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Biomarker records of phytoplankton productivity and community structure changes in the Central Yellow Sea mud area during the Mid-late Holocene

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Abstract

The Yellow Sea (YS) environmental and ecological changes during the Holocene are driven by the interactions between the Yellow Sea Warm Current (YSWC), the East Asian Winter Monsoon (EAWM) and the Kuroshio Current (KC). We report marine biomarker records of brassicasterol, dinosterol and C37 alkenones in core ZY1 and core ZY2 from the South Yellow Sea (SYS) to reconstruct the spatial/temporal variations and possible mechanisms of phytoplankton primary productivity and community structure changes during the Mid-late Holocene. The contents of the corresponding biomarkers in the two cores are similar, and they also reveal broadly similar temporal trends. From 6 kyr to 3 kyr, the biomarker contents in the two cores were relatively low with small oscillations, followed by a distinct increase at about 3 kyr indicating productivity increases caused by a stronger EAWM. The alkenone/brassicasterol ratio (A/B) is used as a community structure proxy, which also showed higher values in both cores since 3 kyr, indicating increased haptophyte contribution to total productivity. It is proposed that the YS community structure has been mainly influenced by the YSWC, with stronger YSWC influences causing an increase in haptophyte contribution since 3 kyr. Some differences of the biomarker records between ZY2 and ZY1 suggest spatial variations in response to YSWC and KC forcing. When the KC was intensified during the periods of 6–4.2 kyr and 1.7–0 kyr, the YSWC extended eastward, exerting more influence on core ZY1. On the other hand, when the KC weakened during 4.2–1.7 kyr, the YSWC extended westward, exerting more influence on the ZY2.

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References

  • Belkin, I. M., 2009. Rapid warming of Large Marine Ecosystems. Progress in Oceanography, 81(1–4): 207–213.

    Article  Google Scholar 

  • Brand, L. E., 1984. The salinity tolerance of forty-six marine phytoplankton isolates. Estuarine, Coastal and Shelf Science, 18(5): 543–556.

    Article  Google Scholar 

  • Calvo, E., Pelejero, C., Logan, G. A., and De Deckker, P., 2004. Dust-induced changes in phytoplankton composition in the Tasman Sea during the last four glacial cycles. Paleoceanography, 19(2): PA2020.

    Article  Google Scholar 

  • Canuel, E. A., and Martens, C. S., 1996. Reactivity of recently deposited organic matter: Degradation of lipid compounds near the sediment-water interface. Geochimica et Cosmochimica Acta, 60(10): 1793–1806.

    Article  Google Scholar 

  • Chen, C. T. A., 2009. Chemical and physical fronts in the Bohai, Yellow and East China seas. Journal of Marine Systems, 78(3): 394–410.

    Article  Google Scholar 

  • Christopher, E. N., Cheryl, A. B., and Daniel, R. L., 2001. Seasonal mean circulation in the Yellow Sea — a model-generated climatology. Continental Shelf Research, 21(6–7): 667–695.

    Google Scholar 

  • Conte, M. H., Thompson, A., Eglinton, G., and Green, J. C., 1995. Lipid biomarker diversity in the coccolithophorid Emiliania huxleyi (Prymnesiophyceae) and the related species Gephyrocapsa oceanica. Journal of Phycology, 31(2): 272–282.

    Article  Google Scholar 

  • Dahl, K. A., Repeta, D. J., and Goericke, R., 2004. Reconstructing the phytoplankton community of the Cariaco Basin during the Younger Dryas cold event using chlorin steryl esters. Paleoceanography, 19(1): 19–29.

    Article  Google Scholar 

  • Harvey, H. R., 2000. Alteration processes of alkenones and related lipids in water columns and sediments. Geochemistry, Geophysics, Geosystems, 1(8): 1032.

    Article  Google Scholar 

  • He, J., Zhao, M. X., Li, L., Wang, H., and Wang, P. X., 2008. Biomarker evidence of relatively stable community structure in the northern South China Sea during the last glacial and Holocene. TAO, 19(4): 1–11.

    Google Scholar 

  • Head, R. N., Crawford, D. W., Egge, J. K., Harris, R. P., Kristiansen, S., Lesley, D. J., Marañón, E., Pond, D., and Purdie, D. A., 1998. The hydrography and biology of a bloom of the coccolithophorid Emiliania huxleyi in the northern North Sea. Journal of Sea Research, 39(3–4): 255–266.

