

Development of methods for application of pheromonic materials for monitoring and managing the number of apple phytophages
https://doi.org/10.31676/0235-2591-2021-2-47-53
Abstract
Synthetic sex pheromones have found wide application in plant protection as a mean of early detection of pests that allows observation of the phenology of insects to optimise protective measures. Insect sex pheromones can be applied for different purposes in protecting crops such as monitoring, determining the species composition and combating harmful species (by using sex pheromones for disorientation). The present work studies the species composition, dynamics of the number of basic pests of an apple tree, synchronisation of the seasonal and circadian activity of phytophages of an apple tree in the central zone of the Krasnodar Territory. The results of the field assessment of the male complex disorientation method of apple and eastern moths are presented. It was shown that the species-specificity of sex pheromones in the apple orchard depends on the faunistic diversity of Lepidoptera species with similar pheromone systems that develop at a given point in space and time. It was revealed that the behaviour of this complex changes during the season and over years, depending on the climate and natural dynamics of insect populations. The quantitative ratio and species-specificity of pheromones will probably be different in ecosystems with various species composition and different geographic zones. A novelty of this research is the division of the studied Lepidoptera phytophage species into three groups according to a decrease in the absolute species-specificity in the forest biotope in comparison with the garden one. The most widespread and coinciding in terms of summer synchronicity are apple (Cydia pomonella L.), plum (Grapholitha funebrana Tr.), eastern (Grapholitha molesta Tr.) and pomegranate moth (Euzophera bigella Zell.). The disorientation method, applied using a complex system of dispensers with apple and eastern moth pheromones, showed that installing 500 dispensers/ha allowed 99.3 % efficiency to be achieved. Fruit damage amounted to 1.2 % and 2.7 % in the experimental and control groups, respectively. The duration of the disorienting effect of the pheromone formulations lasted for over 4 months.
About the Authors
I. S. AgasievaRussian Federation
PhD (Biol.), Leading Researcher, Head of the Laboratory of the State collection of entomoakariphages and initial assessment of biological control agents
V. Ya. Ismailov
Russian Federation
PhD (Biol.), leading researcher, Head of the Laboratory of chemical communications and mass breeding of insects
A. S. Nastasiy
Russian Federation
Post-graduate student, Junior Researcher, Laboratory of the State collection of entomoakariphages and initial assessment of biological control agents
M. V. Nefedova
Russian Federation
Maria V. Nefedova, PhD (Biol.), Senior Researcher, Laboratory of the State collection of entomoakariphages and initial assessment of biological control agents
1, VNIIBZR str., Krasnodar, 350039
References
1. Hoffman A. J., Njoku M., Jason L., Johnson R. Creating an Edible Dialogue for Peace: Community Gardening, Horticulture, and Urban Fruit Tree Orchards: Peace Psychology Book Series: Springer, Cham.: The Psychology of Peace Promotion, 2019: pp. 267-285.
2. Van der Meer M., Kay S., Lüscher G. et al. What evidence exists on the impact of agricultural practices in fruit orchards on biodiversity. A systematic map. Environ Evid. 2020;(9):2. DOI: 10.1186/s13750-020-0185-z
3. Grichanov I. Ya., Ovsyannikova E. I. Pheromones for phytosanitary monitoring of harmful lepidoptera insects. Appendix to the journal „Bulletin of Plant Protection“. St. Petersburg: VIZR, 2005, 244 p. (In Russ.)
4. Ekinci K., Demircan V., Atasay A. et al. Energy, Economic and Environmental Analysis of Organic and Conventional Apple Production in Turkey. 2020;62:1-12. DOI: 10.1007/s10341-01900462-0
5. Mityushev I. M. Insect pheromones and their application in plant protection: a tutorial. Moscow: Timiryazev RGAU-Moscow Agricultural Academy, 2015, 124 p. (In Russ.)
