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Subtidal Macrobenthic Community in Shia Sea, Southwest Coast of Korea

한국 서남해역 시아해의 조하대 저서동물 군집

  • Lim, Jae Geun (Jeollannam-do Ocean & Fisheries Science Institute) ;
  • Lim, Hyun Sig (Department of Marine and Fisheries Resources, Mokpo National University)
  • 임재근 (전라남도 해양수산과학원) ;
  • 임현식 (목포대학교 해양수산자원학과)
  • Received : 2016.11.24
  • Accepted : 2016.12.21
  • Published : 2016.12.31

Abstract

In order to study the community structure and distribution pattern of macrobenthos in the subtidal area of Shia Sea between Haenam peninsula and Shinan-Jindo area at southwest coast of Korea, duplicate sediment samples were taken seasonally by van Veen grab (surface area, $0.1m^2$) from 49 stations between November 2001 and August 2002. The surface sediment facies were muddy sandy gravel near Mokpo-Gu channel, gravel in the Myoungrang channel with high tidal currents, and sandy muddy in the southern Uido area. Ignition loss in the sediment ranged from 0.5 to 1.5% with a mean of 0.6%. A total of 271 taxa were collected with a mean density of $166ind.\;m^{-2}$ and a mean biomass of $29.2g\;m^{-2}$. Polychaetes were dominant faunal group in terms of species richness and abundance, accounting for 34% and 40% of total species number and abundance, respectively. Molluscs accounted for 44% of biomass. Bio-Env analysis revealed that sediment composition and ignition loss affected the spatial distribution of subtidal macrobenthic community in the study area. Major dominant species were Photis longicaudata, Septifer keenae, Maldane cristata, Lumbrineris longifolia, Heteromastus filiformis and Coptothyris grayi. Based on cluster analysis, four station groups were classified. They were associated with sediment types. Bivalve, Striarca symmetrica, polychaetes, Glycera chirori, Heteromastus filiformis and decapod Latreutes planirostris were major contributing fauna in station group A, B, C, and D, respectively. These results suggest that macrobenthic community of the Shia Sea is normally influenced by sediment type and related ignition loss.

해남반도와 신안 및 진도 사이에 위치한 시아해에서 저서동물 주요 우점종, 군집 구조 및 분포 특성을 파악하고자 49개 정점을 설정하고 2001년 11월, 2002년 2월, 5월, 8월에 van Veen grab(채집 면적 $0.1m^2$)을 사용하여 각 정점당 2회씩 저서동물을 채집하였다. 퇴적상은 목포구와 인접한 내측해역은 muddy sandy gravel 퇴적상이, 조류가 강한 명랑수도와 인접한 지역은 gravel의 퇴적상이, 우이도 남측 해역에서는 sand muddy의 퇴적상이었다. 퇴적물내의 유기물 함량은 0.5~1.5%의 범위로서 평균 약 0.6%였다. 전 조사기간 동안 총 271종의 저서동물이 출현하였으며 다모류가 전체의 34%를 점유하여 가장 우점하였으며, 갑각류가 28%, 연체동물이 21%를 점유하였다. 평균 밀도는 $166ind.\;m^{-2}$였으며, 다모류가 약 40%, 갑각류가 26%를 차지하였다. 생체량은 평균 $29.2g\;m^{-2}$로서 연체동물이 44%였다. 입도가 세립한 신안군 압해도에서 입도가 조립한 진도군 외측 해역으로 갈수록 출현 종 수, 밀도 및 생체량이 감소하는 경향을 나타내었으며 Bio-env 분석 결과 군집은 입도 조성과 유기물 함량에 따라 영향을 받는 것으로 나타났다. 주요 우점종으로는 세립질 퇴적상에서는 Photis longicaudata, Septifer keenae, Maldane cristata, Lumbrineris longifolia, Heteromastus filiformis, Coptothyris grayi 등이었다. 집괴 분석 결과 4개의 정점군으로 구분되었으며 SIMPER 분석 결과 정점군 A에서는 Striarca symmetrica, 정점군 B에서는 Glycera chirori, 정점군 C에서는 Heteromastus filiformis, 정점군 D에서는 Latreutes planirostris가 유사도에 영향을 미쳤다. 이 연구결과로부터 시아해의 대형 저서동물 군집은 퇴적상과 이에 수반된 유기물 함량에 따라 영향을 받는 양호한 군집 특성을 보였다.

