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Seasonal migration of Cnaphalocrocis medinalis (Lepidoptera: Crambidae) over the Bohai Sea in northern China

Published online by Cambridge University Press:  05 June 2014

X.-W. Fu
Affiliation:
State Key Laboratory for Biology of Plant Diseases and Insect Pests, Institute of Plant Protection, Chinese Academy of Agricultural Sciences, Beijing 100193, People's Republic of China
C. Li
Affiliation:
State Key Laboratory for Biology of Plant Diseases and Insect Pests, Institute of Plant Protection, Chinese Academy of Agricultural Sciences, Beijing 100193, People's Republic of China
H.-Q. Feng
Affiliation:
Institute of Plant Protection, Henan Academy of Agricultural Sciences, Zhengzhou 450002, People's Republic of China
Z.-F. Liu
Affiliation:
Institute of Plant Protection, Shanxi Academy of Agricultural Sciences, Taiyuan 030032, People's Republic of China
J.W. Chapman
Affiliation:
Department of Agro-Ecology, Rothamsted Research, Harpenden, Hertfordshire AL5 2JQ, UK Environment and Sustainability Institute, University of Exeter, Penryn, Cornwall TR10 9EZ, UK
D.R. Reynolds
Affiliation:
Department of Agro-Ecology, Rothamsted Research, Harpenden, Hertfordshire AL5 2JQ, UK Natural Resources Institute, University of Greenwich, Chatham, Kent ME4 4TB, UK
K.-M. Wu*
Affiliation:
State Key Laboratory for Biology of Plant Diseases and Insect Pests, Institute of Plant Protection, Chinese Academy of Agricultural Sciences, Beijing 100193, People's Republic of China
*
*Author for correspondence Phone: 0086-10-82105551 E-mail: kmwu@ippcaas.cn

Abstract

The rice leaf roller, Cnaphalocrocis medinalis (Guenée), is a serious insect pest of rice with a strong migratory ability. Previous studies on the migration of C. medinalis were mostly carried out in tropical or subtropical regions, however, and what the pattern of seasonal movements this species exhibits in temperate regions (i.e. Northern China, where they cannot overwinter) remains unknown. Here we present data from an 11-year study of this species made by searchlight trapping on Beihuang Island (BH, 38°24′N; 120°55′E) in the centre of the Bohai Strait, which provides direct evidence that C. medinalis regularly migrates across this sea into northeastern agricultural region of China, and to take advantage of the abundant food resources there during the summer season. There was considerable seasonal variation in number of C. medinalis trapped on BH, and the migration period during 2003–2013 ranged from 72 to 122 days. Some females trapped in June and July showed a relatively higher proportion of mated and a degree of ovarian development suggesting that the migration of this species is not completely bound by the ‘oogenesis-flight syndrome’. These findings revealed a new route for C. medinalis movements to and from Northeastern China, which will help us develop more effective management strategies against this pest.

