Chinese Journal of Biological Control ›› 2025, Vol. 41 ›› Issue (1): 220-230.DOI: 10.16409/j.cnki.2095-039x.2024.07.002
• TECHNICAL REVIEWS • Previous Articles
LIN Wenhan1,2, WANG Jing2, ZHOU Yutong2, SANG Wen2, QIU Baoli1
Received:
2024-01-28
Published:
2025-03-21
CLC Number:
LIN Wenhan, WANG Jing, ZHOU Yutong, SANG Wen, QIU Baoli. Advance in Push-Pull Strategy for Control of the Asian Citrus Psyllid Diaphorina citri[J]. Chinese Journal of Biological Control, 2025, 41(1): 220-230.
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[1] 郭文武, 叶俊丽, 邓秀新. 新中国果树科学研究70年——柑橘[J]. 果树学报, 2019, 36(10): 1264-1272. [2] 祁春节, 顾雨檬, 曾彦. 我国柑橘产业经济研究进展[J]. 华中农业大学学报, 2021, 40(1): 58-69. [3] 黄宗辉. 柑橘病虫害发生的原因及综合防控措施[J]. 南方园艺, 2020, 31(3): 53-55. [4] 谢佩华, 苏朝安, 林自国. 柑桔木虱生物学研究[J]. 浙江农业大学学报, 1989(2): 90-94. [5] 中华人民共和国农业农村部公告第333号[EB]. 中华人民共和国农业农村部公报, 2020(10): 116. [6] Emily K, Xavier M, Angel H, et al. Repellent activity of botanical oils against Asian citrus psyllid, Diaphorina citri (Hemiptera: Liviidae)[J]. Insects, 2016, 7(3): 35. [7] Gottwald T R. Current epidemiological understanding of citrus Huanglongbing[J]. Annual Review of Phytopathology, 2010, 48: 119-139. [8] Boina D R, Bloomquist J R. Chemical control of the Asian citrus psyllid and of huanglongbing disease in citrus[J]. Pest Management Science, 2015, 71(6): 808-823. [9] 邓明学, 潘振兴, 谭有龙, 等. 柑橘木虱对4 种新烟碱类杀虫剂的交互抗性[J]. 农药, 2012, 51(2): 153-155. [10] 桑文, 刘燕梅, 邱宝利. 柑橘木虱绿色防控技术研究进展[J]. 应用昆虫学报, 2018, 55(4): 557-564. [11] 戈峰. 论害虫生态调控策略与技术[J]. 应用昆虫学报, 2020, 57(1): 10-19. [12] 尹海辰, 李文静, 许敏, 等. 昆虫嗅觉视觉信号识别及相关引诱技术研究进展[J]. 湖北植保, 2020(5): 56-64. [13] Pyke B, Rice M, Sabine B, et al. The push-pull strategy-behavioural control of Heliothis [J]. Australian Cotton Grower, 1987, 9(1): 7-9. [14] Cook S M, Khan Z R, Pickett J A. The use of push-pull strategies in integrated pest management[J]. Annual Review of Entomology, 2007, 52(1): 375-400. [15] Watts N P, Hunter F, Smart L E, et al. Effects of a turnip rape trap crop on the spatial distribution of Meligethes aeneus and Ceutorhynchus assimilis in oilseed rape[J]. IOBC/wprs Bull, 2004, 27(10): 199-206. [16] Duraimurugan P, Regupathy A. Push-pull strategy with trap crops, neem and nuclear polyhedrosis virus for insecticide resistance management in Helicoverpa armigera (Hubner) in cotton[J]. American Journal of Applied Sciences, 2005, 2: 1042-1048. [17] Miller J R, Cowles R S. Stimulo-deterrent diversion: A concept and its possible application to onion maggot control[J]. Journal of Chemical Ecology, 1990, 16(11): 3197-3212. [18] Nalyanya G, Moore C B, Schal C. Integration of repellents, attractants, and insecticides in a ‘push-pull’ strategy for managing German Cockroach (Dictyoptera: Blattellidae) populations[J]. Journal of Medical Entomology, 2000, 37(3): 427-434 [19] Peterson C J, Nemetz L T, Jones L M, et al. Behavioral activity of Catnip (Lamiaceae) essential oil components to the German Cockroach (Blattodea: Blattellidae)[J]. Journal of Economic Entomology, 2002, 95(2): 377-380. [20] Riddick E W, Aldrich J R, Davis J C. Deet repels Harmonia axyridis (Pallas) (Coleoptera: Coccinellidae) adults in laboratory bioassays[J]. Journal of Entomological Science, 2004, 39(3): 373-385. [21] Barnard D R, Xue R D. Laboratory evaluation of mosquito repellents against Aedes albopictus, Culex nigripalpus, and Ochlerotatus triseriatus (Diptera: Culicidae)[J]. Journal of Medical Entomology, 2004(4): 726-730. [22] Yeboah S, Ennin S A, IBRAHIM A, et al. Effect of spatial arrangement of push-pull companion plants on fall armyworm control and agronomic performance of two maize varieties in Ghana[J]. Crop Protection, 2021, 145: 105612. [23] 陈文斌. 烟粉虱对三种寄主植物的选择性及植株挥发物对其选择行为的影响[D]. 扬州: 扬州大学, 2021. [24] 刘潇. 生物化学农药发展现状及趋势分析[J]. 化学工业, 2021, 39(1): 53-58. [25] 张旭颖. 非寄主植物挥发油对亚洲柑橘木虱的驱避作用研究[D]. 广州: 华南农业大学, 2020. [26] Zaka S M, Zeng X N, Holford P, et al. Repellent effect of guava leaf volatiles on settlement of adults of citrus psyllid, Diaphorina citri Kuwayama, on citrus[J]. Insect Science, 2010, 17(1): 39-45. [27] Ichinose K, Hoa N V, Bang D V, et al. Limited efficacy of guava interplanting on citrus greening disease: effectiveness of protection against disease invasion breaks down after one year[J]. Crop Protection, 2012, 34: 119-126. [28] Barman J C, Campbell S A, Zeng X. Exposure to guava affects citrus olfactory cues and attractiveness to Diaphorina citri (Hemiptera: Psyllidae)[J]. Environmental Entomology, 2016(3): 694-699. [29] Yang Y, Beattie G A C, Hart R N S, et al. Influences of leaf age and type, non-host volatiles, and mineral oil deposits on the incidence, distribution, and form of stylet tracks of Diaphorina citri[J]. Entomologia Experimentalis et Applicata, 2013, 147(1): 33-49. [30] Mann R S, Rouseff R L, Smoot J M, et al. Sulfur volatiles from Allium spp. affect Asian citrus psyllid, Diaphorina citri Kuwayama (Hemiptera: Psyllidae), response to citrus volatiles[J]. Bulletin of Entomological Research, 2011, 101(1): 89-97. [31] Yan Z, Zhang Q, Zhang N, et al. Repellency of forty-one aromatic plant species to the Asian citrus psyllid, vector of the bacterium associated with huanglongbing[J]. Ecology and Evolution, 2020, 10(23): 12940-12948. [32] Kuhns E H, Martini X, Hoyte A, et al. Repellent activity of botanical oils against Asian citrus psyllid, Diaphorina citri (Hemiptera: Liviidae)[J]. Insects, 2016, 7(3): 35. [33] 岑伊静, 叶峻铭, 徐长宝, 等. 柑橘木虱对几种非嗜食植物挥发油的趋性反应测定[J]. 华南农业大学学报, 2005(3): 41-44. [34] 欧剑峰. 薇甘菊活性化学成分对双额岩小粪蝇驱避作用研究[D]. 广州: 华南农业大学, 2018. [35] Rizvi S, Xie F, Ling S, et al. Development and evaluation of emulsifiable concentrate formulation containing Sophora alopecuroides L. extract for the novel management of Asian citrus psyllid[J]. Environmental Science and Pollution Research, 2019, 26(21): 21871-21881. [36] Rizvi S, Ling S, Tian F, et al. Interference mechanism of Sophora alopecuroides L. alkaloids extract on host finding and selection of the Asian citrus psyllid Diaphorina citri Kuwayama (Hemiptera: Psyllidae)[J]. Environmental Science and Pollution Research, 2019, 26(2): 1548-1557. [37] Miranda M P, Zanardi O Z, Tomaseto A F, et al. Processed kaolin affects the probing and settling behavior of Diaphorina citri (Hemiptera: Lividae)[J]. Pest Management Science, 2018, 74(8): 1964-1972. [38] Hu W, Zheng R, Liao Y, et al. Evaluating the biological potential of prodigiosin from Serratia marcescens KH-001 against Asian citrus psyllid[J]. Journal of Economic Entomology, 2021, 114(3): 1219-1225. [39] 张志涛, 张玉芬. 