DOI QR코드

DOI QR Code

Effect of the Density of Heterodera glycines on Soybean Yield

콩씨스트선충(Heterodera glycines)의 밀도가 콩 수량에 미치는 영향

  • Kang, Heonil (Crop Protection Division, National Institute of Agricultural Sciences, Rural Development Administration) ;
  • Park, Byeongyong (Crop Protection Division, National Institute of Agricultural Sciences, Rural Development Administration) ;
  • Park, Sekeun (Crop Protection Division, National Institute of Agricultural Sciences, Rural Development Administration) ;
  • Kim, Eunwha (Crop Protection Division, National Institute of Agricultural Sciences, Rural Development Administration) ;
  • Park, Eunhyeong (Crop Protection Division, National Institute of Agricultural Sciences, Rural Development Administration) ;
  • Ko, Hyoung-Rai (Crop Protection Division, National Institute of Agricultural Sciences, Rural Development Administration)
  • 강헌일 (농촌진흥청 국립농업과학원 작물보호과) ;
  • 박병용 (농촌진흥청 국립농업과학원 작물보호과) ;
  • 박세근 (농촌진흥청 국립농업과학원 작물보호과) ;
  • 김은화 (농촌진흥청 국립농업과학원 작물보호과) ;
  • 박은형 (농촌진흥청 국립농업과학원 작물보호과) ;
  • 고형래 (농촌진흥청 국립농업과학원 작물보호과)
  • Received : 2021.04.01
  • Accepted : 2021.07.01
  • Published : 2021.08.01

Abstract

This study was conducted to investigate the yield loss of soybean by initial density of Heterodera glycines in soil. A soybean cultivar named 'Cheongja5ho' was cultivated as test material in Dangjin city, Chungcheongnam-do, Korea. Each seed was planted with distance of 25 cm in 35 plots by initial density of egg of the cyst nematode on June 21st, and allowed to harvest on November 12st in 2019. As a results, the yield of soybean decreased sharply when as the initial density of eggs of cyst nematode increased. The initial density of eggs in soil affected largely on the decreased yields of the soybean by more than 20% in above 2,000 eggs, and 30% in above 6,000 eggs of the cyst. Beyond the 6,000 eggs, the yield loss was more slowly decreased compared with the above cases. Eggs of H. glycines are widely distributed in Korea, resulting in the serious soybean yield loss by H. glycines.

본 연구는 토양 내 콩씨스트선충(Heterodera glycines)의 초기 밀도에 따른 콩의 수량구성요소 및 수량에 미치는 영향을 규명하기 위하여 실시하였다. 재배포를 35개의 구역을 나누고 콩씨스트선충의 파종 전 토양 내 씨스트 밀도와 알 밀도를 조사하였으며, 수확기 콩의 초장, 협수, 립수, 백립중을 비교 분석하였다. 초기 씨스트의 밀도보다 씨스트 내 알의 밀도가 수량에 더욱 큰 영향을 미쳤으며, 초기 알 밀도가 높을수록협수와 수량이 초기 알 밀도가 높을수록 감소하는 경향을 보였고 토양 100 cm3 당 알의 밀도가 2,000개 이상일 때부터 수량이 20% 이상 급격하게 감소하였다. 본 연구결과를 통하여 콩 재배 시 콩씨스트선충에 의한 피해를 예측할 수 있으며, 국내 콩 재배지의 약 40%가 감염되어 있는 콩씨스트선충에 대한 저항성 품종 육성을 포함한 다양한 방제방법 연구가 필요하다.

Keywords

Acknowledgement

This research was supported by a fund "Cooperative Research Program for Agriculture Science and Technology Department (Project No. PJ014771)" Rural Development Administration, Republic of Korea.

