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Evaluation of Insecticidal and Antifeeding Activities of Eco-friendly Organic Insecticides Against Agricultural Insect Pests

농업해충에 대한 친환경유기농자재들의 살충력 및 섭식저해력 평가

  • Kim, Yoo Hwa (Team of Research & Development, Nareso Co., Ltd.) ;
  • Na, Young-Eun (R&D Coordination Division, RDA) ;
  • Kim, Min Joon (Team of Research & Development, Nareso Co., Ltd.) ;
  • Choi, Byung Ryul (National Academy Agricultural Science) ;
  • Jo, Hyeong-Chan (Department of Rehabilitation Welfare, College of Health Sciences and Social Welfare, Woosuk University) ;
  • Kim, Soon-Il (Team of Research & Development, Nareso Co., Ltd.)
  • 김유화 ((주)나리소 연구개발전담팀) ;
  • 나영은 (농촌진흥청 연구운영과) ;
  • 김민준 ((주)나리소 연구개발전담팀) ;
  • 최병렬 (국립농업과학원 작물보호과) ;
  • 조형찬 (우석대학교 보건복지대학 재활학과) ;
  • 김순일 ((주)나리소 연구개발전담팀)
  • Received : 2015.05.08
  • Accepted : 2015.05.15
  • Published : 2015.06.01

Abstract

Insecticidal and antifeeding activities of 29 commercialized eco-friendly organic products for managing plant diseases and insect pests against Plutella xylostella larvae, Spodoptera exigua larvae, Frankliniella occidentalis adults, and Myzus persicae adults were tested using spraying and leaf dipping bioassays under laboratory conditions. Products containing 60% Sophora extract (EOIS) and mixtures (EOISm) with Sophora extract, Stemona japonica extract, Melia azedarach extract, and Nepeta cataria extract as well as mixtures (EOISc) with Sophora extract, Chenopodium ambrosioides extract, and Melia azedarach extract as active ingredients showed strong insecticidal activity at recommended concentration against P. xylostella larvae. At half concentration, their insecticidal activities were decreased under 50%. The EOIS gave good insecticidal activity against S. exigua larvae and also showed 85% and 95% insecticidal activity at 24 and 48 hours after treatment to F. occidentalis adults, respectively. For M. persicae adults, EOISm and mixtures (EOIR) containing rape seed extract, neem extract, and castar oil produced 93% and 68% insecticidal activity, but their activities did not be increased at double concentration. EOISm only showed 100% contact toxicity against M. persicae adults exposed to dipping leaves. Interestingly, the insecticidal activity of EOIR and EOICi (citronella oil and derris extract) against M. persicae adults was increased with exposed time and concentration. In addition, EOICe (cedar oil), EOIS, EOISm, EOISc, EOIM (microorganism), EOIR, EOIPe (plant extract), and EOIT (tea tree extract) gave strong antifeeding activity against S. exigua and P. xylostella larvae. EOIB, EOIBs, EOIM, EOICi, and EOIMc showed above 70% antifeeding activity to the lepidopteran larvae. These results indicate that mixtures containing 2 to 3 plant extracts with Sophora extract show good activities against insect pests, although the difference of insecticidal and antifeeding activities was produced depending on both a tested insect species and an active ingredient or concentration.