Type
Research Paper
Copyright
Copyright © Cambridge University Press 2014 

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References

Bühler, A., Lanzrein, B. & Wille, H. (1983) Influence of temperature and carbon dioxide concentration on juvenile hormone titre and dependent parameters of adult worker honey bees (Apis mellifera L.). Journal of Insect Physiology 29, 885893.CrossRefGoogle Scholar
Chang, S.-S., Lo, Z.-C., Keng, C.-G., Li, G.-Z., Chen, X.-L. & Wu, X.-W. (1980) Studies on the migration of the rice leaf roller Cnaphalocrocis medinalis Guenée. Acta Entomologica Sinica 23, 130140.Google Scholar
China Agricultural Yearbook Editing Committee (2012) China Agriculture Yearbook. Beijing, China Agricultural Press.Google Scholar
Cusson, M., Mcneil, J.N. & Tobe, S.S. (1990) In vitro biosynthesis of juvenile hormone by corpora allata of Pseudaletia unipuncta virgin females as a function of age, environmental conditions, calling behaviour and ovarian development. Journal of Insect Physiology 36, 139146.CrossRefGoogle Scholar
Dingle, H. & Drake, V.A. (2007) What is migration? BioScience 57, 113121.CrossRefGoogle Scholar
Feng, H.-Q. & Wu, K.-M. (2010) Vertical-pointing searchlight trap. Patent no. CN201020229775.3, Beijing, China.Google Scholar
Feng, H.-Q., Wu, K.-M., Ni, Y.-X., Cheng, D.-F. & Guo, Y.-Y. (2005) Return migration of Helicoverpa armigera (Lepidoptera: Noctuidae) during autumn in northern China. Bulletin of Entomological Research 95, 361370.CrossRefGoogle ScholarPubMed
Feng, H.-Q., Wu, K.-M., Ni, Y.-X., Cheng, D.-F. & Guo, Y.-Y. (2006) Nocturnal migration of dragonflies over the Bohai Sea in northern China. Ecological Entomology 31, 511520.CrossRefGoogle Scholar
Feng, H.-Q., Wu, X.-F., Wu, B. & Wu, K.-M. (2009) Seasonal migration of Helicoverpa armigera (Lepidoptera: Noctuidae) over the Bohai Sea. Journal of Economic Entomology 102, 95104.CrossRefGoogle ScholarPubMed
Geng, J.-G., Zhang, J.-X., Zhang, X.-X., Magor, J.I. & Pender, J. (1990) Trajectory analysis on ship captures of rice leaf roller southward migration. Journal of Nanjing Agricultural University 13, 4853.Google Scholar
Greenbank, D.O., Schaefer, G.W. & Rainey, R.C. (1980) Spruce budworm (Lepidoptera: Tortricidae) moth flight and dispersal: new understanding from canopy observations, radar, and aircraft. Memoirs of the Entomological Society of Canada 110, 149.CrossRefGoogle Scholar
Heinrich, B. (1993) The Hot-Blooded Insects: Strategies and Mechanisms of Thermoregulation. Cambridge, Harvard University Press.Google Scholar
Irwin, M.E. (1999) Implications of movement in developing and deploying integrated pest management strategies. Agricultural and Forest Meteorology 97, 235248.CrossRefGoogle Scholar
Johnson, C.G. (1963) Physiological factors in insect migration by flight. Nature 198, 423427.CrossRefGoogle Scholar
Kawazu, K., Setokuchi, O., Kohno, K., Takahashi, K., Yoshiyasu, Y. & Tatsuki, S. (2001) Sex pheromone of the rice leaffolder moth, Cnaphalocrocis medinalis (Lepidoptera: Crambidae): synthetic Indian and Philippine blends are not attractive to male C. medinalis, but are attractive to C. pilosa in the South-Western islands in Japan. Applied Entomology and Zoology 36, 471474.CrossRefGoogle Scholar
Kennedy, J.S. (1961) A turning point in the study of insect migration. Nature 189, 785791.CrossRefGoogle Scholar
Kisimoto, R. (1984) Insect pests of the rice plant in Asia. Protection Ecology 7, 83104.Google Scholar
Liu, H.-Q., Liu, Z.-J. & Zhu, W.-H. (1983) Results of net-trapping of brown planthoppers on China Seas. Acta Entomologica Sinica 26, 109113.Google Scholar
Luo, S.-J. (2010) Occurrence of rice leaf roller in China and its identification and prevention. Plant Diseases and Pests 1, 1318.Google Scholar
Miyahara, Y., Wada, T. & Kobayashi, M. (1981) Appearance of Cnaphalocrocis medinalis Guenée in early planted rice fields in Chikugo. Japanese Journal of Applied Entomology & Zoology 25, 2632.CrossRefGoogle Scholar
Mochida, O. (1974) Long distance movement of Sogatella furcifera and Nilaparvata lugens (Homoptera: Delphacidae) across the East China Sea. Rice Entomology Newsletter 1, 1822.Google Scholar