References

  1. Allen, T.W., C.A. Bradley, A.J. Sisson, E. Byamukama, M.I. Chilvers, C.M. Coker, A.A. Collins, J.P. Damicone, A.E. Dorrance, N.S. Dufault, P.D. Esker, T.R. Faske, L.J. Giesler, A.P. Grybauskas, D.E. Hershman, C.A. Hollier, T. Isakeit, D.J. Jardine, H.M. Kelly, R.C. Kemerait, N.M. Kleczewski, S.R. Koenning, J.E. Kurle, D.K. Malvick, S.G. Markell, H.L. Mehl, D.S. Mueller, J.D. Mueller, R.P. Mulrooney, B.D. Nelson, M.A. Newman, L. Osborne, C. Overstreet, G.B. Padgett, P.M. Phipps, P.P. Price, E.J. Sikora, D.L. Smith, T.N. Spurlock, C.A. Tande, A.U. Tenuta, K.A. Wise and J.A. Wrather. 2017. Soybean yield loss estimates due to diseases in the United States and Ontario, Canada, from 2010 to 2014. Plant Health Prog. 18:19-27. https://doi.org/10.1094/PHP-RS-16-0066
  2. Asmus, G.L. and L.C.C.B. Ferraz. 2002. Effect of population densities of Heterodera glycines race 3 on leaf area, photosynthesis and yield of soybean. Fitopatol. Bras. 27:273-278. https://doi.org/10.1590/S0100-41582002000300006
  3. Board, J.E., A.T. Wier and D.J. Boethel. 1995. Source strength influence on soybean yield formation during early and late reproductive development. Crop Sci. 35:1104-1110. https://doi.org/10.2135/cropsci1995.0011183X003500040031x
  4. Choi, Y. and D. Choi. 1983. Survey on soybean parasitic nematodes. Korean J. Pl. Prot. 22:251-261 (in Korean).
  5. Chun, J., M. Jin, N. Jeong, C. Cho, M. Seo, M. Choi, D. Kim, H. Sohn and Y. Kim. 2019. Genetic identification and phylogenic analysis of new varieties and 149 Korean cultivars using 27 InDel markers selected from dense variation blocks in soybean (Glycine max (L.) Merrill). Korean J. Plant Res. 32: 519-542 (in Korean).
  6. Endo, B.Y. and J.N. Sasser. 1958. Soil fumigation experiments for the control of the soybean cyst nematode, Heterodera glycines. Phytopathology 48:571-574.
  7. Han, G., H. Kang, I. Choi, D. Kim, H. Yun and Y. Kim. 2020. Differential morphological, structural and biological characteristics of cysts in Heterodera species in Korea. Plant Pathol. J. 36:628-636. https://doi.org/10.5423/PPJ.OA.07.2020.0143
  8. Han, S.C. and H.J. Cho. 1980. Influence of soybean cyst nematode on growth and yield of soybean. Korean J. Pl. Prot. 19: 31-34 (in Korean).
  9. Ichinohe, M. 1959. Studies on the soybean cyst nematode, Heterodera glycines, and its injury to soybean plants in Japan. Plant Dis. Rep. Suppl. 260:239-248.
  10. Iwahori, H., N. Kanzaki and K. Futai. 2000. A simple, polymerase chain reaction-restriction fragment length polymorphism-aided diagnosis method for pine wilt disease. Forest Pathol. 30:157-164. https://doi.org/10.1046/j.1439-0329.2000.00201.x
  11. Jiang, H. and D.B. Egli. 1995. Soybean seed number and crop growth rate during flowering. Agron. J. 87:264-267. https://doi.org/10.2134/agronj1995.00021962008700020020x
  12. Johnston, J.G. and J.W. Pendleton. 1968. Contribution of leaves at different canopy levels to seed production of upright and lodged soybean. Crop Sci. 8:291-292. https://doi.org/10.2135/cropsci1968.0011183X00080003009x