    Article  Google Scholar 

  • Henriksson, A. S., Sarnthein, M., Eglinton, G., and Poynter, J., 2000. Dimethylsulfide production variations over the past 200 k.y. in the equatorial Atlantic: A first estimate. Geology, 28(6): 499–502.

    Google Scholar 

  • Higginson, M. J., Altabet, M. A., Murray, D. W., Murray, R. W., and Herbert, T. D., 2004. Geochemical evidence for abrupt changes in relative strength of the Arabian monsoons during a stadial/interstadial climate transition. Geochimica et Cosmochimica Acta, 68(19): 3807–3826.

    Article  Google Scholar 

  • Hinrichs, K. U., Schneider, R. R., Müller, P. J., and Rullkötter, J., 1999. A biomarker perspective on paleoproductivity variations in two Late Quaternary sediment sections from the Southeast Atlantic Ocean. Organic Geochemistry, 30(5): 341–366.

    Article  Google Scholar 

  • Hu, B. Q., Yang, Z. S., Zhao, M. X., Saito, Y., Fan, D. J., and Wang, L. B., 2012. Grain size records reveal variability of the East Asian Winter Monsoon since the Middle Holocene in the Central Yellow Sea mud area, China. Science China Earth Sciences, 55(10): 1–13.

    Google Scholar 

  • Huang, D. J., Fan, X. P., Xu, D. F., Tong, Y. Z., and Su, J. L., 2005. Westward shift of the Yellow Sea warm salty tongue. Geophysical Research Letters, 32(24): L24613.

    Article  Google Scholar 

  • Ikehara, M., Kawamura, K., Ohkouchi, N., Murayama, M., Nakamura, T., and Taira, A., 2000. Variations of terrestrial input and marine productivity in the Southern Ocean (48°S) during the last two deglaciations. Paleoceanography, 15(2): 170–180.

    Article  Google Scholar 

  • Jian, Z., Wang, P., Saito, Y., Wang, J., Pflaumann, U., Oba, T., and Cheng, X., 2000. Holocene variability of the Kuroshio Current in the Okinawa Trough, northwestern Pacific Ocean. Earth and Planetary Science Letters, 184(1): 305–319.

    Article  Google Scholar 

  • Kim, D., Park, B. K., and Shin, I. C., 1999. Paleoenvironmental changes of the Yellow Sea during the Late Quaternary. Geo-Marine Letters, 18(3): 189–194.

    Article  Google Scholar 

  • Kim, J. M., and Kennett, J. P., 1998. Paleoenvironmental changes associated with the Holocene marine transgression, Yellow Sea (Hwanghae). Marine Micropaleontology, 34(1–2): 71–89.

    Article  Google Scholar 

  • Kim, J. M., and Kucera, M., 2000. Benthic foraminifer record of environmental changes in the Yellow Sea (Hwanghae) during the last 15000 years. Quaternary Science Reviews, 19(11): 1067–1085.

    Article  Google Scholar 

  • Kong, G. S., Park, S. C., Han, H. C., Chang, J. H., and Mackensen, A., 2006. Late Quaternary paleoenvironmental changes in the southeastern Yellow Sea, Korea. Quaternary International, 144(1): 38–52.

    Article  Google Scholar 

  • Li, T. G., Li, S. Q., Cang, S. X., Liu, J., and Jeong, H. C., 2000. Paleo-hydrological reconstruction of the Southern Yellow Sea inferred fromforaminiferal fauna in core YSDP102 Oceanologia Etlimnologia Sinica, 31(6): 588–595 (in Chinese with English abstract).

    Google Scholar 

  • Li, T. G., Nan, Q. Y., Jiang, B., Sun, R. T., Zhang, D. Y., and Li, Q., 2009. Formation and evolution of the modern warm current system in the East China Sea and the Yellow Sea since the last deglaciation. Chinese Journal of Oceanology and Limnology, 27(2): 237–249.

    Article  Google Scholar 

  • Lie, H. J., Cho, C. H., Lee, J. H., Lee, S., Tang, Y. X., and Zou, E. M., 2001. Does the Yellow Sea Warm Current really exist as a persistent mean flow? Journal of Geophysical Research, 106(C10): 22199–22210.

    Article  Google Scholar 

  • Lin, C., Ning, X., Su, J., Lin, Y., and Xu, B., 2005. Environmental changes and the responses of the ecosystems of the Yellow Sea during 1976–2000. Journal of Marine Systems, 55(3–4): 223–234.