Nathan, S.S. (2006) Effects of Melia azedarach on nutritional physiology and enzyme activities of the rice leaffolder Cnaphalocrocis medinalis (Guenée) (Lepidoptera: Pyralidae). Pesticide Biochemistry and Physiology 84, 98108.CrossRefGoogle Scholar
Nathan, S.S., Kalaivani, K., Murugan, K. & Chung, P.G. (2005) Efficacy of neem limonoids on Cnaphalocrocis medinalis (Guenée) (Lepidoptera: Pyralidae) the rice leaffolder. Crop Protection 24, 760763.CrossRefGoogle Scholar
National Coordinated Research Team on Rice Leafroller (1981) Advances in studies on the migration of rice leafroller Cnaphalocrocis medinalis Guenée in China. Scientia Agricultura Sinica 5, 18.Google Scholar
Otuka, A., Dudhia, J., Watanabe, T. & Furuno, A. (2005 a) A new trajectory analysis method for migratory planthoppers, Sogatella furcifera (Horváth) (Homoptera: Delphacidae) and Nilaparvata lugens (Stål), using an advanced weather forecast model. Agricultural and Forest Entomology 7, 19.CrossRefGoogle Scholar
Otuka, A., Watanabe, T., Suzuki, Y., Matsumura, M., Furuno, A. & Chino, M. (2005 b) Real-time prediction system for migration of rice planthoppers Sogatella furcifera (Horváth) (Homoptera: Delphacidae) and Nilaparvata lugens (Stål) (Homoptera: Delphacidae). Applied Entomology and Zoology 40, 221229.CrossRefGoogle Scholar
Otuka, A., Watanabe, T., Suzuki, Y., Matsumura, M., Furuno, A., Chino, M., Kondo, T. & Kamimuro, T. (2006) A migration analysis of Sogatella furcifera (Horváth) (Homoptera: Delphacidae) using hourly catches and a three-dimensional simulation model. Agricultural and Forest Entomology 8, 3647.CrossRefGoogle Scholar
Otuka, A., Matsumura, M., Watanabe, T. & Dinh, T.V. (2008) A migration analysis for rice planthoppers, Sogatella furcifera (Horváth) and Nilaparvata lugens (Stål) (Homoptera: Delphacidae), emigrating from northern Vietnam from April to May. Applied Entomology and Zoology 43, 527534.CrossRefGoogle Scholar
Otuka, A., Huang, S.H., Sanada-Morimura, S. & Matsumura, M. (2012) Migration analysis of Nilaparvata lugens (Hemiptera: Delphacidae) from the Philippines to Taiwan under typhoon-induced windy conditions. Applied Entomology and Zoology 47, 263271.CrossRefGoogle Scholar
Oya, S. & Hirao, J. (1982) Catches of migrating rice planthoppers on the East China Sea and northern Kyushu, Japan in late June 1981. Proceedings of the Association for Plant Protection of Kyushu 28, 117121.CrossRefGoogle Scholar
Padmavathi, C., Katti, G., Padmakumari, A.P., Voleti, S.R. & Subba Rao, L.V. (2012) The effect of leaffolder Cnaphalocrocis medinalis (Guenée) (Homoptera: Delphacidae) injury on the plant physiology and yield loss in rice. Journal of Applied Entomology 137, 249256.CrossRefGoogle Scholar
Pateman, R.M., Hill, J.K., Roy, D.B., Fox, R. & Thomas, C.D. (2012) Temperature-dependent alterations in host use drive rapid range expansion in a butterfly. Science 336, 10281030.CrossRefGoogle Scholar
Pathak, M.D. & Khan, Z.R. (1994) Insect Pests of Rice. Manila, International Rice Research Institute.Google Scholar
Pöyry, J., Luoto, M., Heikkinen, R.K., Kuussaari, M. & Saarinen, K. (2009) Species traits explain recent range shifts of Finnish butterflies. Global Change Biology 3, 732743.CrossRefGoogle Scholar
Rhainds, M. & Kettela, E.G. (2013) Oviposition threshold for flight in an inter-reproductive migrant moth. Journal of Insect Behavior 26, 850859.CrossRefGoogle Scholar
Riley, J.R., Reynolds, D.R., Smith, A.D., Edwards, A.S., Zhang, X.-X., Cheng, X.-N., Wang, H.-K., Cheng, J.-Y. & Zhai, B.-P. (1995) Observations of the autumn migration of the rice leaf roller Cnaphalocrocis medinalis (Lepidoptera: Pyralidae) and other moths in eastern China. Bulletin of Entomological Research 85, 397414.CrossRefGoogle Scholar
Robertson, C., Nelson, T.A., Jelinski, D.E., Wulder, M.A. & Boots, B. (2009) Spatial-temporal analysis of species range expansion: the case of the mountain pine beetle, Dendroctonus ponderosae. Journal of Biogeography 8, 14461458.CrossRefGoogle Scholar
SAS Institute (1990) SAS/STAT User's Guide. Cary, SAS Institute Inc.Google Scholar
Serafim, J.M., Lansac-Tôha, F.A., Paggi, J.C., Velho, L.F.M. & Robertson, B. (2003) Cladocera fauna composition in a river-lagoon system of the Upper Paraná River floodplain, with a new record for Brazil. Brazilian Journal of Biology 63, 349356.CrossRefGoogle Scholar