Keywords

References

  1. Anderson M. 2008. Animal-sediment relationships re-visited: characterising species distributions along an environmental gradient using caninocal analysis and quantile regression splines. J. Exp. Mar. Biol. Ecol. 366:16-27. https://doi.org/10.1016/j.jembe.2008.07.006
  2. Bray JR and JT Curtis. 1957. An ordination of the upland forest communities of southern Wisconsin. Ecol. Monogr. 27:325-349. https://doi.org/10.2307/1942268
  3. Choi JW, OH Yu and WJ Lee. 2003. The summer spatial distributional pattern of macrobenthic fauna in Gwangyang Bay, southern coast of Korea. The Sea J. Korean Soc. Oceanogr. 8:14-28.
  4. Clarke KR, PJ Somerfield and RN Gorley. 2008. Testing of null hypotheses in exploratory community analyses: similarity profiles and biota-environment linkage. J. Exp. Mar. Biol. Ecol. 366:56-69. https://doi.org/10.1016/j.jembe.2008.07.009
  5. Constale AJ. 1999. Ecology of benthic macroinvertebrates in soft-sediment environments: a review of progress towards quantitative models and predictions. Australian J. of Ecology 24:452-476. https://doi.org/10.1046/j.1442-9993.1999.00977.x
  6. Dauvin J-C. 2008. Effects of heavy metal contamination on the macrobenthic fauna in estuaries: The case of the Seine estuary. Marine Pollut. Bull. 57:160-169. https://doi.org/10.1016/j.marpolbul.2007.10.012
  7. Duineveld GCA, A Kunitzer, U Niermann, PAWJ De Wild and JS Gray. 1991. The macrobenthos of the North Sea. Netherlands J. Sea Res. 28:53-65. https://doi.org/10.1016/0077-7579(91)90004-K
  8. Folk RL and WC Ward. 1957. Brazos river bar: A study in the significance of grain-size parameters. J. Sed. Pet. 27:3-26. https://doi.org/10.1306/74D70646-2B21-11D7-8648000102C1865D
  9. Gomez Gesteira JL and J-C Dauvin. 2000, Amphipods are good bioindicators of the impact of oil spills on soft-bottom macrobenthic communities. Marine Pollut. Bull. 40:1017-1027. https://doi.org/10.1016/S0025-326X(00)00046-1
  10. Hutchings P. 1998. Biodiversity and functioning of polychaetes in benthic sediments. Biodiversity and Conservation 7: 1133-1145. https://doi.org/10.1023/A:1008871430178
  11. Jeollanamdo. 2010. Studies for sustainable uses of mud flat in Jeollanamdo, with a specieal reference of Mudflat Provincial Park.
  12. KHOA. 2001. Technical report of Korea Hydrographic and Oceanographic Agency (KOHA).
  13. KNPRI. 2015. Long term ecosystem monitoring after Hebei Spirit Oil Spill. 7th Annual report of Korea National Park Research Institute (KNPRI).
  14. Labrune C, A Gremare, K Guizien and JM Amouroux. 2007. Long-term comparison of soft bottom macrobenthos in the Bay of Banyuls-sur-Mer (north-western Mediterranean Sea): A reappraisal. J. Sea Res. 58:125-143. https://doi.org/10.1016/j.seares.2007.02.006
  15. Lim HS. 2015. Spatial distribution of soft bottom macrobenthos of Yeoja Bay in summer season, south coast of Korea. The Sea J. Korean Soc. Oceanogr. 20:78-91.
  16. Lim HS, HS Park, JW Choi and JG Je. 1999. Macrobenthic community of the Aenggang Bay, southern coast of Korea. J. Oceanol. Soc. Korea 4:80-92.
  17. Lim HS and JS Hong. 1997. Ecology of the macrozoobenthos in Chinhae Bay Korea 2. Distribution pattern of the major dominant species. J. Korean Fish. Soc. 30:161-174.
  18. Lim HS and JS Hong. 2002. Spatial distribution of macrozoobenthos along the salinity gradient and sedimentary environment in the Watancheon estuary, Beobseongpo, southwest coast of Korea. The Sea J. Oceanol. Soc. Korea 7:8-19.
  19. Lim HS and JW Choi. 2001a. Macrobenthic community in the soft bottom around Sorido Island, southern coast of Korea. J. Korean Fish. Soc. 34:225-237.
  20. Lim HS and JW Choi. 2001b. Community structure of subtidal macrobenthos in Hampyung Bay during autumn in 1997, south-west coast of Korea. J. Korean Fish. Soc. 34:327-339.