    Article  Google Scholar 

  • Liu, J., Li, S. Q., Wang, S. J., Yang, Z. G., Ge, Z. S., and Jeong, H. C., 1999. Sea level changes of the Yellow Sea and formation of the Yellow Sea Warm Current since the last deglaciation. Marine Geology and Quaternary Geology, 19: 13–24 (in Chinese with English abstract).

    Google Scholar 

  • Liu, J., Saito, Y., Wang, H., Yang, Z. G., and Nakashima, R., 2007. Sedimentary evolution of the Holocene subaqueous clinoform off the Shandong Peninsula in the Yellow Sea. Marine Geology, 236(3–4): 165–187.

    Article  Google Scholar 

  • Liu, J. P., Milliman, J. D., Gao, S., and Cheng, P., 2004. Holocene development of the Yellow River’s subaqueous delta, North Yellow Sea. Marine Geology, 209(1–4): 45–67.

    Article  Google Scholar 

  • Liu, S., Shi, X., Liu, Y., Qiao, S., Yang, G., Fang, X., Wu, Y., Li, C., Li, X., Zhu, A., and Gao, J., 2010. Records of the East Asian winter monsoon from the mud area on the inner shelf of the East China Sea since the mid-Holocene. Chinese Science Bulletin, 55(21): 2306–2314.

    Article  Google Scholar 

  • Luan, Q. S., 2010. Study on summer and winter living coccolithophores and calcification rates in the coastal China Seas. Doctoral dissertation, Graduate School of the Chinese Academy of Sciences, Qingdao, 34–57.

    Google Scholar 

  • Marlowe, I., Brassell, S., Eglinton, G., and Green, J., 1984. Long chain unsaturated ketones and esters in living algae and marine sediments. Organic Geochemistry, 6: 135–141.

    Article  Google Scholar 

  • Mask, A. C., O’Brien, J. J., and Preller, R., 1998. Wind-driven effects on the Yellow Sea Warm Current. Journal of Geophysical Research, 103(C13): 30713–30729.

    Article  Google Scholar 

  • Rontani, J. F., Bonin, P., Jameson, I., and Volkman, J. K., 2005. Degradation of alkenones and related compounds during oxic and anoxic incubation of the marine haptophyte Emiliania huxleyi with bacterial consortia isolated from microbial mats from the Camargue, France. Organic Geochemistry, 36(4): 603–618.

    Article  Google Scholar 

  • Rontani, J. F., Zabeti, N., and Wakeham, S. G., 2009. The fate of marine lipids: Biotic vs. abiotic degradation of particulate sterols and alkenones in the Northwestern Mediterranean Sea. Marine Chemistry, 113(1–2): 9–18.

    Google Scholar 

  • Rui, X. Q., Liu, C. L., Liang, D., and Zhao, M. X., 2011. Distribution of calcareous nannofossils in the surface sediments of the Southern Yellow Sea. Marine Geology and Quaternary Geology, 31(5): 89–93 (in Chinese with English abstract).

    Article  Google Scholar 

  • Schubert, C. J., Villanueva, J., Calvert, S. E., Cowie, G. L., von Rad, U., Schulz, H., Berner, U., and Erlenkeuser, H., 1998. Stable phytoplankton community structure in the Arabian Sea over the past 200000 years. Nature, 394(6693): 563–566.

    Article  Google Scholar 

  • Schulte, S., and Bard, E., 2003. Past changes in biologically mediated dissolution of calcite above the chemical lysocline recorded in Indian Ocean sediments. Quaternary Science Reviews, 22(15–17): 1757–1770.

    Article  Google Scholar 

  • Seki, O., Ikehara, M., Kawamura, K., Nakatsuka, T., Ohnishi, K., Wakatsuchi, M., Narita, H., and Sakamoto, T., 2004. Reconstruction of paleoproductivity in the Sea of Okhotsk over the last 30 kyr. Paleoceanography, 19(1): PA1016.

    Article  Google Scholar 

  • Sinninghe Damsté, J. S., Rijpstra, W. I. C., and Reichart, G. J., 2002. The influence of oxic degradation on the sedimentary biomarker record II. Evidence from Arabian Sea sediments. Geochimica et Cosmochimica Acta, 66(15): 2737–2754.