昆虫声通讯及其应用于害虫测报的可能性[J]. 病虫测报, 1990(2): 42-44. [40] 赵丽稳, 王鸿斌, 张真, 等. 昆虫声音信号和应用研究进展[J]. 植物保护, 2008(4): 5-12. [41] 曹凤勤, 程立生. 昆虫鸣声的研究进展及其应用概述[J]. 华南热带农业大学学报, 2004(1): 29-33. [42] Tishechkin D Y. Acoustic communication in the psyllids (Homoptera, Psyllinea) from Moscow district[J]. Moscow University Bulletin, 1989, 16: 20-24. [43] Tishechkin D Y. Vibratory communication in Psylloidea (Hemiptera)[M]. Insect Sounds and Communication, 2005, 357-363. [44] Taylor K L. A possible stridulatory organ in some Psylloidea (Homoptera)[J]. Australian Journal of Entomology, 1985, 24(1): 77-80. [45] Tishechkin D Y. New data on vibratory communication in jumping plant lice of the families Aphalaridae and Triozidae (Homoptera, Psyllinea)[J]. Entomological Review, 2007, 87(4): 394-400. [46] Wenninger E J, Hall D G, Mankin R W. Vibrational communication between the sexes in Diaphorina citri (Hemiptera: Psyllidae)[J]. Annals of the Entomological Society of America, 2009(3): 547-555. [47] Lujo S, Hartman E, Norton K, et al. Disrupting mating behavior of Diaphorina citri (Liviidae)[J]. Journal of Economic Entomology, 2016, 109(6): 2373-2379. [48] Alquezar B, Volpe H, Magnani R F, et al. Engineered orange ectopically expressing the Arabidopsis Beta-Caryophyllene synthase is not attractive to Diaphorina citri, the vector of the bacterial pathogen associated to Huanglongbing[J]. Frontiers in Plant Science, 2021, 12: 641457. [49] Croxton S D, Stansly P A. Metalized polyethylene mulch to repel Asian citrus psyllid, slow spread of huanglongbing and improve growth of new citrus plantings[J]. Pest Management Science, 2014, 70(2): 318-323. [50] Dos S M, Coelho F M, Modesto F, et al. Behavioral responses of Asian citrus psyllid (Hemiptera: Liviidae) to salinity-stressed citrus[J]. Environmental Entomology, 2021, 50(3): 719-731. [51] Hall D G, Ammar E D, Bowman K D, et al. Epifluorescence and stereomicroscopy of trichomes associated with resistant and susceptible host plant genotypes of the Asian citrus psyllid (Hemiptera: Liviidae), vector of citrus greening disease bacterium[J]. Journal of Microscopy and Ultrastructure, 2018, 6(1): 56-63. [52] Patt J M, Robbins P S, Niedz R, et al. Exogenous application of the plant signalers methyl jasmonate and salicylic acid induces changes in volatile emissions from citrus foliage and influences the aggregation behavior of Asian citrus psyllid (Diaphorina citri), vector of Huanglongbing[J]. PLoS ONE, 2018, 13(3): e193724. [53] 钦俊德, 王琛柱. 论昆虫与植物的相互作用和进化的关系[J]. 昆虫学报, 2001(3): 360-365. [54] 陆宴辉, 张永军, 吴孔明. 植食性昆虫的寄主选择机理及行为调控策略[J]. 