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Evaluation of coloured traps with kairomone attractant for monitoring thrips population dynamics on tomato crop in East Africa

Published online by Cambridge University Press:  16 May 2017

Alexander Mutua Muvea
Affiliation:
International Centre of Insect Physiology and Ecology (icipe), PO Box 30772-00100, Nairobi, Kenya Jomo Kenyatta University of Agriculture and Technology, PO Box 62000-00200, Nairobi, Kenya
Helen Lydia Kutima
Affiliation:
Jomo Kenyatta University of Agriculture and Technology, PO Box 62000-00200, Nairobi, Kenya
Zipporah Osiemo Lagat
Affiliation:
Jomo Kenyatta University of Agriculture and Technology, PO Box 62000-00200, Nairobi, Kenya
Monicah Waiganjo
Affiliation:
Kenya Agricultural Research Institute, PO Box 220-01000, Thika, Kenya
Sevgan Subramanian*
Affiliation:
International Centre of Insect Physiology and Ecology (icipe), PO Box 30772-00100, Nairobi, Kenya
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Abstract

Tomato is an important vegetable crop that is cultivated for the domestic market in Kenya and other East African countries. Thrips are one of the key pests hampering the production of tomato, both by direct damage to the crop and as vectors of tospoviruses. Field experiments were carried out over two planting times to evaluate the use of sticky traps for monitoring thrips infesting tomato in East Africa. Blue, yellow, and clear sticky traps with and without a thrips lure (Lurem-TR) were tested. Field observations for thrips catches on the sticky traps were made weekly until crop senescence. Sticky traps were replaced with new ones at each observation time. Additionally, both destructive and non-destructive samplings for thrips were done at each observation. Frankliniella schultzei (Trybom) and Ceratothripoides brunneus (Bagnall) were more attracted to blue than yellow traps. Frankliniella occidentalis (Pergande) attraction to blue and yellow traps was not distinctive. The addition of Lurem-TR on traps increased captures of F. schultzei and F. occidentalis but not of C. brunneus. Blue traps with Lurem-TR captures had the highest correlation with absolute estimate of thrips density on the plants. Rainfall had significant negative correlation with thrips population on the crops. Our results show that blue traps and Lurem-TR have strong potential for improving monitoring and management of thrips on tomato.

Type
Research Paper
Copyright
Copyright © icipe 2017 

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References

Affandi, B. and Emilda, D. (2009) Mangosteen thrips: collection, identification and control. Journal of Fruit and Ornamental Plant Research 17, 219233.Google Scholar
Allsopp, E. (2010) Investigation into the apparent failure of chemical control for management of western flower thrips, Frankliniella occidentalis (Pergande), on plums in the Western Cape Province of South Africa. Crop Protection 29, 824831.CrossRefGoogle Scholar
Birithia, R., Subramanian, S., Villinger, J., Muthomi, J., Narla, R. D. and Pappu, H.R. (2012) First report of Tomato yellow ring virus (Tospovirus, Bunyaviridae) infecting tomato in Kenya. Plant Disease 96, 1384. https://doi.org/10.1094/PDIS-05-12-0462-PDN.Google Scholar
Broughton, S., Cousins, D. A. and Rahman, T. (2015) Evaluation of semiochemicals for their potential application in mass trapping of Frankliniella occidentalis (Pergande) in roses. Crop Protection 67, 130135.Google Scholar
Chen, T. Y., Chu, C. C., Fitzgerald, G., Natwick, E. T. and Henneberry, T. J. (2004) Trap evaluations for thrips (Thysanoptera: Thripidae) and hoverflies (Diptera: Syrphidae). Environmental Entomology 33, 14161420.CrossRefGoogle Scholar
Chu, C. C., Ciomperlik, M. A., Chang, N. T., Richards, M. and Henneberry, T. J. (2006) Developing and evaluating traps for monitoring Scirtothrips dorsalis (Thysanoptera: Thripidae). Florida Entomologist 89, 4755.Google Scholar
