XIA Bin, CUI Yi, CHEN Bijuan, CUI Zhengguo, QU Keming, MA Feifei. Carbon and nitrogen isotopes analysis and sources of organic matter in surface sediments from the Sanggou Bay and its adjacent areas, China[J]. Acta Oceanologica Sinica, 2014, 33(12): 48-57. doi: 10.1007/s13131-014-0574-7
Citation: XIA Bin, CUI Yi, CHEN Bijuan, CUI Zhengguo, QU Keming, MA Feifei. Carbon and nitrogen isotopes analysis and sources of organic matter in surface sediments from the Sanggou Bay and its adjacent areas, China[J]. Acta Oceanologica Sinica, 2014, 33(12): 48-57. doi: 10.1007/s13131-014-0574-7

Carbon and nitrogen isotopes analysis and sources of organic matter in surface sediments from the Sanggou Bay and its adjacent areas, China

doi: 10.1007/s13131-014-0574-7
  • Received Date: 2013-12-19
  • Rev Recd Date: 2014-07-08
  • Naturally existing stable carbon and nitrogen isotopes are important in the study of sedimentary organic matter sources. To identify the sources of sedimentary organic matter in Sanggou Bay and its adjacent areas, which is characterized by high-density shellfish and seaweed aquaculture, the grain size, organic carbon (OC), total nitrogen (TN), carbon and nitrogen isotopic composition (δ13C and δ15N) of organic matter in the surface sediment were determined. The results showed that, in August, sedimentary OC and TN ranged from 0.17% to 0.76% and 0.04% to 0.14%, respectively. In November, OC and TN ranged from 0.23% to 0.87% and 0.05% to 0.14%, respectively. There was a significant positive correlation between OC and TN (R=0.98, P<0.0001), indicating that OC and TN were homologous. In August, the δ13C and δ15N of organic matter varied from -23.06‰ to -21.59‰ and 5.10‰ to 6.31‰, respectively. In November, δ13C and δ15N ranged from -22.87‰ to -21.34‰ and 5.13‰ to 7.31‰, respectively. This study found that the major sources of sedimentary organic matter were marine shellfish biodeposition, seaweed farming, and soil organic matter. Using a three-end-member mixed model, we estimated that the dominant source of sedimentary organic matter was shellfish biodeposition, with an average contribution rate of 65.53% in August and 43.00% in November. Thus, shellfish farming had a significant influence on the coastal carbon cycle.
  • loading
  • Andrews J E, Greenaway A M, Dennis P F. 1998. Combined carbon isotope and C/N ratios as indicators of source and fate of organic matter in a poorly flushed, tropical estuary: Hunts Bay, Kingston Harbour, Jamaica. Estuarine, Coastal and Shelf Science, 46(5): 743-756
    Balino B M, Fasham M J R, Bowles M C. 2001. Ocean biogeochemistry and global change: JGOFS research highlights 1988-2000. IGBP Science, 2: 1-32
    Barros G V, Martinelli L A, Novais T, et al. 2010. Stable isotopes of bulk organic matter to trace carbon and nitrogen dynamics in an estuarine ecosystem in Babitonga bay (Santa Catarina, Brazil). Science of the Total Environment, 408(10): 2226-2232
    Bordovskiy O K. 1965. Transformation of organic matter in bottom sediments and its early Diagenesis. Marine Geology, 3(1): 83-114
    Boutton T W. 1991. Stable carbon isotope ratios of natural materials: II. Atmospheric, terrestrial, marine, and freshwater environments. In: Carbon Isotope Techniques. New York: Elsevier, 173-185
    Duggins D O, Eckman J E. 1994. The role of kelp detritus in the growth of benthic suspension feeders in an understory kelp forest. Journal of Experimental Marine Biology and Ecology, 176(1): 53-68
    Emerson S, Hedges J I. 1988. Processes controlling the organic carbon content of open ocean sediments. Paleoceanography, 3(5): 621-634
    Gao Xuelu, Yang Yuwei, Wang Chuanyuan. 2012. Geochemistry of organic carbon and nitrogen in surface sediments of coastal Bohai Bay inferred from their ratios and stable isotopic signatures. Marine Pollution Bulletin, 64(6): 1148-1155