충해 또는 병충해 관리용 친환경유기농자재로 목록공시된 제품 29종의 배추좀나방과 파밤나방 유충, 복숭아혹진딧물 성충, 꽃노랑총채벌레 성충에 대한 살충과 섭식저해활성을 분무법과 잎침지법을 이용하여 실내에서 평가하였다. 배추좀나방 유충에 대해 추천농도 분무 또는 잎침지시 유효성분으로 고삼 추출물 60% 단제(EOIS)와 고삼외 3종 식물 추출물(백부근, 멀구슬나무, 개박하, EIOSm) 및 고삼외 2종 식물추출물(EOISc)을 함유한 혼합제의 살충력이 우수했다. 하지만 반량 처리 시 그 활성은 50% 이하로 감소되었다. 파밤나방 유충에 대해서는 고삼 60%단제(EOIS)만이 우수한 살충력을 보였고, 비슷하게 꽃노랑총채벌레 성충에 대해 잎침지 후 24시간과 48시간 노출 시 85%와 95%의 살충력을 나타냈다. 복숭아혹진딧물 성충에 대한 분무시험에서 고삼 외 3종 혼합제(EOISm)와 유채외 2종 혼합제(EOIR)가 93%와 68% 살충력을 보였는데, 농도를 배량 증가시켜도 살충력은 크게 향상되지 않는 경향을 보였다. 추천농도 잎침지에서는 고삼외 3종 혼합제(EIOSm)만이 100%의 강한 접촉독성을 나타냈는데, 노출 시간과 농도를 증가시키면 시트로넬라오일외 1종(EOICi)과 유채외 2종 혼합제(EOIR)들의 살충력이 증가하였다.흥미롭게도 cedar oil 16%(EOICe), 고삼 60% 단제(EOIS), 고삼외 3종 혼합제(EIOSm), 고삼외 2종 혼합제(EOISc), 미생물 89.62%(EOIM), 유채외 2종 혼합제(EOIR), 식물추출물(EOIPe), 차나무추출물 48%(EOIT)제 등은 파밤나방에 대해 분무처리 시 강한 섭식저해활성을 나타냈다. 또한 배추좀나방 유충에 대해서도 이들 혼합제들 이외에 3종 미생물제들(EOIB, EOIM, EOIBs)과 시트로넬라오일외 1종(EOICi), 겨자외 2종(EOIMc) 등의 식물 추출물 혼합제들이 70% 이상의 섭식저해활성을 나타냈다. 이상의 결과, 대상 곤충 종 및 유효성분이나 처리량에 따라 살충력과 섭식저해력이 차이를 보였으나, 전체적으로 고삼추출물외 2-3종 식물추출물을 복합적으로 함유한 혼합제들의 유효력이 우수하게 나타남을 알 수 있었다.

