Canopy spray deposition and related mortality impacts of commonly used insecticides on Drosophila suzukii Matsumura (Diptera: Drosophilidae) populations in blueberry.
blueberry
dose-response
insecticide
integrated pest management
population modeling
spray equipment
Journal
Pest management science
ISSN: 1526-4998
Titre abrégé: Pest Manag Sci
Pays: England
ID NLM: 100898744
Informations de publication
Date de publication:
Apr 2020
Apr 2020
Historique:
received:
02
08
2019
revised:
22
10
2019
accepted:
06
11
2019
pubmed:
7
11
2019
medline:
21
3
2020
entrez:
7
11
2019
Statut:
ppublish
Résumé
Insecticide applications in blueberry production systems play a crucial role in the control of Drosophila suzukii populations. Here, quantitative spray deposition patterns were obtained under replicated field experiments in blueberry during two field seasons with three sprayers, i.e. cannon, electrostatic, and air-blast. Seven insecticides were tested (at 6 hours using a Potter spray tower) to determine the mortality data for adult D. suzukii. Spray deposition and mortality data for adult D. suzukii were used to create model simulations for insect populations. Model simulations included field deposition rates of sprayers and insecticide mortality as factors. Simulations were applied in different combinations with five applications over a 6-week period. Relative deposition rates for the cannon sprayer were elevated in the upper zones of the canopy, whereas for the air-blast sprayer, deposition was greater in the bottom zones. Electrostatic spray deposition was relatively uniform within the six canopy zones. Clear trends in D. suzukii laboratory mortality were found with lowest to highest mortality recorded for phosmet, spinetoram, spinosad, malathion, cyantraniliprole, zeta-cypermethrin, and methomyl respectively. Maximum D. suzukii population impacts, as shown by model outputs, were observed with air-blast sprayers together with zeta-cypermethrin. The electrostatic sprayer had the least variable canopy deposition among the three types of spray equipment, and the air-blast sprayer had the highest overall deposition rates. This study provides new hypotheses that can be used for field verification with these spray technologies and insecticides as key factors. © 2019 Society of Chemical Industry.
Sections du résumé
BACKGROUND
BACKGROUND
Insecticide applications in blueberry production systems play a crucial role in the control of Drosophila suzukii populations. Here, quantitative spray deposition patterns were obtained under replicated field experiments in blueberry during two field seasons with three sprayers, i.e. cannon, electrostatic, and air-blast. Seven insecticides were tested (at 6 hours using a Potter spray tower) to determine the mortality data for adult D. suzukii. Spray deposition and mortality data for adult D. suzukii were used to create model simulations for insect populations. Model simulations included field deposition rates of sprayers and insecticide mortality as factors. Simulations were applied in different combinations with five applications over a 6-week period.
RESULTS
RESULTS
Relative deposition rates for the cannon sprayer were elevated in the upper zones of the canopy, whereas for the air-blast sprayer, deposition was greater in the bottom zones. Electrostatic spray deposition was relatively uniform within the six canopy zones. Clear trends in D. suzukii laboratory mortality were found with lowest to highest mortality recorded for phosmet, spinetoram, spinosad, malathion, cyantraniliprole, zeta-cypermethrin, and methomyl respectively. Maximum D. suzukii population impacts, as shown by model outputs, were observed with air-blast sprayers together with zeta-cypermethrin.
CONCLUSION
CONCLUSIONS
The electrostatic sprayer had the least variable canopy deposition among the three types of spray equipment, and the air-blast sprayer had the highest overall deposition rates. This study provides new hypotheses that can be used for field verification with these spray technologies and insecticides as key factors. © 2019 Society of Chemical Industry.
Substances chimiques
Insecticides
0
Malathion
U5N7SU872W
Types de publication
Journal Article
Langues
eng
Sous-ensembles de citation
IM
Pagination
1531-1540Subventions
Organisme : National Institute for Food and Agriculture
ID : #2014-51300-22238
Organisme : United States Department of Agriculture (USDA)
ID : #2015-51181-24252
Organisme : Oregon Blueberry Commission
ID : #2010-51181-21167
Informations de copyright
© 2019 Society of Chemical Industry.