    Gearing J N. 1988. The use of stable isotope ratios for tracing the nearshore-offshore exchange of organic matter. In: Coastal-Offshore Ecosystem Interactions, vol. 22. Berlin Heidelberg: Springer, 69-101
    Gireeshkumar T R, Deepulal P M, Chandramohanakumar N. 2013. Distribution and sources of sedimentary organic matter in a tropical estuary, south west coast of India (Cochin estuary): A baseline study. Marine Pollution Bulletin, 66(1-2): 239-245
    Goni M A, Cathey M W, Kim Y H, et al. 2005. Fluxes and sources of suspended organic matter in an estuarine turbidity maximum region during low discharge conditions. Estuarine, Coastal and Shelf Science, 63(4): 683-700
    Goñi M A, Thomas K A. 2000. Sources and transformations of organic matter in surface soils and sediments from a tidal estuary (north inlet, South Carolina, USA). Estuaries, 23(4): 548-564
    Goñi M A, Ruttenberg K C, Eglinton T I. 1998. A reassessment of the sources and importance of land-derived organic matter in surface sediments from the Gulf of Mexico. Geochimica Et Cosmochimica Acta, 62(18): 3055-3075
    Goñi M A, Teixeira M J, Perkey D W. 2003. Sources and distribution of organic matter in a river-dominated estuary (Winyah Bay, SC, USA). Estuarine Coastal and Shelf Science, 57(5-6): 1023-1048
    Gonneea M E, Paytan A, Herrera-Silveira J A. 2004. Tracing organic matter sources and carbon burial in mangrove sediments over the past 160 years. Estuarine Coastal and Shelf Science, 61(2): 211-227
    Han Tingting, Jiang Zengjie, Fang Jianguang, et al. 2013. Carbon dioxide fixation by the seaweed Gracilaria lemaneiformis in integrated multi-trophic aquaculture with the scallop Chlamys farreri in Sanggou Bay, China. Aquaculture International, 21(5): 1035-1043
    Hu Jianfang, Peng Pingan, Jia Guodong, et al. 2006. Distribution and sources of organic carbon, nitrogen and their isotopes in sediments of the subtropical Pearl River estuary and adjacent shelf, southern China. Marine Chemistry, 98(2-4): 274-285
    Hu Limin, Guo Zhigang, Feng Jialiang, et al. 2009. Distributions and sources of bulk organic matter and aliphatic hydrocarbons in surface sediments of the Bohai Sea, China. Marine Chemistry, 113(3-4): 197-211
    Jiang Zengjie, Fang Jianguang, Mao Yuze, et al. 2012. Identification of aquaculture-derived organic matter in the sediment associated with coastal fish farming. Journal of Fishery Sciences of China (in Chinese), 19(2): 348-354
    Keil R G, Tsamakis E, Giddings J C, et al. 1998. Biochemical distributions (amino acids, neutral sugars, and lignin phenols) among size-classes of modern marine sediments from the Washington coast. Geochimica Et Cosmochimica Acta, 62(8): 1347-1364
    Liu M, Hou L J, Xu S Y, et al. 2006. Organic carbon and nitrogen stable isotopes in the intertidal sediments from the Yangtze Estuary, China. Marine Pollution Bulletin, 52(12): 1625-1633
    Lu Fengyun, Liu Zhuqing, Ji Hongbin. 2013. Carbon and nitrogen isotopes analysis and sources of organic matter in the upper reaches of the Chaobai River near Beijing, China. Science China Earth Sciences, 56(2): 217-227
    Mann K H. 1988. Production and use of detritus in various freshwater, estuarine, and coastal marine ecosystems. Limnology and Oceanography, 33(4): 910-930
    Mc Manus J. 1988. Grain size determination and interpretation. In: Tucker M, ed. Techniques in Sedimentology. Oxford: Blackwell, 63-85
    Meyers P A. 1994. Preservation of elemental and isotopic source identification of sedimentary organic matter. Chemical Geology, 114(3): 289-302
    Parton W J, Schimel D S, Cole C V, et al. 1987. Analysis of factors controlling soil organic matter levels in great plains grasslands. Soil Science Society of America Journal, 51(5): 1173-1179
    Petersen J K, Nielsen T G, Van Duren L, et al. 2008. Depletion of plankton in a raft culture of mytilus galloprovincialis in Ría de Vigo, NW Spain: I. phytoplankton. Aquatic Biology, 4(2): 113-125