  21. Lim HS and JW Choi. 2005. Ecological impact of the dyke construction on the marine benthos community of the oligohaline Youngam Lake. J. Korean Fish. Soc. 38:172-183.
  22. Lim HS, JW Choi and SD Choi. 2016. The community structure of macrobenthos and its spatial distribution in the subtidal region off the namhaedo Islandm south coast of Korea. The Sea J. Korean Soc. Oceanogr. 21:11-23.
  23. Lim HS and KY Park. 1998. Community structure of the macrobenthos in the soft bottom of Youngsan River Estuary, Korea 2. The occurrence of summer hypoxia and benthic community. J. Korean Fish. Soc. 31:343-352.
  24. Lim HS and KY Park. 1999. Community structure of macrobenthos in the subtidal soft bottom in semienclosed Youngsan River Esturarine Bay, Southwest coast of Korea. J. Korean Fish. Soc. 32:320-332.
  25. Lim HS, RJ Diaz, JS Hong and LC Schaffner. 2006. Hypoxia and benthic community recovery in Korean coastal waters. Mar. Pollut. Bull. 52:1517-1526. https://doi.org/10.1016/j.marpolbul.2006.05.013
  26. Ma CW, SY Hong and HS Lim. 1995. Macrobenthic fauna of Deukryang Bay, Korea. J. Korean Fish. Soc. 28:503-516.
  27. MLTM. 2009a. Monitoring on the coastal wetland protected areas. Technical Report of Ministry of Land, Transportation and Maritime (MLTM).
  28. MLTM. 2009b. Basic studies on the coastal wetland (Precise survey).
  29. MLTM. 2010. Basic studies on the coastal wetland (Precise survey).
  30. MOMAF. 2000. Studies for sustainable use of tidal flats in Korea. Technical Report of Ministry of Marine Affairs and Fisheries.
  31. Nishijima W, Y Nakano, S Nakai, T Okuda, T Imai and M Okada. 2013. Impact of flood events on macrobenthic community structure on an intertidal flat developing in the Ohta River estuary. Mar. Pollut. Bull. 74:364-373. https://doi.org/10.1016/j.marpolbul.2013.06.028
  32. Occhipinti-Ambrogi A, D Savini and G Forni. 2005. Macrobenthos community structural changes off Cesenatico coast (Emilia Romagna, Nothern Adriatic), a six-year monitoring programme. Science of the Total Environment 353:317-328. https://doi.org/10.1016/j.scitotenv.2005.09.021
  33. Park HS, HS Lim and JS Hong. 2000a. Spatio-and temporal patterns of benthic environment and macrobenthos community on subtidal soft-bottom in Chonsu Bay, Korea. J. Korean Fish. Soc. 33:262-271.
  34. Park HS, JH Lee and JW Choi. 2000b. Spatio-temporal distribution of macrobenthic community on subtidal area around Mokpo. Korea. The Sea J. Korean Soc. Oceanogr. 5:169-176.
  35. Pearson TH and R Rosenberg. 1978. Macrobenthic succession in relation to organic enrichment and pollution of the marine environment. Oceanogr. mar. Biol. Ann. Rev. 16:229-311
  36. Raut D, T Ganesh, NVSS Murty and AV Raman. 2005. Macrobenthos of Kakinada Bay in the Godavari delta, east coast of India: comparing decadal changes. Estuarine, Cosatal and Shelf Sci. 62:609-620. https://doi.org/10.1016/j.ecss.2004.09.029
  37. Shannon CE and W Weaver. 1963. The Mathematical Theory of Communication. Univ. of Illinois Press, Urbana.
  38. Shin HC, JW Choi and CH Koh. 1989. Faunal assemblages of benthic macrofauna in inter and subtidal rigion of the inner Kyeonggi Bay, West coast of Korea. J. Oceanol. Soc. Korea 24:184-193.
  39. Whittacker RJ. 1975. Communities and Ecosystems, 2nd Edition (ed.). Macmillan, New York, pp. 1-385.
  40. Wildsmith MD, TH Rose, IC Potter, RM Warwick and KR Clarke. 2011. Benthic macroinvertebrates as indicators of environmental deterioration in a large microtidal estuary. Mar. Pollut. Bull. 62:525-538. https://doi.org/10.1016/j.marpolbul.2010.11.031
  41. YNU. 2002. Environmental assessment in sand mining area in west coast of Korea. Interim Report, Yeosu National University.
  42. Yoon SP, YJ Kim, RH Jung, CH Moon, SJ Hong, WC Lee and SS Park. 2008. Benthic environments and macrobenthic polychaete community structure in the winter of 2005-2006 in Gamak Bay, Korea. J. Korean Soc. Oceanogr. 13:67-82.