Keywords

References

  1. Amoabeng, B.W., Gurr, G.M., Gitau, C.W., Nicol, H.I., Munyakazi, L., Stevenson, P.C., 2013. Tri-trophic insecticidal effects of African plants against cabbage pests. PLoS One. 8(10), e78651 (doi: 10.1371/journal.pone.0078651).
  2. Bass, C., Puinean, A.M., Zimmer, C.T., Denholm, I., Field, L.M., Foster, S.P., Gutbrod, O., Nauen, R., Slater, R., Williamson, M.S., 2014. The evolution of insecticide resistance in the peach potato aphid, Myzus persicae. Insect Biochem. Mol. Biol. 51, 41-51. https://doi.org/10.1016/j.ibmb.2014.05.003
  3. Charleston, D.S., Kfir, R., Vet, L.E., Dicke, M., 2005. Behavioural responses of diamondback moth Plutella xylostella (Lepidoptera: Plutellidae) to extracts derived from Melia azedarach and Azadirachta indica. Bull. Entomol. Res. 95, 457-465.
  4. Chaudhary, A., Sharma, P., Nadda, G., Tewary, D.K., Singh, B., 2011. Chemical composition and larvicidal activities of the Himalayan cedar, Cedrus deodara essential oil and its fractions against the diamondback moth, Plutella xylostella. J. Insect Sci. 11, 1-10.
  5. Che, W., Shi, T., Wu, Y., Yang, Y., 2013. Insecticide resistance status of field populations of Spodoptera exigua (Lepidoptera: Noctuidae) from China. J. Econ. Entomol. 106, 1855-1862. https://doi.org/10.1603/EC13128
  6. Chiasson, H., Vincent, C., Bostanian, N.J., 2004. Insecticidal properties of a Chenopodium-based botanical. J. Econ. Entomol. 97, 1378-1383. https://doi.org/10.1093/jee/97.4.1378
  7. Choi, H.K., So, I.Y., Park, K.H., 1984. Studies on the correlation between virus -iseases and aphid vectors in radish fields. Korean J. Appl. Entomol. 23, 28-36.
  8. Choi, I.J., Kwon, H.H., Lee, H.H, Son, H.G, Hong, S.K., Kang, J.W., Park, Y.S., 2013. Evaluation of insecticidal activity of plant extracts against the diamondback moth, Plutella xylostella (Lepidoptera: Plutellidae) on Vegetable Plant. Korean J. Plant Res. 26, 19-25. https://doi.org/10.7732/kjpr.2013.26.1.019
  9. Cloyd, R.A., Galle, C.L., Keith, S.R., Kalscheur, N.A., Kemp, K.E., 2009. Effect of commercially available plant-derived essential oil products on arthropod pests. J. Econ. Entomol. 102, 1567-1579. https://doi.org/10.1603/029.102.0422
  10. Demirozer, O., Tyler-Julian, K., Funderburk, J., Leppla, N., Reitz, S., 2012. Frankliniella occidentalis (Pergande) integrated pest management programs for fruiting vegetables in Florida. Pest Manag. Sci. 68, 1537-1545. https://doi.org/10.1002/ps.3389
  11. Edelson, J.V., Duthie, J., Roberts, W., 2002. Toxicity of biorational insecticides: activity against the green peach aphid, Myzus persicae (Sulzer). Pest Manag. Sci. 58, 255-260. https://doi.org/10.1002/ps.444
  12. e-Narajipyo, 2014. The index of agricultural section: the trend of production of eco-friendly agricultural products. http://index.go.kr/potal/main/EachDtlPageDetail.do?idx_cd=1292
  13. Furlong, M.J., Wright, D.J., Dosdall, L.M., 2013. Diamondback moth ecology and management: problems, progress, and prospects. Annu. Rev. Entomol. 58, 517-541. https://doi.org/10.1146/annurev-ento-120811-153605
  14. Huang, S.H., Xian, J.D., Kong, S.Z., Li, Y.C., Xie, J.H, Lin, J., Chen, J.N., Wang, H.F., Su, Z.R., 2014. Insecticidal activity of pogostone against Spodoptera litura and Spodoptera exigua (Lepidoptera: Noctuidae). Pest Manag. Sci. 70, 510-516. https://doi.org/10.1002/ps.3635
  15. Hwang, I.C., Kim, J., Kim, H.M., Kim, D.I., Kim, S.G., Kim, S.S,, Jang, C., 2009. Evaluation of toxicity of plant extract made by neem and matrine against main pests and natural enemies. Korean J. Appl. Entomol. 48, 87-94. https://doi.org/10.5656/KSAE.2009.48.1.087
  16. Janmaat, A.F., de Kogel, W.J., Woltering, E.J., 2002. Enhanced fumigant toxicity of p-cymene against Frankliniella occidentalis by simultaneous application of elevated levels of carbon dioxide. Pest Manag. Sci. 58, 167-173. https://doi.org/10.1002/ps.432
  17. Jeon, H.Y., Kim, H.H., 2006. Damage and seasonal occurrence of major insect pests by cropping period in environmentally friendly lettuce greenhouse. Korean J. Appl. Entomol. 45, 275-282.
  18. Juarez, Z.N., Fortuna, A.M., Sanchez-Arreola, E., Lopez-Olguin, J.F., Bach, H., Hernandez, L.R.. 2014. Antifeedant and phagostimulant activity of extracts and pure compounds from Hymenoxys robusta on Spodoptera exigua (Lepidoptera: Noctuidae) larvae. Nat. Prod. Commun. 9, 895-888.
  19. Khumrungsee, N., Pluempanupat, W., Kainoh, Y., Saguanpong, U., Bullangpotin, V., 2010. Toxicity of ethyl acetate extract from Jatropha gossypifolia senescent leaves against Spodoptera exigua Hubner (Lepidoptera: Noctuidae) and Meteorus pulchricornis (Hymenoptera: Braconidae). Commun. Agric. Appl. Biol. Sci., 75, 405-410.