Références
Asplen MK, Anfora G, Biondi A, Choi DS, Chu D, Daane KM et al., Invasion biology of spotted wing Drosophila (Drosophila suzukii): a global perspective and future priorities. J Pest Sci 88:469-494 (2015).
Cini A, Ioriatti C and Anfora G, A review of the invasion of Drosophila suzukii in Europe and a draft research agenda for integrated pest management. Bull Insectol 65:149-160 (2012).
Walsh DB, Bolda MP, Goodhue RE, Dreves AJ, Lee J, Bruck DJ et al., Drosophila suzukii (Diptera: Drosophilidae): invasive pest of ripening soft fruit expanding its geographic range and damage potential. J Integr Pest Manag 2:G1-G7 (2011).
Dos Santos LA, Mendes MF, Kruger AP, Blauth ML, Gottschalk MS and Garcia FR, Global potential distribution of Drosophila suzukii (Diptera, Drosophilidae). PLoS One 12:e0174318 (2017).
Rodriguez-Saona C, Cloonan KR, Sanchez-Pedraza F, Zhou YC, Giusti MM and Benrey B, Differential susceptibility of wild and cultivated blueberries to an invasive frugivorous pest. J Chem Ecol 45:286-297 (2019).
National Agricultural Statistics Service, Press Release. (2017) Available: https://wwwnassusdagov/Statistics_by_State/Oregon/Publications/Fruits_Nuts_and_Berries/indexphp [31 May 2018].
Bruck DJ, Bolda M, Tanigoshi L, Klick J, Kleiber J, DeFrancesco J et al., Laboratory and field comparisons of insecticides to reduce infestation of Drosophila suzukii in berry crops. Pest Manag Sci 67:1375-1385 (2011).
Klick J, Yang WQ, Lee JC and Bruck DJ, Reduced spray programs for Drosophila suzukii management in berry crops. Int J Pest Manage 62:368-377 (2016).
Van Timmeren S, Mota-Sanchez D, Wise JC and Isaacs R, Baseline susceptibility of spotted wing drosophila (Drosophila suzukii) to four key insecticide classes. Pest Manag Sci 74:78-87 (2018).
Van Timmeren S and Isaacs R, Control of spotted wing drosophila, Drosophila suzukii, by specific insecticides and by conventional and organic crop protection programs. Crop Prot 54:126-133 (2013).
Duga AT, Ruysen K, Dekeyser D, Nuyttens D, Bylemans D, Nicolai BM et al., Spray deposition profiles in pome fruit trees: effects of sprayer design, training system and tree canopy characteristics. Crop Prot 67:200-213 (2015).
Chen Y, Ozkan HE, Zhu H, Derksen RC and Krause CR, Spray deposition inside tree canopies from a newly developed variable-rate air-assisted sprayer. Trans ASABE 56:1263-1272 (2013).
Solanelles F, Escola A, Planas S, Rosell JR, Camp F and Gracia F, An electronic control system for pesticide application proportional to the canopy width of tree crops. Biosyst Eng 95:473-481 (2006).
VanEe G, Ledebuhr R, Hanson E, Hancock J and Ramsdell DC, Canopy development and spray deposition in highbush blueberry. HortTechnology 10:353-359 (2000).
Pascuzzi S, Cerruto E and Manetto G, Foliar spray deposition in a ‘tendone’ vineyard as affected by airflow rate, volume rate and vegetative development. Crop Prot 91:34-48 (2017).
Tochen S, Woltz JM, Dalton DT, Lee JC, Wiman NG and Walton VM, Humidity affects populations of Drosophila suzukii (Diptera: Drosophilidae) in blueberry. J Appl Entomol 140:47-57 (2016).
Rendon D and Walton VM, Drip and overhead sprinkler irrigation in blueberry as cultural control for Drosophila suzukii (Diptera: Drosophilidae) in northwestern United States. J Econ Entomol 112:745-752 (2019).
Diepenbrock LM and Burrack HJ, Variation of within-crop microhabitat use by Drosophila suzukii (Diptera: Drosophilidae) in blackberry. J Appl Entomol 141:1-7 (2017).
Evans RK, Toews MD and Sial AA, Diel periodicity of Drosophila suzukii (Diptera: Drosophilidae) under field conditions. PLoS One 12:e0171718 (2017).