Showers, W.B. (1997) Migratory ecology of the black cutworm. Annual Review of Entomology 42, 393425.CrossRefGoogle ScholarPubMed
Sun, B.-B., Zhang, L., Jiang, X.-F. & Luo, L.-Z. (2013) Effects of temperature on reproduction in the rice leaf roller. Chinese Journal of Applied Entomology 50, 622628.Google Scholar
Syobu, S.I. & Otuka, A. (2012) Annual fluctuations in the immigrant density of rice planthoppers, Sogatella furcifera and Nilaparvata lugens (Hemiptera: Delphacidae), in the Kyushu district of Japan, and associated meteorological conditions. Applied Entomology and Zoology 47, 399412.CrossRefGoogle Scholar
Tang, J.-Y., Cheng, J.-A. & Norton, G.A. (1994) HOPPER: an expert system for forecasting the risk of white-backed planthopper attack in the first crop season in China. Crop Protection 13, 463473.CrossRefGoogle Scholar
Wada, T., Ogawa, Y. & Nakasuga, T. (1988) Geographical difference in mated status and autumn migration in the rice leaf roller moth, Cnophalocrocis medinalis. Entomologia Experimentalis et Applicata 46, 141148.CrossRefGoogle Scholar
Wang, F.-Y., Zhang, X.-X. & Zhai, B.-P. (2010) Flight and re-migration capacity of the rice leaffolder moth, Cnaphalocrocis medinalis (Guenée) (Lepidoptera: Crambidae). Acta Entomologica Sinica 53, 12651272.Google Scholar
Wang, X., Hu, L.-C., Zhou, G.-X., Cheng, J.-A. & Lou, Y.-G. (2011) Salicylic acid and ethylene signaling pathways are involved in production of rice trypsin proteinase inhibitors induced by the leaf folder Cnaphalocrocis medinalis (Guenée). Chinese Science Bulletin 56, 23512358.CrossRefGoogle Scholar
Wilson, R.J., Gutiérrez, D., Gutiérrez, J., Martínez, D., Aguado, R. & Montserrat, V.J. (2005) Changes to the elevational limits and extent of species ranges associated with climate change. Ecology Letters 8, 11381146.CrossRefGoogle Scholar
Wu, K.-M. & Guo, Y.-Y. (2005) The evolution of cotton pest management practices in China. Annual Review of Entomology 50, 3152.CrossRefGoogle ScholarPubMed
Wu, Y., Price, B., Isenegger, D., Fischlin, A., Allgöwer, B. & Nuesch, D. (2006) Real-time 4D visualization of migratory insect dynamics within an integrated spatiotemporal system. Ecological Informatics 1, 179187.CrossRefGoogle Scholar
Yadava, C.P., Santaram, G., Israel, P. & Kalode, M.B. (1972) Life-history of rice leaf-roller, Cnaphalocrocis medinalis Guenée (Lepidoptera: Pyralidae) and its reaction to some varieties and grasses. International Journal of Agricultural Science 42, 520523.Google Scholar
Yang, R.-M., Zhu, Y.-Q., Diao, C.-Y. & Zhang, F. (2004) Causes of the outbreak of Cnaphalocrocisi medinalis in Jiangsu province in 2003 and its control strategies. China Plant Protection 24, 1114.Google Scholar
Zanuncio, J.C., Mezzomo, J.A., Guedes, R.N.C. & Oliveira, A.C. (1998) Influence of strips of native vegetation on Lepidoptera associated with Eucalyptus cloeziana in Brazil. Forest Ecology and Management 108, 8590.CrossRefGoogle Scholar
Zhai, B.-P. & Cheng, J.-A. (2006) Summary of symposium about two migration of rice insects in 2006. Chinese Bulletin of Entomology 43, 585588.Google Scholar
Zhang, C.-Q. & Tang, Y.-T. (1984) Studies on the overwinter patterns of Cnaphalocrocis medinalis Guenée in China. Entomological Knowledge 3, 102106.Google Scholar
Zhang, X.-X., Lu, Z.-Q. & Geng, J.-G. (1979) Application of ovarian dissection of female Cnaphalocrocis medinalis moths in prediction and forecasting system. Entomological Knowledge 16, 9799.Google Scholar
Zhang, X.-X., Geng, J.-G. & Zhou, W.-J. (1981) Studies of the migration patterns of rice leafroller, Cnaphalocrocis medinalis Guenée, in China. Journal of Nanjing Agricultural University 3, 4354.Google Scholar
Zhao, X.-C., Feng, H.-Q., Wu, B., Wu, X.-F., Liu, Z.-F., Wu, K.-M. & McNeil, J.N. (2009) Does the onset of sexual maturation terminate the expression of migratory behaviour in moths? A study of the oriental armyworm, Mythimna separata. Journal of Insect Physiology 55, 10391043.CrossRefGoogle ScholarPubMed
Zhu, H.-W., Gu, S.-G., Yao, Y.-G., Zhang, R.-L. & Jing, W. (2009) Ovarain dissection technique of Cnaphalocrocis medinalis. Shanghai Agricultural Science and Technology 6, 137.Google Scholar