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Phosphorus Speciation and Bioavailability in Intertidal Sediments of Keunso Bay, Yellow Sea During Summer and Winter

서해 근소만 조간대 퇴적물에서 여름과 겨울에 인의 존재형태

  • Kim, Dong-Seon (Climate Change & Coastal Disaster Research Department, KORDI) ;
  • Kim, Kyung-Hee (Climate Change & Coastal Disaster Research Department, KORDI)
  • 김동선 (한국해양연구원 기후 연안재해연구부) ;
  • 김경희 (한국해양연구원 기후 연안재해연구부)
  • Received : 2010.05.14
  • Accepted : 2010.06.22
  • Published : 2010.09.30

Abstract

A sequential extraction technique was used to study sediment phosphorus speciation and its relative importance in the intertidal flat of Keunso Bay during summer and winter for a better understanding of the phosphorus cycle and bioavailability in intertidal sediments. Loosely sorbed P contents were the lowest among the five P-pools and showed little seasonal or spatial variation. Although Fe-bound P contents were almost constant in winter, they decreased rapidly with sediment depth in summer. The dissolution of Fe oxides, used as an oxidant for the anaerobic respiration, ascribed the rapid decrease of Fe-bound P in summer. Al-bound P contents displayed little seasonal variation, but showed a large spatial variation, with higher values in the upper intertidal flat. Comprising about 50% of total P, Ca-bound P contents were the highest among the five P-pools. Ca-bound P contents were higher in winter than summer, but did not exhibit a clear spatial variation. Organic P contents were higher in summer than winter, which was associated with higher primary production and clam biomass in summer. Organic P contents were higher in the lower intertidal flat than the upper intertidal flat. In Keunso Bay, bioavailable P contents of the intertidal flat comprising about one third of total P ranged from 2.41 to 5.09 ${\mu}molg^{-1}$ in summer and 3.82 to 5.29 ${\mu}molg^{-1}$ in winter. The bioavailability of P contents was higher in the lower intertidal flat than the upper intertidal flat, which was attributed to the large clam production in the lower intertidal flat.

