DOI QR코드

DOI QR Code

Genetic Diversity and Structure of a Rare and Endemic, Spring Ephemeral Plant Corydalis filistipes Nakai of Ullung Island in Korea

울릉도 희귀.특산 식물 섬현호색의 유전적 다양성과 구조

  • Kim, Jin-Seok (Division of Plant Conservation, Korea National Arboretum) ;
  • Yang, Byeong-Hoon (Division of Genetic Resources, Korea Forestry Research Institute) ;
  • Chung, Jae-Min (Division of Plant Conservation, Korea National Arboretum) ;
  • Lee, Byeong-Cheon (Division of Plant Conservation, Korea National Arboretum) ;
  • Lee, Jae-Cheon (Division of Genetic Resources, Korea Forestry Research Institute)
  • Published : 2006.06.01

Abstract

For the spring ephemeral and myrmecochorous perennia, Corydalis filistipes Nakai (Fumariaceae), rare and narrow endemic to Ullung Island in Korea, genetic diversity and structure of 4 subpopulations of the species were investigated with allozyme markers. Levels of genetic diversity (A=1.73, $P_{95%}$=61..2%, Ho=0.201, He=0.167) were relatively lower than those of other endemic species with widespread distribution range, but considerably higher than other endemic species with similar life history traits isolated in island. The moderate level of genetic diversity within subpopulations in C. filistipes is characteristic of the species with predominantly outcrossing, myrmecochorous seed dispersal by dual function of the elaisome and mode of sexual and asexual reproduction by the cleistogamy. The analysis of fixation indices showed an overall excess of heterozygotes (mean $F_{IS}=-0.1889,\;F_{IT}=-0.1226$) relative to H-W expectations. About 5.6% of the total genetic variation was found among subpopulations ($F_{ST}$=0.0557). The strategies of reasonable conservation and management, and the maintenance mechanism of genetic diversity of Corydalis filistipes Nakai, endemic plant species in Korea were discussed.

울릉도의 특산 식물종으로서 희귀식물종이며, 춘계 단명성 식물로서 개미에 의해 종자 산포가 이루어지는 섬현호색(Corydalis filistipes Nakai) 4개의 아집단에 대하여 합리적인 보전 및 관리 대책 수립을 위하여 9 개의 동위효소 marker를 이용하여 유전적 다양성과 구조를 분석하였다. 그 결과 평균 대립 유전자의 수(A)는 1.73개, 95% 수준에서 다형적 유전자좌의 비율은(P)은 61.2%, 이형접합체의 평균 관측치(Ho)는 0.201, 기대치(He)는 0.167로서 분포역이 넓은 특산 식물 종들에 비해서는 낮은 수준이지만, 섬에 고립된 유사한 생활사를 갖는 특산식물 종들에 비해서는 높은 유전적 다양도를 유지하고 있는데, 그 이유는 소집단이기는 하나 적정수준의 개체수가 유지되고 있고, 타가수정을 주로 하며 개미에 의해 종자 산포가 이루어져 적응력이 높고, 또한 폐쇄화에 의한 유 무성 번식 체계를 겸하기 때문인 것으로 판단된다. 그리고 유전적 구조분석 결과 아집단내($F_{IS}$)와 전체 아집단($F_{IT}$)의 근친교 배계수가 각각 -0.1889 와 -0.1226로서 H-W의 평형구조에 비해 이형접합자의 빈도가 높았으며, 아집단간 유전적 분화도는 매우 낮은($F_{ST}=0.0557$)결과를 보였다. 그리고 우리나라 희귀 및 특산 식물종인 섬현호색의 유전적 변이의 유지 기작과 합리적인 보전과 관리 대책을 논의하였다.