    Article  Google Scholar 

  • Song, D. H., Bao, X. W., Wang, X. H., Xu, L. L., Lin, X. P., and Wu, D. X., 2009. The inter-annual variability of the Yellow Sea Warm Current surface axis and its influencing factors. Chinese Journal of Oceanology and Limnology, 27(3): 607–613.

    Article  Google Scholar 

  • Tao, S. Q., Xing, L., Luo, X. F., Wei, H., Liu, Y. G., and Zhao, M. X., 2011. Alkenone distribution in surface sediments of the southern Yellow Sea and implications for the UK37’ thermometer. Geo-Marine Letters, 32(1): 1–11.

    Google Scholar 

  • Versteegh, G., and Zonneveld, K., 2002. Use of selective degradation to separate preservation from productivity. Geology, 30(7): 615.

    Article  Google Scholar 

  • Volkman, J. K., Barrett, S. M., Blackburn, S. I., Mansour, M. P., Sikes, E. L., and Gelin, F., 1998. Microalgal biomarkers: A review of recent research developments. Organic Geochemistry, 29(5–7): 1163–1179.

    Article  Google Scholar 

  • Volkman, J. K., Eglinton, G., Corner, E. D. S., and Sargent, J. R., 1980. Novel unsaturated straight-chain C37–C39 methyl and ethyl ketones in marine sediments and a coccolithophore Emiliania huxleyi. Physics and Chemistry of the Earth, 12(0): 219–227.

    Article  Google Scholar 

  • Wang, B. D., Wang, X. L., and Zhan, R., 2003. Nutrient conditions in the Yellow Sea and the East China Sea. Estuarine, Coastal and Shelf Science, 58(1): 127–136.

    Article  Google Scholar 

  • Wang, F., Liu, C. Y., and Meng, Q. J., 2012. Effect of the Yellow Sea warm current fronts on the westward shift of the Yellow Sea warm tongue in winter. Continental Shelf Research, 45(0): 98–107.

    Article  Google Scholar 

  • Wang, L. B., Yang, Z. S., Zhang, R. P., Fan, D. J., Zhao, M. X., and Hu, B. Q., 2011. Sea surface temperature records of core ZY2 from the central mud area in the South Yellow Sea during last 6200 years and related effect of the Yellow Sea Warm Current. Chinese Science Bulletin, 56(15): 1588–1595.

    Article  Google Scholar 

  • Wang, P. X., and Cheng, X. R., 1988. Distribution of nannoplanktonic fossil in surface sediments of the East China Sea. Acta Oceanologica Sinica, 10(1): 76–85 (in Chinese with English abstract).

    Google Scholar 

  • Werne, J. P., Hollander, D. J., Lyons, T. W., and Peterson, L. C., 2000. Climate-induced variations in productivity and planktonic ecosystem structure from the Younger Dryas to Holocene in the Cariaco Basin, Venezuela. Paleoceanography, 15(1): 19–29.

    Article  Google Scholar 

  • Xiang, R., Yang, Z. S., Saito, Y., Fan, D. J., Chen, M. H., Guo, Z. G., and Chen, Z., 2008. Paleoenvironmental changes during the last 8400 years in the southern Yellow Sea: Benthic foraminiferal and stable isotopic evidence. Marine Micropaleontology, 67(1–2): 104–119.

    Article  Google Scholar 

  • Xiao, S., Li, A., Chen, M., Liu, J., Jiang, F., Li, T., Xie, Q., Xiang, R., and Chen, Z., 2005. Recent 8 kyr mud records of the East Asian winter monsoon from the inner shelf of the East China Sea. Earth Science-Journal of China University of Geosciences, 30(5): 573–581 (in Chinese with English abstract).

    Google Scholar 

  • Xing, L., Zhang, R. P., Liu, Y. G., Zhao, X. C., Liu, S. M., Shi, X. F., and Zhao, M. X., 2011. Biomarker records of phytoplankton productivity and community structure changes in the Japan Sea over the last 166 kyr. Quaternary Science Reviews, 30(19–20): 2666–2675.

    Article  Google Scholar 

  • Xing, L., Zhao, M. X., Zhang, H. L., Sun, Y., Tang, Q. S., Yu, Z. G., and Sun, X. X., 2009. Biomarker records of phytoplankton community structure changes in the Yellow Sea over the last 200 years. Periodical of Ocean University of China, 30(2): 317–322 (in Chinese with English abstract).