Keywords

References

  1. 한국해양연구원 (2007) 갯벌 경계면에서의 물질플럭스 및 갯벌의 생태적 기능 평가. 한국해양연구원, BSPE97703-1925-3, 332 p
  2. Alvarez-Rogel J, Jimenez-Carceles FJ, Egea-Nicolas C (2007) Phosphorus retention in a coastal salt marsh in SE Spain. Sci Total Envrion 378:71-74 https://doi.org/10.1016/j.scitotenv.2007.01.016
  3. Andrieux F, Aminot A (1997) A two-year survey of phosphorus speciation in the sediments of the bay of Seine (France). Cont Shelf Res 17:1229-1245 https://doi.org/10.1016/S0278-4343(97)00008-3
  4. Andrieux-Loyer F, Aminot A (2001) Phosphorus forms related to sediment grain size and geochemical characteristics in French coastal areas. Est Coast Shelf Res 52:617-629 https://doi.org/10.1006/ecss.2001.0766
  5. Babu CP, Nath BN (2005) Processes controlling forms of phosphorus in surficial sediments from the eastern Arabian Sea impinged by varying bottom water oxygenation conditions. Deep-Sea Res II 52:1965-1980 https://doi.org/10.1016/j.dsr2.2005.06.004
  6. Cha HJ, Lee CB, Kim BS, Choi MS, Ruttenberg KC (2005) Early disgenetic redistribution and burial of phosphorus in the sediments of the southwestern East Sea (Japan Sea). Mar Geol 216:127-143 https://doi.org/10.1016/j.margeo.2005.02.001
  7. Coelho JP, Flindt MR, Jensen HS, Lillebø AI, Pardal MA (2004) Phosphorus speciation and availability in intertidal sediments of a temperate estuary: relation to eutrophication and annual P-fluxes. Estuar Coast Shelf Sci 61:583-590 https://doi.org/10.1016/j.ecss.2004.07.001
  8. De Jonge VN, Engelkes MM, Bakker JF (1993) Bioavailability of phosphorus in sediments of the western Dutch Wadden Sea. Hydrobiologia 253:151-163 https://doi.org/10.1007/BF00050735
  9. De Jonge VN, Bakker JF, van Stralen MR (1996) Possible change in the concnetration of the river Rhine and the North Sea to the eutrophic status of the western Dutch Wadden Sea. Netherlands Jour Aquatic Ecol 30:27-39 https://doi.org/10.1007/BF02092145
  10. Fang TH, Chen JL, Huh CA (2007) Sedimentary phosphporus species and sedimentation flux in the East China Sea. Cont Shelf Res 27:1465-1476 https://doi.org/10.1016/j.csr.2007.01.011
  11. Filippelli GM, Delaney ML (1996) Phosphorus geochemistry of equatorial Pacific sediments. Geochim Cosmochim Acta 60:1479-1495 https://doi.org/10.1016/0016-7037(96)00042-7
  12. Harrison PJ, Hu MH, Yang YP, Lu X (1990) Phosphate limitation in estuarine and coastal waters of China. Jour Experiment Mar Biol Ecol 140:79-87 https://doi.org/10.1016/0022-0981(90)90083-O
  13. Hou LJ, Liu M, Yang Y, Ou DN, Lin X, Chen H, Xu SY (2009) Phosphorus speciation and availability in intertidal sediments of the Yangtze Estuary, China. Applied Geochem 24:120-128 https://doi.org/10.1016/j.apgeochem.2008.11.008
  14. Jensen HS, Thamdrup B (1993) Iron-bound phosphorus in marine sediments as measured by bicarbonate-dithionite extraction. Hydrobiologia 253:47-59 https://doi.org/10.1007/BF00050721
  15. Kim D, Schuffert JD, Kastner M (1999) Francolite authigenesis in California continental slope sediments and its implications for the marine P cycle. Geochim Cosmochim Acta 63:3477-3485 https://doi.org/10.1016/S0016-7037(99)00271-9
  16. Lebo ME (1991) Particle-bound phosphorus along an urbanized coastal plain estuary. Mar Chem 34:225-246 https://doi.org/10.1016/0304-4203(91)90005-H
  17. Louchouarn P, Lucotte M, Duchemin E, de Vernal A (1997) Early diagenetic processes in recent sediments of the Gulf of St-Lawrence: phosphorus, carbon and iron burial rates. Mar Geol 139:181-200 https://doi.org/10.1016/S0025-3227(96)00110-7
  18. Mucci A, Edenborn HM (1992) Influence of an organicpoor landslide deposit on the early diagenesis of iron and manganese in a coastal marine sediment. Geochim Cosmochim Acta 56:3909-3921 https://doi.org/10.1016/0016-7037(92)90005-4
  19. Nizzoli D, Bartoli M, Cooper M, Welsh DT, Underwood GJC, Viaroli P (2007) Implications for oxygen, nutrient fluxes and denitrification rates during the early stage of sediment colonisation by the polychaete Nereis spp. in four estuaries. Estuar Coast Shelf Sci 75:125-134 https://doi.org/10.1016/j.ecss.2007.03.035
  20. Paludan C, Morris JT (1999) Distribution and speciation of phosphorus along a salinity gradient in intertidal marsh sediments. Biogeochem 45:197-221
  21. Pennock JR, Sharp JH (1994) Temporal alternation between light an nutrient limitation of phytoplankton production in a coastal plain estuary. Mar Ecol Prog Ser 111:275-288 https://doi.org/10.3354/meps111275
  22. Rozan TM, Taillefert M, Trouwborst RE, Glazer BT, Ma S, Herszage J, Valdes LM, Price KS, Luther III GW (2002) Iron-Sulfur-phosphorus cycling in the sediments of a shallow coastal bay: implication for sediment nutrient release and benthic macroalgal blooms. Limnol Oceangr 47:1346-1354 https://doi.org/10.4319/lo.2002.47.5.1346
  23. Ruttenberg KC (1992) Development of a sequential extraction method for different forms of phosphorus in marine sediments. Limnol Oceanogr 37:1460-1482 https://doi.org/10.4319/lo.1992.37.7.1460
  24. Ruttenberg KC, Berner RA (1993) Authigenic apatite formation and burial in sediments from non-upwelling, continental margin environments. Geochim Cosmochim Acta 57:991-1007 https://doi.org/10.1016/0016-7037(93)90035-U
  25. Sanudo-Wilhelmy SA, Kustka AB, Golber CJ, Yang M, Lwiza K, Burns J, Capone DG, Raven JA, Carpenter FJ (2001) Phosphorus limitation of nitrogen fixation by Trichodesmium in the central Atlantic Ocean. Nature 411:66-69 https://doi.org/10.1038/35075041
  26. Schenau SJ, De Lange GJ (2001) Phosphorus regeneration vs burial in sediments of the Arabian Sea. Mar Chem 75:201-217 https://doi.org/10.1016/S0304-4203(01)00037-8
  27. Sonzogni WC, Chapra SC, Armstrong DE, Logan TJ (1982) Bioavailability of phosphorus inputs to lakes. Jour Environ Quality 11:555-563
  28. Spears BM, Carvalho L, Perkins R, Kirika A, Paterson DM (2006) Spatial and historical variation in sediment phosphorus fractions and mobility in a large shallow lake. Water Res 40:383-391 https://doi.org/10.1016/j.watres.2005.11.013
  29. Van der Zee C, Slomp CP, van Raaphorst W (2002) Authigenic P formation and reactive P burial in sediments of the Nazre canyon on the Iberian margin (NE Atlantic). Mar Geol 185:379-393 https://doi.org/10.1016/S0025-3227(02)00189-5
  30. Yin K, Harrinson PJ (2000) Influence of flood and ebb tides on nutrient fluxes and chlorophyll on an intertidal flat. Mar Ecol Prog Ser 196:75-85 https://doi.org/10.3354/meps196075