Ecological Responses of Macrobenthic Communities in Tidal Flats to Disturbances by the Great East Japan Earthquake

  • Tatsuki Nishita
  • Wataru Makino
  • Takao Suzuki
  • Jotaro Urabe
Chapter
Part of the Ecological Research Monographs book series (ECOLOGICAL)

Abstract

We investigated changes in taxon richness and composition of macrobenthic communities for four successive years after the tsunamis caused by the Great East Japan Earthquake at six intertidal flats in Sendai Bay, where monitoring had been ongoing before the tsunami. The field surveys showed that although taxon richness decreased in most of intertidal flats immediately after the tsunami struck, it subsequently increased within 1–2 years due to the colonization of many taxa, including those that had not existed in these tidal flats before the tsunamis. However, by 2014 (i.e., 4 years after the tsunami), taxon richness had decreased again to pre-tsunami levels. In addition, taxon composition was close to that found before the tsunami struck, especially in intertidal flats that were subjected to large disturbances by the tsunamis. Thus, a number of opportunistic taxa that had not been observed previously appeared after the Great East Japan Earthquake, but gradually decreased as the community structure recovered. This study also suggests that taxon composition of the macrobenthic communities changed year to year to some extent regardless of the tsunami disturbance. Our findings imply that since macrobenthic communities in intertidal flats are somewhat dynamic, they are not likely to attain the exact same structure as before the tsunamis, even though taxon composition is largely shaped by site-specific environmental conditions.

Keywords

Benthic animals Community structure Natural disturbance Recovery process Sendai Bay Succession Stability Tidal flat 

Notes

Acknowledgments

We thank T. Uchino, G. Kanaya, and K. Kinoshita, Wetlands International Japan, undergraduate students in the biology course at Tohoku University, and all the participants of the citizen research program by Earthwatch Japan for their field support. This study was financially supported by Mitsui & Co., Ltd. Environment Fund (F11-F1-020), Keidanren Committee on Nature Conservation, and the Tohoku Ecosystem-Associated Marine Sciences (TEAMS) project.