6. Ismailov V. Ya., Agasyeva I. S. Practical use of synthetic pheromones of the main apple pests. Agro XXI. 2003;1:72-73. (In Russ.)
7. Ryabchinskaya T. A., Sarantseva N. A., Kharchenko G. L., Bobreshova I. Yu. Complex pheromone compositions. Zashchita i karantin rastenii. 2013;4:26-30. (In Russ.)
8. Rice M. E., Zou Y., Millar J. G., Hanks L. M. Complex Blends of Synthetic Pheromones are Effective Multi-Species Attractants for Longhorned Beetles (Coleoptera: Cerambycidae). Journal of Economic Entomology. 2020;113(5):2269-2275. DOI: 10.1093/jee/toaa157
9. Steffan Sh. A., Chasen E. M., Deutsch A. E., Mafra-Neto
10. A. Multi-Species Mating Disruption in Cranberries (Ericales: Ericaceae): Early Evidence Using a Flowable Emulsion. Journal of Insect Science. 2017;17(2):54. DOI: 10.1093/jisesa/iex025
11. Baroffio C. A., Sigsgaard L., Ahrenfeldt E. J., Borg-Karlson A.-K., Bruun S. A., Cross J. V., Wibe A. Combining plant volatiles and pheromones to catch two insect pests in the same trap: Examples from two berry crops. Crop Protection. 2018;109:1-8. DOI: 10.1016/j.cropro.2018.02.025
12. Sinitsyna E. V., Protsenko V. E., Karpun N. N. The first field trials of Russian-made pheromone preparations for monitoring and control of the brown marble bug Halyomorpha halys Stal. Izvestiya Timiryazevskoy sel’skokhozyaystvennoy akademii. 2019;3:60-79. (In Russ.)
13. Pachkin A. A., Pushnya M. V., Pastarnak I. N., Agasyeva I. S., Niyazov O. D., Padalka S. D., Ismailov V. Ya., Ermolenko S. A. Biological rationale for the use of synthetic pheromones to disrupt the chemical communication of phytophages in an apple orchard. Science of the Kuban. 2016;1:43-47. (In Russ.)
14. Kotlyarov D. V., Kotlyarov V. V., Fedulov Yu. P. Physiologically active substances in agricultural technologies: monograph. Krasnodar: FGBOU VO Kuban GAU, 2016, 224 p. (In Russ.)
15. Pachkin A. A., Vasilyeva L. A., Yakovuk V. A., Doroshenko T. N., Niyazov O. D., Balakhnina I. V. Techniques and methods of biological protection of apple trees in organic farming. Tavrichesky vestnik agrarnoi nauki. 2016;1(5):44-57. (In Russ.)
16. Hirotsuna H., Takabe M., Nakamuta K. Mating disruption of a carpenter moth, Cossus insularis (Lepidoptera: Cossidae) in apple orchards with synthetic sex pheromone, and registration of the pheromone as an agrochemical. Journal of chemical ecology. 2016;42(7):606-611.
17. Malone L. A., Burgess E. P. J., Barraclough E. I., Poulton J., Todd J. H. Comparison of invertebrate biodiversity in New Zealand apple orchards using integrated pest management, with or without codling moth mating disruption, or organic pest management. Agriculture, Ecosystems & Environment. 2017;247:379-388. DOI: 10.1016/j.agee.2017.06.046
18. Knight A. L., Barros-Parada W., Bosch D. et al. Similar worldwide patterns in the sex pheromone signal and response in the oriental fruit moth, Grapholita molesta (Lepidoptera: Tortricidae). Bull Entomol Res. 2015;105(1):23-31. DOI: 10.1017/S0007485314000637
Review
For citations:
Agasieva I.S., Ismailov V.Ya., Nastasiy A.S., Nefedova M.V. Development of methods for application of pheromonic materials for monitoring and managing the number of apple phytophages. Horticulture and viticulture. 2021;(2):47-53. (In Russ.) https://doi.org/10.31676/0235-2591-2021-2-47-53