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갈조류 감태(Ecklonia cava Kjellman) 양식 개체군 형태 형질의 월 변화에 대한 고찰

A study on monthly changes in morphological characteristics of Ecklonia cava(Laminariales, Phaeophyceae) aquaculture population

  • 김승오 (국립수산과학원 해조류연구소) ;
  • 유현일 (국립수산과학원 수산식물품종관리센터) ;
  • 허진석 (국립수산과학원 해조류연구소) ;
  • 전시현 (국립수산과학원 수산식물품종관리센터) ;
  • 이상래 (부산대학교 해양연구소) ;
  • 옥정현 (부산대학교 해양연구소)
  • Seung-Oh Kim (Seaweed Research Institute, National Institute of Fisheries Science) ;
  • Hyun Il Yoo (Aquatic Plant Variety Center, National Institute of Fisheries Science) ;
  • Jin Seok Heo (Seaweed Research Institute, National Institute of Fisheries Science) ;
  • Si Hyun Jeon (Aquatic Plant Variety Center, National Institute of Fisheries Science) ;
  • Sang-Rae Lee (Marine Research Institute, Pusan National University) ;
  • Jung Hyun Oak (Marine Research Institute, Pusan National University)
  • 투고 : 2024.01.22
  • 심사 : 2024.03.06
  • 발행 : 2024.03.31

초록

본 연구는 다년생 갈조류인 감태(Ecklonia cava Kjellman)의 생장에 따른 형태 변화를 비교하여 주요 형질의 특성과 변이 폭을 규명하고자 하였다. 양식 개체군 관찰을 위한 조사는 전라남도 진도군 진도읍 수유리 양식장에서 2018년 4월부터 2019년 11월까지 수행하였다. 감태의 형태 형질은 1차엽, 2차엽, 줄기, 부착기의 형태와 특징에 관한 14개 측정 형질과 4개 비율값의 18개를 선별 조사하였다. 본 양성이 시작되는 유엽 단계는 피침상 또는 장타원형의 단순한 형태를 보였고, 3~4개월에는 짧은 줄기와 부착기 발달, 2차엽으로 발달하는 소엽 형성을 시작하였다. 5~7개월에는 1차엽 양쪽에서 2차엽이 불규칙적으로 발달하고, 8~10개월에는 1차엽 너비의 확대와 2차엽의 신장이 진행되었고, 11~12개월에는 2차엽이 장타원형을 이루며, 13~14개월에는 전체 엽면적이 확대되었다. 15~16개월에는 3차엽 열편이 형성되고, 엽체 모양이 훨씬 복잡해지고, 줄기와 부착기 너비도 증가하였다. 17~18개월에는 2차엽의 발달이 뚜렷해지면서, 열편이 발달한다. 19~20개월에는 3차엽이 다수 발달하고, 자연 개체군의 성숙한 개체와 유사한 형태를 이루었다. 주성분분석에서 양식 개체군의 1차년도(Q1)와 2차년도(Q2) 월별 개체군은 주성분 1 (PC1)을 따라 나뉘는데, 2차엽 길이와 너비, 길이/너비, 2차엽 수, 2차엽 거치와 엽면주름 무늬, 부착기 너비와 관련된다. 성체 모양을 갖는 2차년도 양식 개체군과 자연 개체군은 주성분 2를 따라 제주(J), 동해안(E), 남해안(S)의 순서로 분포하는데, 1차엽 길이와 너비, 줄기의 길이와 직경, 줄기 길이/1차엽 길이와 관련된다. 본 연구에서 조사한 양식 개체군의 형태 형성에 따른 월 변화와 성체의 특정 형질값은 감태의 품종 개발에 중요한 기준이 될 것으로 판단되었다.

This study aimed to examine the morphological characteristics and variation in main traits by comparing the growth of individuals of Ecklonia cava Kjellman(Laminariales, Phaeophyceae) under an aquaculture environment. This survey was conducted from April 2018 to November 2019 at the aquafarm in Jindo-gun, Jeollanam-do(South coast of Korea). To classify the morphology of individuals in the aquaculture farm of E. cava, we investigated fourteen morphological characteristics and calculated four ratios between the measured values. Juvenile individuals showed a simple or oblong lanceolate, and at 3-4 months, a short stipe and holdfast developed, along with a bladelet that developed into the secondary blade form. At 5-7 months, secondary blades were found to develop irregularly on the primary blade. At 8-10 months, the primary blade expanded and secondary blades elongated. At 11-12 months, the secondary blades became oblong. At 13-14 months, the thallus area expanded. At 15-16 months, tertiary blades were formed, the thallus became more complex, the stipe thickened, and the holdfast widened. At 17-18 months, secondary blades clearly developed along with lobes. At 19-20 months, tertiary blades developed and became similar to mature natural blades. In the principal component analysis (PCA), the monthly population of the first year(Q1) and that of the second year(Q2) of the cultured population were divided along PC1, which is related to secondary blade morphological characteristics and the holdfast width. Q2 and natural populations are distributed in descending order of volume in Jeju(J), East Coast(E), and South Coast(S) along PC2, which is related to primary blade and stipe morphological characteristics. The results of this study were judged to offer important criteria for the development of different varieties of E. cava.

