ocean acidification on marine ecosystems. Mar Ecol Progress Ser 373: 199–201.
  • Zimmerman RC, Khors DG, Steller DL, Alberte RS (1997). Impacts of CO2 enrichment on productivity and light requirements of eelgrass. Plant Physiol 115: 599–607.