    Prahl F G, Bennett J T, Carpenter R. 1980. The early diagenesis of aliphatic hydrocarbons and organic matter in sedimentary particulates from Dabob Bay, Washington. Geochimica Et Cosmochimica Acta, 44(12): 1967-1976
    Ramaswamy V, Gaye B, Shirodkar P V, et al. 2008. Distribution and sources of organic carbon, nitrogen and their isotopic signatures in sediments from the Ayeyarwady (Irrawaddy) continental shelf, northern Andaman Sea. Marine Chemistry, 111(3-4): 137-150
    Phillips D L. 2001. Mixing models in analyses of diet using multiple stable isotopes: a critique. Oecologia, 127(2): 166-170
    Rumolo P, Barra M, Gherardi S, et al. 2011. Stable isotopes and C/N ratios in marine sediments as a tool for discriminating anthropogenic impact. Journal of Environmental Monitoring, 13(12): 3399-3408
    Schubert C J, Calvert S E. 2001. Nitrogen and carbon isotopic composition of marine and terrestrial organic matter in Arctic Ocean sediments: implications for nutrient utilization and organic matter composition. Deep-Sea Research Part I: Oceanographic Research Papers, 48(3): 789-810
    Sfriso A, Pavoni B. 1994. Macroalgae and phytoplankton competition in the central Venice lagoon. Environmental Technology, 15(1): 1-14
    Shi Jie, Wei Hao. 2009. Simulation of hydrodynamic structures in a semi-enclosed bay with dense raft-culture. Periodical of Ocean University of China (in Chinese), 39(6): 1181-1187
    Shimoda K, Aramaki Y, Nasuda J, et al. 2007. Food sources for three species of Nihonotrypaea (Decapoda: Thalassinidea: Callianassidae) from western Kyushu, Japan, as determined by carbon and nitrogen stable isotope analysis. Journal of Experimental Marine Biology and Ecology, 342(2): 292-312
    Sun Yao, Zhao Jun, Zhou Shilai, et al. 1998. Environmental features of cultural waters in Sanggou Bay. Journal Fishery Sciences of China (in Chinese), 5(3): 69-75
    Tang Qisheng, Zhang Jihong, Fang Jianguang. 2011. Shellfish and seaweed mariculture increase atmospheric CO2 absorption by coastal ecosystems. Marine Ecology Progress Series, 424: 97-104
    Tans P P, Fung I Y, Takahashi T. 1990. Observational contrains on the global atmospheric CO2 budget. Science, 247: 1431-1438
    Thorp J H, Delong M D, Greenwood K S, et al. 1998. Isotopic analysis of three food web theories in constricted and floodplain regions of a large river. Oecologia, 117(4): 551-563
    Tiessen H, Stewart J W B, Hunt H W. 1984. Concepts of soil organic matter transformations in relation to organo-mineral particle size fractions. Plant and Soil, 76(1-3): 287-295
    Vaalgamaa S, Sonninen E, Korhola A, et al. 2013. Identifying recent sources of organic matter enrichment and eutrophication trends at coastal sites using stable nitrogen and carbon isotope ratios in sediment cores. Journal of Paleolimnology, 50(2): 191-206
    Walsh J J. 1991. Importance of continental margins in the marine biogeochemical cycling of carbon and nitrogen. Nature, 350: 53-55
    Wang Zongxing, Sun Peixi, Liu Caixia, et al. 2011. Secondary production of macrobenthos in the Sanggou Bay, Shandong, China. Chinese Journal of Applied & Environmental Biology (in Chinese), 17(4): 495-498
    Yue Tao, Li Ning. 2009. Research on affection of soil losing to water environment in Sanggou Town. Water Resource Scientific Technique (in Chinese), 11: 29-31
    Zhang Jihong, Hansen P K, Fang Jianguang, et al. 2009. Assessment of the local environmental impact of intensive marine shellfish and seaweed farming—Application of the MOM system in the Sungo Bay, China. Aquaculture, 287(3-4): 304-310
    Zhang Mingliang, Zou Jian, Mao Yuze, et al. 2011. Contribution of culturing scallop to carbon cycle in Sanggou Bay. Fishery Modernization (in Chinese), 38(4): 13-16
  • 加载中

Catalog

    通讯作者: 陈斌, bchen63@163.com
    • 1. 

      沈阳化工大学材料科学与工程学院 沈阳 110142

    1. 本站搜索
    2. 百度学术搜索
    3. 万方数据库搜索
    4. CNKI搜索

    Article Metrics

    Article views (1731) PDF downloads(2066) Cited by()
    Proportional views
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return