  13. Kang, B., J. Seo, H. Kim, H. Kim, Y. Lee and B. Lee. 2021. Lodging tolerance and high sprout yield with small seed soybean cultivar 'Haewon' for soy-sprout. Korean J. Breed. Sci. 53:53-59 (in Korean). https://doi.org/10.9787/KJBS.2021.53.1.53
  14. Kang, H., G. Eun, J. Ha, Y. Kim, N. Park, D. Kim and I. Choi. 2016. New cyst nematode, Heterodera sojae n. sp. (Nematoda: Heteroderidae) from soybean in Korea. J. Nematol. 48:280-289. https://doi.org/10.21307/jofnem-2017-036
  15. Kang, H., H. Ko, D. Kim and I. Choi. 2021. Occurrence of the white soybean cyst nematode, Heterodera sojae, and the soybean cyst nematode, H. glycines, in Korea. Plant Dis. 105: 31-33. https://doi.org/10.1094/PDIS-09-19-1932-SC
  16. Kim, D., I. Choi, Y. Ryu and Y. Lee. 2013. Resistance of soybean cultivars to Heterodera glycines HG type 2.5 in Korea. Res. Plant Dis. 19:216-219 (in Korean). https://doi.org/10.5423/RPD.2013.19.3.216
  17. Kim, J., I. Shin, S. Park, M. Choi, J. Lee, B. Ha, J. Lee, Y. Kang, S. Jeong, J. Moon and S. Kang. 2021. Soybean cultivar 'Hipro' for tofu and soymilk with high seed protein content and pod shattering resistance. Korean J. Breed. Sci. 53:60-68 (in Korean). https://doi.org/10.9787/KJBS.2021.53.1.60
  18. Ko, H., H. Kang, E. Park, E. Kim and J. Lee. 2019. Identification of Heterodera glycines (Tylenchida; Heteroderidae) using qPCR. Plant Pathol. J. 35:654-661. https://doi.org/10.5423/PPJ.OA.04.2019.0086
  19. Lauritis, J.A., R.V. Rebois and L.S. Graney. 1983. Development of Heterodera glycines Ichinohe on soybean, Glycine max (L.) Merr., under gnotobiotic conditions. J. Nematol. 15: 272-280.
  20. Lee, G.A., G.W. Crawford, L. Liu, Y. Sasaki and X. Chen. 2011. Archaeological soybean (Glycine max) in East Asia: does size matter? PLoS ONE 6:e26720. https://doi.org/10.1371/journal.pone.0026720
  21. Niblack, T.L. 2005. Soybean cyst nematode management reconsidered. Plant Dis. 89:1020-1026. https://doi.org/10.1094/PD-89-1020
  22. Noel, G.R. 1992. History, Distribution, and Economics: In Riggs, R.D. and J.A. Wrather (eds.), Biology and Management of the Soybean Cyst Nematode, APS Press, St. Paul, MN (USA). pp. 1-13.
  23. Park, E. and S. Lim. 1986. Effects of bacterial blight on soybean yield. Plant Dis. 70:214-217. https://doi.org/10.1094/PD-70-214
  24. Rural Development Administration (RDA). 2002. Standard for investigation of agricultural experiment. Suwon, Korea. p. 87.
  25. Wright, A.J.D., D.L. Sparkes, M. Stevens and M.A. Back. 2019. Hatching dynamics of the beet cyst nematode, Heterodera schachii, following exposure to root leachates from cultivars of sugar beet, white mustard and radish. Nematology 21:813-825. https://doi.org/10.1163/15685411-00003256
  26. Young, L.D. 1992. Epiphytology and life cycle: In Riggs, R.D. and J.A. Wrather (eds.), Biology and Management of the Soybean Cyst Nematode, APS Press, St. Paul, MN (USA). pp. 27-36.
  27. Young, L.D. 1996. Yield loss in soybean caused by Heterodera glycines. Suppl. J. Nematol. 28:604-607.
  28. Zheng, L. and H. Ferris. 1991. Four types of dormancy exhibited by eggs of Heterodera schachtii. Rev. Nematol. 14:419-426.