FAOSTAT (2007) Food and agricultural organization of the United Nations. Data, various years. Available at: http://faostat.fao.org/cgi-bin/nph-db.pl?subset=agriculture. Accessed 4 October 2014.Google Scholar
Fox, J. (2005) The R Commander: a basic-statistics graphical user interface to R. Journal of Statistical Software 14, 142.Google Scholar
Fox, J. (2008) Applied Regression Analysis and Generalized Linear Models (2nd ed.). SAGE Publications, Thousand Oaks, CA. 688 pp.Google Scholar
Fox, J. (2010) Polycor: polychoric and polyserial correlations. R package version 0.7-8. Accessed 20 April 2015.Google Scholar
Ghidiu, G. M., Hitchner, E. M. and Funderburk, J. E. (2006) Goldfleck damage to tomato fruit caused by the feeding of Frankliniella occidentalis (Thysanoptera: Thripidae). Florida Entomologist 89, 279281.Google Scholar
Gillespie, D. R. and Vernon, R. S. (1990) Trap catch of western flower thrips (Thysanoptera: Thripidae) as affected by color and height of sticky traps in mature greenhouse cucumber crops. Journal of Economic Entomology 83, 971975.Google Scholar
Gitonga, L. M., Löhr, B., Overholt, W. A., Magambo, J. K. and Mueke, J. M. (2002) Temperature-dependent development of Megalurothrips sjostedti and Frankliniella occidentalis (Thysanoptera: Thripidae). African Entomology 10, 325331.Google Scholar
Gross, J. and Ligges, U. (2015) Nortest: tests for normality. R package version 1.0. Accessed 20 April 2015.Google Scholar
Hamilton, J. G. C., Hall, D. R. and Kirk, W. D. J. (2005) Identification of a male-produced aggregation pheromone in the western flower thrips Frankliniella occidentalis . Journal of Chemical Ecology 31, 13691379.Google Scholar
Harbi, A., Elimem, M. and Chermiti, B. (2013) Use of a synthetic kairomone to control Frankliniella occidentalis Pergande (Thysanoptera; Thripidae) in protected pepper crops in Tunisia. The African Journal of Plant Science and Biotechnology 7, 4247.Google Scholar
Harman, J. A., Mao, C. X. and Morse, J. G. (2007) Selection of colour of sticky trap for monitoring adult bean thrips, Caliothrips fasciatus (Thysanoptera: Thripidae). Pest Management Science 63, 210216.Google Scholar
Harper, S. and Horne, P. A. (2012) The feeding effects of western flower thrips (Frankliniella occidentalis (Pergande)) and wind damage on French beans (Phaseolus vulgaris L.). Australian Journal of Entomology 51, 205208.Google Scholar
HCDA (Horticultural Crops Development Authority) (2013) Export Statistics Volumes. Available at: http://www.hcda.or.ke/Statistics/2010%20Horticulture%20Validated%20Report.pdf/. Accessed on 20 March 2015.Google Scholar
Heming, B. S. (1993) Structure, function, ontogeny and evolution of feeding in thrips (Thysanoptera), pp. 341. In Functional Morphology of Insect Feeding (edited by Schaefer, C. S. and Leschen, R. A. B.). Thomas Say Publications in Entomology, Entomological Society of America, Lanham, MD.Google Scholar
Hoddle, M. S., Robinson, L. and Morgan, D. (2002) Attraction of thrips (Thysanoptera: Thripidae and Aeolothripidae) to colored sticky cards in a California avocado orchard. Crop Protection 21, 383388.Google Scholar
Jaetzold, R. and Schmidt, H. (1983) Farm Management Handbook of Kenya. Vol. II: Natural Conditions and Farm Management Information. Volume II/B: Central Kenya (Rift Valley and Central Provinces). Ministry of Agriculture, Nairobi, Kenya. 728 pp.Google Scholar
Jaetzold, R., Schmidt, H., Hornetz, B. and Shisanya, C. (2007) Farm Management Handbook of Kenya. Natural Conditions and Farm Information. Vol. 11/C: Central Province (2nd ed.). Ministry of Agriculture/GTZ, Nairobi.Google Scholar
Jensen, S. E. (2000) Insecticide resistance in the western flower thrips, Frankliniella occidentalis. Integrated Pest Management Reviews 5, 131146. doi:10.1023/A:1009600426262.Google Scholar
Kirk, W. D. J. (1997) Thrips feeding, pp. 2129. In Thrips as Crop Pests (edited by Lewis, T.). CAB International, Wallingford, Oxon, UK.Google Scholar
Koschier, E. H., de Kogel, W. J. and Visser, J. H. (2000) Assessing the attractiveness of volatile plant compounds to western flower thrips Frankliniella occidentalis . Journal of Chemical Ecology 26, 26432655.Google Scholar