    Google Scholar 

  • Xing, L., Tao, S., Zhang, H., Liu, Y., Yu, Z., and Zhao, M., 2011. Distributions and origins of lipid biomarkers in surface sediments from the southern Yellow Sea. Applied Geochemistry, 26(8): 1584–1593.

    Article  Google Scholar 

  • Xing, L., Zhao, M. X., Zhang, H. L., Zhao, X. C., Zhao, X. H., Yang, Z. S., and Liu, C. L., 2012. Biomarker evidence for paleoenviron mental changes in the southern Yellow Sea over the last 8200 years. Chinese Journal of Oceanology and Limnology, 30(1): 1–11.

    Article  Google Scholar 

  • Xu, F., Li, A., Xu, K., Li, T., Chen, S., Wan, S., and Liu, J., 2009. Cold event at 5500 a BP recorded in mud sediments on the inner shelf of the East China Sea. Chinese Journal of Oceanology and Limnology, 27(4): 975–984.

    Article  Google Scholar 

  • Xu, L. L., Wu, D. X., Lin, X. P., and Ma, C., 2009. The study of the Yellow Sea Warm Current and its seasonal variability. Journal of Hydrodynamics, Ser. B, 21(2): 159–165.

    Article  Google Scholar 

  • Yancheva, G., Nowaczyk, N. R., Mingram, J., Dulski, P., Schettler, G., Negendank, J. F. W., Liu, J. Q., Sigman, D. M., Peterson, L. C., and Haug, G. H., 2007. Influence of the intertropical convergence zone on the East Asian monsoon. Nature, 445(7123): 74–77.

    Article  Google Scholar 

  • Yang, S. Y., Jung, H. S., Lim, D. I., and Li, C. X., 2003. A review on the provenance discrimination of sediments in the Yellow Sea. Earth-Science Reviews, 63(1–2): 93–120.

    Article  Google Scholar 

  • Yang, S. Y., and Youn, J. S., 2007. Geochemical compositions and provenance discrimination of the central south Yellow Sea sediments. Marine Geology, 243(1–4): 229–241.

    Article  Google Scholar 

  • Yoo, D. G., Lee, C. W., Kim, S. P., Jin, J. H., Kim, J. K., and Han, H. C., 2002. Late Quaternary transgressive and highstand systems tracts in the northern East China Sea mid-shelf. Marine Geology, 187(3–4): 313–328.

    Article  Google Scholar 

  • Yuan, D. L., and Hsueh, Y., 2010. Dynamics of the cross-shelf circulation in the Yellow and East China Seas in winter. Deep Sea Research Part II: Topical Studies in Oceanography, 57(19–20): 1745–1761.

    Article  Google Scholar 

  • Zang, J. Y., Tang, Y. X., Zou, E. M., and Lie, H. J., 2003. Analysis of Yellow Sea circulation. Chinese Science Bulletin, 48(S1): 12–20.

    Article  Google Scholar 

  • Zimmerman, A. R., and Canuel, E. A., 2000. A geochemical record of eutrophication and anoxia in Chesapeake Bay sediments: Anthropogenic influence on organic matter composition. Marine Chemistry, 69(1–2): 117–137.

    Article  Google Scholar 

  • Zhao, M. X., Huang, C. Y., Wang, C. C., and Wei, G. J., 2006. A millennial-scale U37K’ sea-surface temperature record from the South China Sea (8°N) over the last 150 kyr: Monsoon and sea-level influence. Palaeogeography, Palaeoclimatology, Palaeoecology, 236(1–2): 39–55.

    Article  Google Scholar 

  • Zhao, M. X., Mercer, J. L., Eglinton, G., Higginson, M. J., and Huang, C. Y., 2006. Comparative molecular biomarker assessment of phytoplankton paleoproductivity for the last 160 kyr off Cap Blanc, NW Africa. Organic Geochemistry, 37(1): 72–97.

    Article  Google Scholar 

  • Zhao, Y. Y., Qin, Z. Y., Li, F. Y., and Chen, Y. W., 1990. On the source and genesis of the mud in the central area of the South Yellow Sea. Chinese Journal of Oceanology and Limnology, 8(1): 66–73.

    Article  Google Scholar 

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Zhao, X., Tao, S., Zhang, R. et al. Biomarker records of phytoplankton productivity and community structure changes in the Central Yellow Sea mud area during the Mid-late Holocene. J. Ocean Univ. China 12, 639–646 (2013). https://doi.org/10.1007/s11802-013-2271-0

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