키워드

과제정보

본 연구는 국립수산과학원의 연구비 지원(R2024026, P2024004)으로 수행되었습니다.

참고문헌

  1. Choi DM, YW Ko, RS Kang and JH Kim. 2015. Morphological and genetic variability among Ecklonia cava (Laminariales, Phaeophyceae) populations in Korea. Algae 30:89-101. https://doi.org/10.4490/algae.2015.30.2.089
  2. Choi SK, YH Kang and SR Park. 2020. Growth responses of kelp species Ecklonia cava to different temperatures and nitrogen sources. Korean J. Environ. Biol. 38:404-415. https://doi.org/10.11626/KJEB.2020.38.3.404
  3. Hong JH, BS Son, BK Kim, HY Chee, KS Song, BH Lee, HC Shin and KB Lee. 2006. Antihypertensive effect of Ecklonia cava extract. Korean J. Pharmacol. 37:200-205.
  4. Hwang EK, IK Hwang, EJ Park, YG Gong and CS Park. 2013a. Cultivation technique of Ecklonia cava Kjellman for restoration of natural resources. Korean J. Environ. Biol. 31:347-352. https://doi.org/10.11626/KJEB.2013.31.4.347
  5. Hwang EK, YG Gong, DS Ha and CS Park. 2010. Nursery and main culture conditions for mass cultivation of the brown alga, Ecklonia cava Kjellman. Kor. J. Fish. Aquat. Sci. 43:687-692. https://doi.org/10.5657/kfas.2010.43.6.687
  6. Hwang EK, YG Gong, IK Hwang, EJ Park and CS Park. 2013b. Cultivation of the two perennial brown algae Ecklonia cava and E. stolonifera for abalone feeds in Korea. J. Appl. Phycol. 25:825-829. https://doi.org/10.1007/s10811-012-9941-y
  7. Hwang SI, BK Shin, YS Kwak and HG Choi. 2021. Comparison between the biomass and habitat suitability index (HSI) of marine forest forming seaweeds. Korean J. Environ. Biol. 39:46-54. https://doi.org/10.11626/KJEB.2021.39.1.046
  8. Kang JW. 1966. On the geographical distribution of marine algae in Korea. Bull. Pusan Fish. Coll. 7:1-125.
  9. Kang RS, KS Won, KP Hong and JM Kim. 2001. Population studies on the kelp Ecklonia cava and Eisenia bicyclis in Dokdo, Korea. Algae 16:209-215.
  10. Kang SK. 2013. Economic analysis of Ecklonia cava aquaculture business. J. Fish. Bus. Adm. 44:69-81. https://doi.org/10.12939/FBA.2013.44.2.069
  11. Kim S, SH Youn, HJ Oh, SK Choi, YH Kang, TH Kim, HJ Lee, KS Choi and SR Park. 2018. Stipe length as an indicator of reproductive maturity in the kelp Ecklonia cava. Ocean Sci. J. 53:595-600. https://doi.org/10.1007/s12601-018-0022-2
  12. Kim S, YH Kang, TH Kim, HJ Lee and SR Park. 2017. Use of morphological characteristics for calculating individual biomass in the kelp Ecklonia cava. J. Appl. Phycol. 29:2587-2593. https://doi.org/10.1007/s10811-017-1140-4
  13. Kim SO, JS Heo, EK Hwang, MS Hwang, SR Lee and JH Oak. 2019. Morphological comparison between aquaculture and natural populations for development of the new varieties of Ecklonia cava. Korean J. Environ. Biol. 37:707-718. https://doi.org/10.11626/KJEB.2019.37.4.707
  14. KHOA. 2019. Report of Real-time Korea Oceanographic Observations 2018. Korea Hydrographic and Oceanographic Agency. Busan, Korea.
  15. KHOA. 2020. Report of Real-time Korea Oceanographic Observations 2019. Korea Hydrographic and Oceanographic Agency. Busan, Korea.
  16. Lee JH, JY Ko, JY Oh, EA Kim, CY Kim and YJ Jeon. 2015a. Evaluation of phlorofucofuroeckol-A isolated from Ecklonia cava (Phaeophyta) on anti -lipid peroxidation in vitro and in vivo. Algae 30:313-323. https://doi.org/10.4490/algae.2015.30.4.313