Lewis, T. (1997) Field and laboratory techniques, pp. 435475. In Thrips as Crop Pests (edited by Lewis, T.). CAB International, Wallingford, Oxon, UK.Google Scholar
MOARD/JICA (2002) Ministry of Agriculture and Rural Development. In Local and Export Vegetables Growing Manual (2nd ed.). Agricultural Information Resource Centre, Nairobi, Kenya.Google Scholar
Moritz, G., Brandt, S., Triapistyn, S. and Subramanian, S. (2013) Identification and Information Tools for Pest Thrips in East Africa. QAAFI Biological Information Technology (QBIT), The University of Queensland, Brisbane, Australia. Available at: http://thripsnet.zoologie.uni-halle.de/key-server-neu/.Google Scholar
Moritz, G., Mound, L. A., Morris, D. C. and Goldarazena, A. A. (2004) Pest Thrips of the World-Visual and Molecular Identification of Pest Thrips, CD-rom published by OBIT, Brisbane, Australia. Available at: http://wwwcbit.uq.edu.au/software/pestthrips/default.htm.Google Scholar
Morse, J. G. and Hoddle, M. S. (2006) Invasion biology of thrips. Annual Review of Entomology 51, 6789.Google Scholar
Morsello, S. C., Groves, R. L., Nault, B. A. and Kennedy, G. G. (2008) Temperature and precipitation affect seasonal patterns of dispersing tobacco thrips, Frankliniella fusca, and onion thrips, Thrips tabaci (Thysanoptera: Thripidae) caught on sticky traps. Environmental Entomology 37, 7986.Google Scholar
Murai, T., Kawai, S., Chongratanameteekul, W. and Nakasuji, F. (2000) Damage to tomato by Ceratothripoides claratris (Shumsher) (Thysanoptera: Thripidae) in central Thailand and a note on its parasitoid, Goethena shakespearei Girault (Hymenoptera: Eulophidae). Applied Entomology and Zoology 35, 505507.Google Scholar
Muvea, A. M., Waiganjo, M., Kutima, H. L., Osiemo, Z. L., Nyasani, J. O. and Subramanian, S. (2014) Attraction of pest thrips (Thysanoptera: Thripidae) infesting French beans to coloured sticky traps with Lurem-TR and its utility for monitoring thrips populations. International Journal of Tropical Insect Science 34, 197206.Google Scholar
Natwick, E. T., Byers, J. A., Chu, C.-C., Lopez, M. and Henneberry, T. J. (2007) Early detection and mass trapping of Frankliniella occidentalis and Thrips tabaci in vegetable crops. Southwestern Entomologist 32, 229238.Google Scholar
Nderitu, J. H., Kasina, M. J., Nyamasyo, G. N., Waturu, C. N. and Aura, J. (2008) Management of thrips (Thysanoptera: Thripidae) on French beans (Fabaceae) in Kenya: economics of insecticide applications. Journal of Entomology 5, 148155.CrossRefGoogle Scholar
Nderitu, J. H., Waturu, C. N., Olubayo, F., Aura, J. and Kasina, J. (2001) Current French bean pests and disease management at Mwea Tebere, Central Kenya, pp. 118–122. In Proceedings of Sustainable Horticultural Production in Tropics. 3–6 October. Juja, Kenya, Department of Horticulture, Jomo Kenyatta University of Agriculture and Technology. Available at: https://www.igps.uni-hannover.de/fileadmin/gemuesebau/pdf/SVepit/PROCEEDINGS2001.pdf Accessed on 30 March 2015.Google Scholar
Nielsen, M.-C., Worner, S., Chapman, R. B., de Kogel, W. J., Perry, N. B., Sansom, C., Murai, T., Muvea, A., Subramanian, S. and Teulon, J. (2010) Optimising the use of allelochemicals for thrips pest management, p. 324. In 26th Annual Meeting International Society of Chemical Ecology Conference Book of Abstracts. 31 July−4 August 2010, Tours, France. Available at: http://www.atout-org.com/isce2010/docs/book_isce2010.pdf.Google Scholar
Nyasani, J. O., Meyhöfer, R., Subramanian, S. and Poehling, H.-M. (2012) Effect of intercrops on thrips species composition and population abundance on French beans in Kenya. Entomologia Experimentalis et Applicata 142, 236246. doi:10.1111/j.1570-7458.2011.01217.x.Google Scholar