Wise JC, Jenkins PE, Schilder AMC, Vandervoort C and Isaacs R, Sprayer type and water volume influence pesticide deposition and control of insect pests and diseases in juice grapes. Crop Prot 29:378-385 (2010).
Owen-Smith P, Perry R, Wise J, Jamil RZR, Gut L, Sundin G et al., Spray coverage and pest management efficacy of a solid set canopy delivery system in high density apples. Pest Manag Sci 75:3050-3059 (2019).
Shawer R, Tonina L, Tirello P, Duso C and Mori N, Laboratory and field trials to identify effective chemical control strategies for integrated management of Drosophila suzukii in European cherry orchards. Crop Prot 103:73-80 (2018).
Gautam BK, Little BA, Taylor MD, Jacobs JL, Lovett WE, Holland RM et al., Effect of simulated rainfall on the effectiveness of insecticides against spotted wing drosophila in blueberries. Crop Prot 81:122-128 (2016).
Scherm H, Savelle AT and Law SE, Effect of electrostatic spray parameters on the viability of two bacterial biocontrol agents and their deposition on blueberry flower stigmas. Biocontrol Sci. Technol 17:285-293 (2007).
Khot LR, Ehsani R, Albrigo G, Larbi PA, Landers A, Campoy J et al., Air-assisted sprayer adapted for precision horticulture: spray patterns and deposition assessments in small-sized citrus canopies. Biosyst Eng 113:76-85 (2012).
Law SE and Scherm H, Electrostatic application of a plant-disease biocontrol agent for prevention of fungal infection through the stigmatic surfaces of blueberry flowers. J Electrostat 63:399-408 (2005).
Braekman P, Foque D, Van Labeke MC, Pieters JG and Nuyttens D, Influence of spray application technique on spray deposition in greenhouse ivy pot plants grown on hanging shelves. HortScience 44:1921-1927 (2009).
Smirle MJ, Zurowski CL, Ayyanath MM, Scott IM and MacKenzie KE, Laboratory studies of insecticide efficacy and resistance in Drosophila suzukii (Matsumura) (Diptera: Drosophilidae) populations from British Columbia, Canada. Pest Manag Sci 73:130-137 (2017).
Gress BE and Zalom FG, Identification and risk assessment of spinosad resistance in a California population of Drosophila suzukii. Pest Manag Sci 75:1270-1276 (2019).
Miranda-Fuentes A, Rodriguez-Lizana A, Cuenca A, Gonzalez-Sanchez EJ, Blanco-Roldan GL and Gil-Ribes JA, Improving plant protection product applications in traditional and intensive olive orchards through the development of new prototype air-assisted sprayers. Crop Prot 94:44-58 (2017).
Xiao K, Ma YJ and Gao GD, An intelligent precision orchard pesticide spray technique based on the depth-of-field extraction algorithm. Comput. Electron. Agric 133:30-36 (2017).
Wiman NG, Walton VM, Dalton DT, Anfora G, Burrack HJ, Chiu JC et al., Integrating temperature-dependent life table data into a matrix projection model for Drosophila suzukii population estimation. PLoS One 9:e106909 (2014).
Wiman NG, Dalton DT, Anfora G, Biondi A, Chiu JC, Daane KM et al., Drosophila suzukii population response to environment and management strategies. J Pest Sci 89:653-665 (2016).
Pfab F, Stacconi MVR, Anfora G, Grassi A, Walton V and Pugliese A, Optimized timing of parasitoid release: a mathematical model for biological control of Drosophila suzukii. Theor Ecol 11:489-501 (2018).
de la Vega GJ and Corley JC, Drosophila suzukii (Diptera: Drosophilidae) distribution modelling improves our understanding of pest range limits. Int J Pest Manag 65:217-227 (2019).
Strik BC, Vance AJ and Finn CE, Northern highbush blueberry cultivars differed in yield and fruit quality in two organic production systems from planting to maturity. HortScience 52:844-851 (2017).
United States Bureau of Reclamation, [Online] (2017). Agrimet Historical Archive Weather Data Access. Bureau of Reclamation Pacific Northwest Region Available: https://www.usbr.gov/pn/agrimet/webarcread.html
International Organization for Standardization, (2007). Available: https://www.iso.org/standard/36305.html [6 May 2018].