References

  1. Balthis WL, Hyland JL, Bearden DA (2006) Ecosystem responses to extreme natural event: impact of three sequential hurricanes in fall 1999 on sediment quality and condition of benthic fauna in the Neuse River estuary, North Carolina. Environ Monit Assess 119:367–389CrossRefPubMedGoogle Scholar
  2. Bongers T, Bongers M (1998) Functional diversity of nematodes. Appl Soil Ecol 10:239–251CrossRefGoogle Scholar
  3. Botter-Carvalho ML, Carvalho PVVC, Santos PJP (2011) Recovery of macrobenthos in defaunated tropical estuarine sediments. Mar Pollut Bull 62:1867–1876CrossRefPubMedGoogle Scholar
  4. Bourrouilh-Le Jan FG, Beck C, Gorsline DS (2007) Catastrophic events (hurricanes, tsunami and others) and their sedimentary records: introductory notes and new concepts for shallow water deposits. Sed Geol 199:1–11CrossRefGoogle Scholar
  5. Cardoso PG, Raffaelli D, Lillebø AI, Verdelhos T, Pardal MA (2008) The impact of extreme flooding events and anthropogenic stressors on the macrobenthic communities’ dynamics. Estuar Coast Shelf Sci 76:553–565CrossRefGoogle Scholar
  6. Collins SL, Glenn SM, Gibson DJ (1995) Experimental analysis of intermediate disturbance and initial floristic composition: decoupling cause and effect. Ecology 76:486–492CrossRefGoogle Scholar
  7. Connell JH (1978) Diversity in tropical rain forests and reefs. Science 199:1302–1310CrossRefPubMedGoogle Scholar
  8. De la Huz R, Lastra M, Junoy J, Castellanos C, Viéitez JM (2005) Biological impacts of oil pollution and cleaning in the intertidal zone of exposed sandy beaches: preliminary study of the “Prestige” oil spill. Estuar Coast Shelf Sci 65:19–29CrossRefGoogle Scholar
  9. Engle VD, Hyland JL, Cooksey C (2009) Effects of hurricane Katrina on benthic macroinvertebrate communities along the northern Gulf of Mexico coast. Environ Monit Assess 150:193–209CrossRefPubMedGoogle Scholar
  10. Fujioka Y, Tabuchi R, Hirata Y, Yoneda R, Patanaponpaiboon P, Poungparn S, Shibuno T, Ohba H (2008) Disturbance and recovery of mangrove forests and macrobenthic communities in Andaman Sea, Thailand following the Indian Ocean Tsunami. In: Proceedings of the 11th international coral reef symposium, pp 1225–1229Google Scholar
  11. Göthlich L, Oschlies A (2015) Disturbance characteristics determine the timescale of competitive exclusion in a phytoplankton model. Ecol Model 296:126–135CrossRefGoogle Scholar
  12. Jaramillo E, Dugan JE, Hubbard DM, Melnick D, Manzano M, Duarte C, Campos C, Sanchez R (2012) Ecological implications of extreme events: footprints of the 2010 earthquake along the Chilean Coast. PLoS One 7:1–8CrossRefGoogle Scholar
  13. Joydas TV, Qurban MA, Al-Suwailem A, Krishnakumar PK, Nazeer Z (2012) Macrobenthic community structure in the northern Saudi waters of the Gulf, 14 years after the 1991 oil spill. Mar Pollut Bull 64:325–335CrossRefPubMedGoogle Scholar
  14. Kanaya G, Suzuki T, Maki H, Nakamura Y, Miyajima Y, Kikuchi E (2012) Effects of the 2011 tsunami on the topography, vegetation, and macrobenthic fauna in Gamo Lagoon, Japan. Jpn J Benthol 67:20–32CrossRefGoogle Scholar
  15. Kanaya G, Suzuki T, Kanou K, Kondoh T, Sato-Okoshi W, Kikuchi E (2016) Ecological consequences of the tsunamis caused by the Great East Japan Earthquake and subsequent disturbance events in a shallow brackish lagoon in Sendai Bay, Japan. In Urabe, Nakashizuka (eds) Ecological impacts of tsunamis on coastal ecosystems: Lessons from the Great East Japan Earthquake, Springer, pp 85–104Google Scholar
  16. Krishnankutty N (2006) Effects of 2004 tsunami on marine ecosystems – a perspective from the concept of disturbance. Curr Sci 90:772–773Google Scholar
  17. Legendre P, Legendre L (1998) Numerical ecology. Elsevier, Amsterdam, p 853Google Scholar
  18. Levin LA, Talley D, Thayer G (1996) Succession of macrobenthos in a created salt marsh. Mar Ecol Prog Ser 141:67–82CrossRefGoogle Scholar
  19. Lomovasky B, Firstater FN, Salazar AG, Mendo J, Iribarne OO (2011) Macro benthic community assemblage before and after the 2007 tsunami and earthquake at Paracas Bay, Peru. J Sea Res 65:205–212CrossRefGoogle Scholar