Palumbo, J. C. (2003) Comparison of sampling methods for estimating western flower thrips abundance on lettuce. In Vegetable Report College of Agriculture and Life Sciences (edited by Byrne, D. N. and Baciewicz, P.). University of Arizona, Tucson, Arizona. Available at: http://hdl.handle.net/10150/214962.Google Scholar
Pearsall, I. A. (2002) Daily flight activity of the western flower thrips (Thysan.: Thripidae) in nectarine orchards in British Columbia, Canada. Journal of Applied Entomology 126, 293302. doi:10.1046/j.1439-0418.2002.00657.x.Google Scholar
Pearsall, I. A. and Myers, J. H. (2000) Evaluation of sampling methodology for determining the phenology, relative density, and dispersion of western flower thrips (Thysanoptera: Thripidae) in nectarine orchards. Journal of Economic Entomology 93, 494502.Google Scholar
Pizzol, J., Nammour, D., Hervouet, P., Bout, A., Desneux, N. and Mailleret, L. (2010) Comparison of two methods of monitoring thrips populations in a greenhouse rose crop. Journal of Pest Science 83, 191196. doi:10.1007/s10340-010-0286-5.CrossRefGoogle Scholar
Premachandra, W. T. S. D., Borgemeister, C., Chabi, O. A. and Poehling, H. M. (2004) Influence of temperature on the development, reproduction and longevity of Ceratothripoides claratris (Thysanoptera: Thripidae) on tomatoes. Bulletin of Entomological Research 94, 377384. doi: 10.1079/BER2004311.Google Scholar
Prins, M. and Goldbach, R. (1998) The emerging problem of tospovirus infection and nonconventional methods of control. Trends in Microbiology 6, 3135.Google Scholar
Prokopy, R. J. and Owens, E. D. (1983) Visual detection of plants by herbivorous insects. Annual Review of Entomology 28, 337364.Google Scholar
R Development Core Team (2012) R: A Language and Environment for Statistical Computing. R Foundation for Statistical Computing, Vienna, Austria. Available at: http://www.R-project.org/.Google Scholar
Ramkat, R. C., Wangai, A. W., Ouma, J. P., Rapando, P. N. and Lelgut, D.K. (2006) Effect of mechanical inoculation of Tomato spotted wilt tospovirus disease on disease severity and yield of greenhouse raised tomatoes. Asian Journal of Plant Sciences 5, 607612.Google Scholar
Ranamukhaarachchi, S. L. and Wickramarachchi, K. S. (2007) Color preference and sticky traps for field management of thrips Ceratothripoides claratris (Shumsher) (Thysanoptera: Thripidae) in tomato in Central Thailand. International Journal of Agriculture and Biology 9, 392397.Google Scholar
Smits, P. H., van Deventer, P. and de Kogel, W. J. (2000) Western flower thrips: reactions to odours and colours. Proceedings of the Section Experimental and Applied Entomology of The Netherlands Entomological Society 11, 175180.Google Scholar
Steiner, M. Y. (1990) Determining population characteristics and sampling procedures for the western flower thrips F. occidentalis (Thysanoptera: Thripidae) and the predatory mite Amblyseius cucumeris (Acari: Phytoseiidae) on greenhouse cucumber. Environmental Entomology 19, 16031613. doi: 10.1093/ee/19.5.1605.Google Scholar
Teulon, D. A. J. and Penman, D. R. (1992) Colour preferences of New Zealand thrips (Terebrantia: Thysanoptera). New Zealand Entomologist 15, 813. doi: 10.1080/00779962.1992.9722621.Google Scholar
Teulon, D. A. J., Davidson, M. M., Perry, N. B., Nielsen, M.-C., van Tol, R. W. H. M. and de Kogel, W. J. (2011) Recent developments with methyl isonicotinate, a semiochemical used in thrips pest management. New Zealand Plant Protection 64, 287.Google Scholar
Teulon, D. A. J., Hollister, B., Butler, R. C. and Cameron, E. A. (1999) Colour and odour responses of flying western flower thrips: wind tunnel and greenhouse experiments. Entomologia Experimentalis et Applicata 93, 919. doi:10.1046/j.1570-7458.1999.00557.x.Google Scholar
Varela, A.M., Seif, A. and Lohr, B. (2003) A guide to IPM in tomato production in Eastern and Southern Africa. icipe Science Press, Nairobi, Kenya. 128 pp.Google Scholar
Waiganjo, M. M., Gitonga, L. M. and Mueke, J. M. (2008) Effects of weather on thrips population dynamics and its implications on the thrips pest management. African Journal of Horticultural Science 1, 8290.Google Scholar