  20. Kim, H.H., Cho, S.R., Lee, D.W., Jeon, H.Y., Park, C.G., Choo, H.Y., 2006. Biological control of diamondback moth, Plutella xylostella with Korean isolates of entomopathogenic nematodes (Steinernematid and Heterorhabditid) in greenhouse. Korean J. Appl. Entomol. 45, 201-209.
  21. Kim, I.S., Kim, I.S., 2009. Status and future prospects of pest control agents in environmentally-friendly agriculture, and importance of their commercialization. Korean J. Environ. Agric. 28, 301-309. https://doi.org/10.5338/KJEA.2009.28.3.301
  22. Kim, M.H., Lee, S.C., 1991. Bionomics of diamond-back moth, Plutella xylostella (Lepidoptera: Plutellidae) in southern region of korea. Korean J. Appl. Entomol. 30, 169-173.
  23. Kim, S.H., Lee, S.W. Kim, I.S.,, Lee, M.H., 1986. Colonizing aphid species and their seasonal fluctuations on some fruit trees in Suwon. Korean J. Appl. Entomol. 25, 209-213.
  24. Kim, T.S., An, T.J., Jung, J.K., Bang, J.K., Chung, H.G., 2005. Research for the development of repellents and pesticidal materials originated by natural products. Treat. Crop. Sci. 6, 615-619.
  25. Kim, S.K., Jin, J.H., Lim, C.K., Hur, J.H., Cho, S.Y.. 2009. Evaluation of insecticidal efficacy of plant extracts against major insect pests. Kor. J. Pestic. Sci. 13, 165-170.
  26. Kwon, H.R., Kim, S.H., Park, M.W., Jo, S.H., Shin, H.S., Cho, H.S., Seo, M.J., Yu, Y.M., Youn, Y.N., 2011. Environmentally-friendly control of Riptortus pedestris (Hemiptera: Alydidae) by environmental friendly agricultural materials. Korean J. Pestic. Sci. 38, 413-419.
  27. Li, Z.Y., Gu, Y.C., Irwin, D., Sheridan, J., Clough, J., Chen, P., Peng, S.Y., Yang, Y.M., Guo, Y.W., 2009. Further Daphniphyllum alkaloids with insecticidal activity from the bark of Daphniphyllum macropodum M(IQ). Chem. Biodivers. 6, 1744-1750. https://doi.org/10.1002/cbdv.200800274
  28. Lu, M., Wu, W., Liu, H., 2013. Insecticidal and feeding deterrent effects of fraxinellone from Dictamnus dasycarpus against four major pests. Mol. 18, 2754-2762. https://doi.org/10.3390/molecules18032754
  29. Panvongsa, W., Preedawan, T., Boonsoong, B., Bullangpoti, V., 2012. Antifeedant effect of Jatropha gossypifolia senescent leaf extract on Spodoptera exigua. Commun. Agric. Appl Biol Sci. 77, 715-719.
  30. Pavela, R.,. 2005. Insecticidal activity of some essential oils against larvae of Spodoptera littoralis. Fitoterapia. 76, 691-696. https://doi.org/10.1016/j.fitote.2005.06.001
  31. Rachokarn, S., Piyasaengthong, N., Bullangpoti, V., 2008. Impact of botanical extracts derived from leaf extracts Melia azedarach L. (Meliaceae) and Amaranthus viridis L. (Amaranthaceae) on populations of Spodoptera exigua (Hubner) (Lepidoptera: Noctuidae) and detoxification enzyme activities. Commun. Agric. Appl. Biol. Sci. 73, 451-457.
  32. Ryu, T.H., Park, S.E., Ko, N.Y., Kim, J.G., Shin, H.S., Kwon, H.R., Kim, Y.G., Lee, B.H., Seo, M.J., Yu, Y.M., Youn, Y.N., 2013. Seasonal occurrences of insect pests and control effects of eco-friendly agricultural materials (EFAMs) in the field of Lycium chinense under environment-friendly management. Korean J. Pestic. Sci. 17, 402-410. https://doi.org/10.7585/kjps.2013.17.4.402
  33. Santos, V.C., de Siqueira, H.A., da Silva, J.E., de Farias, M.J., 2011. Insecticide resistance in populations of the diamondback moth, Plutella xylostella (L.) (Lepidoptera: Plutellidae), from the state of Pernambuco, Brazil. Neotrop. Entomol. 40, 264-270. https://doi.org/10.1590/S1519-566X2011000200017
  34. SAS Institute, 2004. SAS OnlineDoc1, Version 8.01. Statistical Analysis System Institute, Cary, North Carolina.
  35. Scott, I.M., Jensen, H., Scott, J.G., Isman, M.B., Arnason, J.T., Philogene, B.J., 2003. Botanical insecticides for controlling agricultural pests: piperamides and the Colorado Potato Beetle Leptinotarsa decemlineata say (Coleoptera: Chrysomelidae). Arch. Insect Biochem. Physiol. 54, 212-225. https://doi.org/10.1002/arch.10118
  36. Sivasubramanian, A., Gadepalli, N.KK, Rathnasamy, R., Campos, A.M., 2013. A new antifeedant clerodane diterpenoid from Tinospora cordifolia. Nat. Prod. Res. 27, 1431-1436. https://doi.org/10.1080/14786419.2012.722088
  37. Tang, C.P., Chen, T., Velten, R., Jeschke, P., Ebbinghaus-Kintscher, U., Geibel, S., Ye, Y., 2008. Alkaloids from stems and leaves of Stemona japonica and their insecticidal activities. J. Nat. Prod. 71, 112-116. https://doi.org/10.1021/np070427k
  38. Yu, T.C., Luo, W.C., Ding, J., Yan, L., Xiao, T., Niu, H.T., 2007. Effects of applying Sophora alopecuroids extracts and emamectin on the growth, development, and fecundity of diamondback moth Plutella xylostella. Ying Yong Sheng Tai Xue Bao. 18, 2791-2794.

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