  20. Miura O, Sasaki Y, Chiba S (2012) Destruction of population of Batillaria attramentaria (caenogastropoda: batillariidae) by tsunami waves of the 2011 Tohoku earthquake. J Molluscan Stud 78:377–380CrossRefGoogle Scholar
  21. Mori A (2010) Disturbance ecology clarifies the non-equilibrium nature of forest ecosystems. Japanese J Ecol 60:19–39 (in Japanese with English abstract)Google Scholar
  22. Mori M, Takahashi T, The 2011 Tohoku Earthquake Tsunami Joint Survey Group (2012) Nationwide post event survey and analysis of the 2011 Tohoku earthquake tsunami. Coast Eng J 54:1–27CrossRefGoogle Scholar
  23. Nakaoka M, Tanaka Y, Mukai H, Suzuki T, Aryuthaka C (2006) Tsunami impacts on biodiversity of seagrass communities in the Andaman Sea, Thailand: (1) seagrass abundance and diversity. The Nagisa World Congress, pp 49–56Google Scholar
  24. Okey TA (1997) Sediment flushing observations, earthquake slumping, and benthic community changes in Monterey Canyon head. Cont Shelf Res 17:877–897CrossRefGoogle Scholar
  25. Perkol-Finkel D, Airoldi L (2010) Loss and recovery potential of marine habitats: an experimental study of factors maintaining resilience in subtidal algal forests at the Adriatic Sea. PLoS One 5:1–11CrossRefGoogle Scholar
  26. Pickett STA (1980) Non-equilibrium coexistence of plants. Bull Torrey Bot Club 107:238–248CrossRefGoogle Scholar
  27. Pierce S, Luzzaro A, Caccianiga M, Ceriani RM, Cerabolini B (2007) Disturbance is the principal α-scale filter determining niche differentiation, coexistence and biodiversity in an alpine community. J Ecol 95:698–706CrossRefGoogle Scholar
  28. Pillay D, Perissinotto R (2008) The benthic macrofauna of the St. Lucia Estuary during the 2005 drought year. Estuar Coast Shelf Sci 77:35–46CrossRefGoogle Scholar
  29. Posey M, Lindberg W, Alphin T, Vose F (1996) Influence of storm disturbance on an offshore benthic community. Bull Mar Sci 59:523–529Google Scholar
  30. Roxburgh SG, Shea K, Wilson JB (2004) The intermediate disturbance hypothesis: patch dynamics and mechanisms of species coexistence. Ecology 85:359–371CrossRefGoogle Scholar
  31. Schlacher TA, Holzheimer A, Stevens T, Rissik D (2011) Impacts of the ‘Pacific Adventurer’ oil spill on the macrobenthos of subtropical sandy beaches. Estuar Coasts 34:937–949CrossRefGoogle Scholar
  32. Sousa WP (1984) The role of disturbance in natural communities. Ann Rev Ecol Syst 15:353–391CrossRefGoogle Scholar
  33. Stubbington R, Boulton AJ, Little S, Wood PJ (2015) Changes in invertebrate assemblage composition in benthic and hyporheic zones during a severe supraseasonal drought. Freshw Sci 34:344–354CrossRefGoogle Scholar
  34. Suzuki T, Sasaki M (2010) Civil procedure for researching benthic invertebrate animals inhabiting tidal flats in eastern Japan. Plankton Benthos Res 5:221–230CrossRefGoogle Scholar
  35. Turner MG, Dale VH (1998) Comparing large, infrequent disturbances: what have we learned? Ecosystems 1:493–496CrossRefGoogle Scholar
  36. Urabe J, Suzuki T, Nishita T, Makino W (2013) Immediate ecological impacts of the 2011 tohoku earthquake tsunami on intertidal flat communities. PLoS One 8(5):1–6CrossRefGoogle Scholar
  37. Whanpetch N, Nakaoka M, Mukai H, Suzuki T, Nojima S, Kawai T, Aryuthaka C (2010) Temporal changes in benthic communities of seagrass beds impacted by a tsunami in the Andaman Sea, Thailand. Estuar Coast Shelf Sci 87:246–252CrossRefGoogle Scholar
  38. White PS, Pickett STA (1985) Natural disturbance and patch dynamics: an introduction. In: Pichett STA, White PS (eds) The ecology of natural disturbance and patch dynamics. Academic, New York, pp 3–13Google Scholar

Copyright information

© Springer Japan 2016

Authors and Affiliations

  • Tatsuki Nishita
    • 1
  • Wataru Makino
    • 1
  • Takao Suzuki
    • 1
  • Jotaro Urabe
    • 1
  1. 1.Graduate School of Life SciencesTohoku UniversitySendaiJapan

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