Keywords

References

  1. 양인석. 1956. 울릉도의 식물. 경북대논문집 1: 245-274
  2. 오수영. 1978. 울릉도산 관속식물상에 관한 연구. 경북대논문집 25: 131-201
  3. 이석우, 김찬수, 조경진, 최완용. 1997. 희귀 수종 시로미의 유전변이. 한육지 29: 376-381
  4. Chung HG, JM Chung, MG Chung. 1998. Allozyme varaition in six flowering plant species characterizing Ullung Island, Korea. J Jap Bot 73: 241-247
  5. Chung MG. 1994. Genetic variation and population structure in Korean endemic species: III. Hosta minor (Liliaceae). J Plant Res 107: 377-383 https://doi.org/10.1007/BF02344060
  6. Chung MG. 1995. Genetic diversity in two Island endemics, Hosta venusta and H. tsushimensis (Liliaceae). J Jap Bot 70: 322-327
  7. Ellstrand NC, DE Elam. 1993. Population genetuic consequences of small population size: Implications for plant conservation. Ann Rev Ecol Syst 24: 217-242 https://doi.org/10.1146/annurev.es.24.110193.001245
  8. Farnsworth E. 2001. New England Plant Conservation Program, Conservation and Research Plan, Corydalis flavula (Raf.) DC Yellow Corydalis. New England wild Flower Society, 180, Hemenway Road, Framingham, MA 01701, 508/877-7630
  9. Francisco-Ortega J, A Santos-Guerra, SC Kim, DJ Crawford. 2000. Plant genetic diversity in the Canary Islands: A conservation perspective. Am J Bot 87: 909-919 https://doi.org/10.2307/2656988
  10. Frankham R. 1996. Do island populations have less genetic variation than mainland populations? Heredity 78: 311-327 https://doi.org/10.1038/hdy.1997.46
  11. Frankham R. 1998. Inbreeding and extinction: Island population. Conserv Biol 12: 665-675 https://doi.org/10.1046/j.1523-1739.1998.96456.x
  12. Hamrick JL and JW Godt. 1989. Allozyme diversity in plant species. in: Plant Population Genetic Resources (Brown AHD, Clegg MT, Kahler AL, Weir BS eds.). Sinauer Associates Inc. Publishers, Sunderland, MA. pp 43-63
  13. Hanzawa FM, AJ Beattie and A Holmes. 1985. Dual function of the elaisome of Corydalis aurea (Fumariaceae): Attraction of dispersal agents and repulsion of Peromyscus maniculatus, a seed predator. Am J Bot 72(11): 1707-1711 https://doi.org/10.2307/2443727
  14. Karron JD. 1987. A comparision of levels of genetic polymorphisms and self-compatibility in geographically restricted and widespread plant congeners. Evolutionary Ecology 1: 47-58 https://doi.org/10.1007/BF02067268
  15. Kudo G, Nishikawa Y, Kasagi T, Kosuge S. 2004. Does seed production of spring ehpemerals decrease when spring comes early?. Ecol Res 19: 255-259 https://doi.org/10.1111/j.1440-1703.2003.00630.x
  16. Lee SW, Kim YM, Kim WW, Jang SS, Chung JM. 2003. Genetic variation and structure of Rhododendron brachycarpum D. Don. a rare and endangerd species in Korea. Silvae Genetica 51(5-6): 215-219
  17. Levene H. 1949. On a matching problem arising in genetics. Ann Math Stat 20: 91-94 https://doi.org/10.1214/aoms/1177730093
  18. Min BM. 2003. Population's limit of Corydalis (Sect. Pes-gallinaceua) group living in the same area. Korean J Ecol 26: 173-180 https://doi.org/10.5141/JEFB.2003.26.4.173
  19. Nakanishi H. 1994. Myrmecochorous adaptations of Corydalis species (Papaveraceae) in southern Japan. Ecol Res 9: 1-8 https://doi.org/10.1007/BF02347236
  20. Nei M. 1978. Estimation of average heterozygosity and genetic distance from a small number of individuals. Genetics 89: 583-590
  21. Sneath PHA, RR Sokal. 1973. Numerical taxonomy. Freeman, San Francisco, Calif
  22. Swofford DL, RB Selander. 1989. BIOSYS-1: a computer program for the analysis of allelic variation in population genetics and biochemical systematics. Release 1.7. Illinois Natural History Survey. II
  23. Wright S. 1965. The interpretation of population structure by F-statistics with special regard to systems of mating. Evolution 15: 395- 420
  24. Yeh FC, Yang RC, Boyle T. 1997. POPGENE. Microsoft windowbased freeware for population genetic analysis. Department of Renewable Resources. University of Alberta, Edmonton, AB, Canada

Cited by

  1. Phylogenetic Relationship of Physocarpus insularis (Rosaceae) Endemic on Ulleung Island: Implications for Conservation Biology vol.53, pp.1, 2010, https://doi.org/10.1007/s12374-009-9093-z
  2. Characteristics of Seed Germination and Potted Seedlings Growth of Endemic Species, Sambucus sieboldiana var. pendula and Sambucus sieboldiana for. xanthocarpa vol.103, pp.3, 2014, https://doi.org/10.14578/jkfs.2014.103.3.359
  3. The characteristics of seed production in an Adonis multiflora (Ranunculaceae) population vol.37, pp.4, 2014, https://doi.org/10.5141/ecoenv.2014.020