  17. Lee SH, SM Kang, CH Sok, JT Hong, JY Oh and YJ Jeon. 2015b. Cellular activities and docking studies of eckol isolated from Ecklonia cava (Laminariales, Phaeophyceae) as potential tyrosinase inhibitor. Algae 30:163-170. https://doi.org/10.4490/algae.2015.30.2.163
  18. Lee Y and SY Kang. 2002. A Catalogue of the Seaweeds in Korea. Jeju National University Press. Jeju, Korea.
  19. Lees HR. 2001. The demography and interactions of Ecklonia radiata in Southern New Zealand. Ph.D. Dissertation. University of Canterbury. Christchurch, New Zealand.
  20. Maegawa M. 1990. Ecological studies of Eisenia bicyclis (Kjellman) Setchell and Ecklonia cava Kjellman. Bull. Fac. Bioresour. Mie Univ. 4:73-145.
  21. Maegawa M and W Kida. 1989. Regeneration process of Ecklonia marine forest in the coastal area of Shima Peninsula, central Japan. Jpn. J. Phycol. 37:194-200.
  22. Notoya M. 1997. Chloroplast changes and differentiation of callus cells in Eckloniopsis radicosa (Kjellman) Okamura (Phaeophyta, Laminariales). J. Appl. Phycol. 9:175-178. https://doi.org/10.1023/A:1007910024753
  23. Oh YS, IK Lee and SM Boo. 1990. An annotated account of Korean economic seaweeds for food, medical and industrial uses. Algae 5:57-71.
  24. Okamura K. 1936. Descriptions of Japanese Algae. Uchida Rokakuho Publishing Co. Tokyo, Japan. pp. 269-272.
  25. Park HJ, SY Byeon, SR Park and HJ Lee. 2022. Temporal variation in the community structure of green tide forming macroalgae (Chlorophyta; genus Ulva) on the coast of Jeju Island, Korea based on DNA barcoding. Korean J. Environ. Biol. 40:464-476. https://doi.org/10.11626/KJEB.2022.40.4.464
  26. Serisawa Y, H Akino, K Matsuyama, M Ohno, J Tanaka and Y Yokohama. 2002b. Morphometric study of Ecklonia cava (Laminariales, Phaeophyta) sporophytes in two localities with different temperature conditions. Phycol. Res. 50:193-199. https://doi.org/10.1046/j.1440-1835.2002.00273.x
  27. Serisawa Y, M Aoki, T Hirata, A Bellgrove, A Kurashima, Y Tsuchiya, T Sato, H Ueda and Y Yokohama. 2003. Growth and survival rates of large-type sporophytes of Ecklonia cava transplanted to a growth environment with small-type sporophytes. J. Appl. Phycol. 15:311-318. https://doi.org/10.1023/A:1025183100958
  28. Serisawa Y, Y Yokohama, Y Aruga and A Bellgrove. 2004. Photosynthetic performance of transplanted ecotypes of Ecklonia cava (Laminariales, Phaeophyta). J. Appl. Phycol. 16:227-235. https://doi.org/10.1023/B:JAPH.0000048508.33516.ec
  29. Serisawa Y, Y Yokahama, Y Aruga and J Tanaka. 2002a. Growth of Ecklonia cava (Laminariales, Phaeophyta) sporophytes transplanted to a locality with different temperature conditions. Phycol. Res. 50:201-207. https://doi.org/10.1046/j.1440-1835.2002.00274.x
  30. SRI. 2009. Ecklonia cava Cultivation Techniques. 2009 Report of National Fisheries Research and Development Institute. Seaweed Research Institute, National Fisheries Research & Development Institute. Mokpo, Korea.
  31. Wernberg T. 2005. Holdfast aggregation in relation to morphology, age, attachment and drag for the kelp Ecklonia radiata. Aquat. Bot. 82:168-180. https://doi.org/10.1016/j.aquabot.2005.04.003
  32. Yokohama Y, J Tanaka and M Chihara. 1987. Productivity of the Ecklonia cava community in a bay of Izu peninsula on the Pacific coast of Japan. Bot. Mag. Tokyo 100:129-141. https://doi.org/10.1007/BF02488318