Impact of aquatic macrophyte decomposition on sedimentary nutrient and metal mobilization in the initial stages of ecosystem development

Aquatic Botany - Tập 105 - Trang 41-49 - 2013
Andreas Kleeberg1
1Leibniz-Institute of Freshwater Ecology and Inland Fisheries, Müggelseedamm 301, D-12587 Berlin, Germany

Tài liệu tham khảo

Appel, 1993, The role of phenolics in ecological systems: the importance of oxidation, J. Chem. Ecol., 19, 1521, 10.1007/BF00984895 Asaeda, 2000, Modeling the effects of macrophyte growth and decomposition on the nutrient budget in shallow lakes, Aquat. Bot., 68, 217, 10.1016/S0304-3770(00)00123-6 Barko, 1998, Effects of submerged aquatic macrophytes on nutrient dynamics, sedimentation, and resuspension, 197 Barko, 1980, Mobilization of sediment phosphorus by submersed freshwater macrophytes, Freshw. Biol., 10, 229, 10.1111/j.1365-2427.1980.tb01198.x Bärlocher, 2005, Total Phenolic Barth, M., 2010. Polyphenole und weitere Pflanzeninhaltsstoffe als Steuergrößen des anaeroben Abbaus von Helophytenbiomasse in überstauten Niedermooren. Diploma thesis, Mathematisch-Naturwissenschaftliche Fakultät I der Humboldt Universität zu Berlin and Leibniz-Institut für Gewässerökologie und Binnenfischerei, pp. 106. Brenning, 1967, Die Siedlungsdichte von Arenicola marina (L.) im Raum der Insel Langenwerder (Wismar-Bucht), vol. 16 Bauer, 2009, Seasonal and interannual dynamics of polyphenols in Myriophyllum verticillatum and their allelopathic activity on Anabaena variabilis, Aquat. Bot., 91, 110, 10.1016/j.aquabot.2009.03.005 Canfield, 2005 Chimney, 2006, Decomposition of macrophyte litter in a subtropical constructed wetland in south Florida (USA), Ecol. Eng., 27, 301, 10.1016/j.ecoleng.2006.05.016 Christensen, 1997, Comparison of iron, manganese, and phosphorus retention in freshwater littoral sediment with growth of Littorella uniflora and benthic microalgae, Biogeochemistry, 38, 149, 10.1023/A:1005736930062 Dinka, 2004, Changes in nutrient and fibre content of decomposing Phragmites australis Litter, Int. Rev. Hydrobiol., 89, 519, 10.1002/iroh.200410772 Dorenberg, 2011, Herbivory in omnivorous fishes: effect of plant secondary metabolites and prey stoichiometry, Freshw. Biol., 56, 1783, 10.1111/j.1365-2427.2011.02618.x Games, 1976, Pairwise multiple comparison procedures with unequal N's and/or variances. A Monte Carlo study, J. Educ. Stat., 1, 113, 10.2307/1164979 Gerke, 1992, Adsorption of orthophosphate to humic-Fe-complexes and to amorphous Fe-oxide, Z. Pflanzenernähr. Bodenk, 155, 233, 10.1002/jpln.19921550313 Gerwin, 2009, The artificial water catchment ‘Chicken Creek’ as an observatory for critical zone processes and structures, Hydrol. Earth Syst. Sci. Discuss., 6, 1769, 10.5194/hessd-6-1769-2009 Gessner, 2000, Breakdown and nutrient dynamics of submerged Phragmites shoots in the littoral zone of a temperate hardwater lake, Aquat. Bot., 66, 9, 10.1016/S0304-3770(99)00022-4 Gessner, 2005, Proximate Lignin and Cellulose Hesslein, 1976, An in situ sampler for close interval pore water studies, Limnol. Oceanogr., 21, 912, 10.4319/lo.1976.21.6.0912 Heal, 1997, Driven by nature Kleeberg, 2010, Formation and characterization of pond sediments Kleeberg, 2010, What drives the evolution of the sedimentary phosphorus cycle?, Limnologica, 40, 102, 10.1016/j.limno.2009.11.001 Koerselman, 1996, The vegetation N:P ratio: a new tool to detect the nature of nutrient limitation, J. Appl. Ecol., 33, 1441, 10.2307/2404783 Kraus, 2003, Tannins in nutrient dynamics of forest ecosystems – a review, Plant Soil, 256, 41, 10.1023/A:1026206511084 Krom, 1980, Spectrophotometric determination of ammonia: a study of a modified Berthelot reaction using salicylate and dichloroisocyanorate, Analyst, 105, 305, 10.1039/an9800500305 Lamers, 2002, Factors controlling the extent of eutrophication and toxicity in sulfate – polluted freshwater wetlands, Limnol. Oceanogr., 47, 585, 10.4319/lo.2002.47.2.0585 Leßmann, 2010, Limnological development of Chicken Creek pond in the first four years Longhi, 2008, Decomposition of four macrophytes in wetland sediments: organic matter and nutrient decay and associated benthic processes, Aquat. Bot., 89, 303, 10.1016/j.aquabot.2008.03.004 Martynova, 2010, Iron compound occurrence forms in freshwater deposits, Anal. Rev. Water. Res., 37, 488 Mitch, 2000, Wetland ecosystem development Murphy, 1962, A modified single solution method for determination of phosphate in natural waters, Anal. Chim. Acta, 27, 31, 10.1016/S0003-2670(00)88444-5 Pelton, 1998, Measurements of phosphorus uptake by macrophytes from the LaPlatte River (VT) using 32P in stream microcosms, Freshw. Biol, 39, 285, 10.1046/j.1365-2427.1998.00281.x Pieczyńska, 1993, Detritus and nutrient dynamics in the shore zone of lakes: a review, Hydrobiologia, 251, 49, 10.1007/BF00007164 Roden, 1997, Phosphate mobilization in iron-rich anaerobic sediments: microbial Fe(III) oxide reduction versus iron–sulfide formation, Arch. Hydrobiol., 139, 347, 10.1127/archiv-hydrobiol/139/1997/347 Sachs, 1990 Scalbert, 1991, Antimicrobial properties of tannins, Phytochemistry, 30, 3875, 10.1016/0031-9422(91)83426-L Schaaf, 2010, Soil solution Sharpley, 1999, Global issues of phosphorus in terrestrial ecosystems Shilla, 2006, Decomposition of dominant submerges macrophytes: implications for nutrient release in Myall Lake, NSW, Aust. Wetl. Ecol. Manage., 14, 427, 10.1007/s11273-006-6294-9 Wigand, 1997, Effects of different submerged macrophytes on sediment biogeochemistry, Aquat. Bot., 56, 233, 10.1016/S0304-3770(96)01108-4 Xie, 2004, Effects of nitrogen and phosphorus availability on the decomposition of aquatic plants, Aquat. Bot., 80, 29, 10.1016/j.aquabot.2004.07.002