Salyani M, Zhu H, Sweeb RD and Pai N, Assessment of spray distribution with water-sensitive paper. Crop protection equipment - Field measurement of spray distribution in tree and bush crops. Agric Eng Int 15:101-111 (2013).
R Development Core Team. R: A Language and Environment for Statistical Computing. (2018). R Foundation for Statistical Computing, Vienna.
Wickham H, ggplot2: Elegant Graphics for Data Analysis. Springer, New York, NY (2016).
Herron GA, Beattie GAC, Kallianpur A and Barchia I, A Potter spray tower bioassay of two petroleum spray oils against adult female Panonychus ulmi (Koch) and Tetranychus urticae Koch (Acari: Tetranychidae). Exp Appl Acarol 22:553-558 (1998).
Druciarek T, Lewandowski M and Kozak M, Demographic parameters of Phyllocoptes adalius (Acari: Eriophyoidea) and influence of insemination on female fecundity and longevity. Exp Appl Acarol 63:349-360 (2014).
Mansour F, Field and laboratory experiments on the response and development of resistance to pesticides and population-density of Tetranychus cinnabarinus in Israel. Phytoparasitica 16:239-245 (1988).
Dalton DT, Walton VM, Shearer PW, Walsh DB, Caprile J and Isaacs R, Laboratory survival of Drosophila suzukii under simulated winter conditions of the Pacific Northwest and seasonal field trapping in five primary regions of small and stone fruit production in the United States. Pest Manag Sci 67:1368-1374 (2011).
Tochen S, Dalton DT, Wiman N, Hamm C, Shearer PW and Walton VM, Temperature-related development and population parameters for Drosophila suzukii (Diptera: Drosophilidae) on cherry and blueberry. Environ Entomol 43:501-510 (2014).
Ritz C, Baty F, Streibig JC and Gerhard D, Dose-response analysis using R. PLoS One 10:e0146021 (2015).
Ritz C, Toward a unified approach to dose-response modeling in ecotoxicology. Environ Toxicol Chem 29:220-229 (2010).
Neill JW, Testing for lack of fit in nonlinear-regression. Ann Stat 16:733-740 (1988).
Metz JAJ and Diekmann O. Exactfinite dimensional representations of models for physiologically structured populations. I: The abstract foundations of linear chain trickery. In Differential Equations with Applications inBiology, Physics, and Engineering, ed. by Goldstein JA and Schappacher FKW. Marcel Dekker Inc. New York (1991).
Wolfram Research I, Mathematica. Wolfram Research, Inc., Champaign, IL (2019).
Beers EH, Van Steenwyk RA, Shearer PW, Coates WW and Grant JA, Developing Drosophila suzukii management programs for sweet cherry in the western United States. Pest Manag Sci 67:1386-1395 (2011).
Siegel JP, Strmiska MM, Niederholzer FJ, Giles DK and Walse SS, Evaluating insecticide coverage in almond and pistachio for control of navel orangeworm (Amyelois transitella) (Lepidoptera: Pyralidae). Pest Manag Sci 75:1435-1442 (2019).
Hussain MD and Moser E, Some fundamentals of electrostatic spraying. Agric Mech 17:35-39 (1986).
Law SE, Spatial-distribution of electrostatically deposited sprays on living plants. J Econ Entomol 75:542-546 (1982).
Kirk IW, Hoffmann WC and Carlton JB, Aerial electrostatic spray system performance. Trans ASAE 44:1089-1092 (2001).
Pascuzzi S and Cerruto E, Spray deposition in ‘tendone’ vineyards when using a pneumatic electrostatic sprayer. Crop Prot 68:1-11 (2015).
Martin DE, Latheef MA and Lopez JD, Electrostatically charged aerial application improved spinosad deposition on early season cotton. J Electrostat 97:121-125 (2019).
Wise J, Vanderpoppen R, Vandervoort C, O'Donnell C and Isaacs R, Curative activity contributes to control of spotted-wing drosophila (Diptera: Drosophilidae) and blueberry maggot (Diptera: Tephritidae) in highbush blueberry. Can Entomol 147:109-117 (2015).