生态学报, 2008(10): 5113-5122. [55] Kaupp U B. Olfactory signalling in vertebrates and insects: differences and commonalities[J]. Nature Reviews Neuroscience, 2010, 11(3): 188-200. [56] Hodkinson I D, White I M. The neotropical psylloidea (Homoptera: Insecta): an annotated check list[J]. Annals and Magazine of Natural History, 2010, 15(3): 491-523. [57] 李娜. 专食性天敌莲草直胸跳甲对寄主植物选择的嗅觉行为研究[D]. 太原: 山西农业大学, 2016. [58] 汤夏安, 李贤良, 池章辰, 等. 柑橘木虱对12种寄主植物嫩梢及其挥发物成分的趋性反应[J]. 环境昆虫学报, 2021, 43(2): 485-491. [59] 许鑫. 亚洲柑橘木虱对九里香挥发物的趋性研究[D]. 广州: 华南农业大学, 2020. [60] 陈建利, 阮传清, 刘波, 等. 柑橘木虱对柑橘不同品种的趋性[J]. 福建农业学报, 2011, 26(2): 280-283. [61] 李涛. 柑橘木虱对不同柑橘种质资源的选择性[D]. 福州: 福建农林大学, 2014. [62] 宋晓兵, 彭埃天, 崔一平, 等. 九里香挥发物对柑橘木虱的引诱效果及混配筛选试验[J]. 植物保护学报, 2019, 46(3): 589-594. [63] Wenninger E J, Stelinski L L, Hall D G. Roles of olfactory cues, visual cues, and mating status in orientation of Diaphorina citri Kuwayama (Hemiptera: Psyllidae) to four different host plants[J]. Environmental Entomology, 2009, 38(1): 225-234. [64] Patt J M, Setamou M. Responses of the Asian citrus psyllid to volatiles emitted by the flushing shoots of its rutaceous host plants[J]. Environmental Entomology, 2010, 39(2): 618-624. [65] Robbins P S, Alessandro R T, Lapointe S. Volatile profiles of young leaves of Rutaceae spp. varying in susceptibility to the Asian citrus psyllid (Hemiptera: Psyllidae)[J]. Florida Entomologist, 2012, 95(3): 774-776. [66] Sule h, Muhamad R, Omar D, et al. Response of Diaphorina citri Kuwayama (Hemiptera: Psyllidae) to volatiles emitted from leaves of two Rutaceous Plants[J]. Journal of Agricultural Science, 2012, 4(6): 152. [67] 卢慧林, 孙小媛, 方小端, 等. 藿香蓟和假臭草对柑橘木虱种群发展的影响[J]. 环境昆虫学报, 2017, 39(6): 1214-1218. [68] 卢慧林, 欧阳革成, 方小端. 龙葵上柑橘木虱存活观察与黄龙病检测[J]. 环境昆虫学报, 2015, 37(3): 543-547. [69] Lu H, Fang X, Wu F, et al. Adaptability and ‘Candidatus Liberibacter asiaticus’ titres of Diaphorina citri adults on three weed species in China[J]. Pest Management Science, 2021, 77(7): 3216-3223. [70] Ramírez-godoy A, Vera-hoyos M D P, Jiménez-beltrán N, et al. Evaluation of yellow sticky traps baited with citrus scents, coconut oil, and commercial lures as a simple tool to monitor Diaphorina citri (Hemiptera: Liviidae) under tropical dry forest conditions[J]. Journal of Economic Entomology, 2018, 111(6): 2746-2754. [71] 邱海燕, 付步礼, 李善光, 等. 柑桔木虱对45种植物精油的趋性反应[J]. 中国南方果树, 2018, 47(2): 50-53. [72] 许再福. 普通昆虫学[M]. 北京: 科学出版社, 2009, 192. [73] Feuda R, Marlétaz F, Bentley M A, et al. Conservation, duplication, and divergence of five opsin genes in insect evolution[J]. Genome Biology and Evolution, 2016, 8(3): 579-587. [74] Porter M L, Blasic J R, Bok M J, et al. Shedding new light on opsin evolution[J]. Proceedings of the Royal Society B: Biological Sciences, 2012, 279(1726): 3-14. [75] Li C, Tian F, Lin T, et al. The expression and function of opsin genes related to the phototactic behavior of Asian citrus psyllid[J]. Pest Management Science, 2020, 76(4): 1578-1587. [76] Brennan E B, Weinbaum S A. Psyllid responses to colored sticky traps and the colors of juvenile and adult leaves of the heteroblastic host plant Eucalyptus globulus[J]. Environmental Entomology, 2001, 30(2): 365-370. [77] Flores D, Hall D G, Jenkins D A, et al. Abundance of Asian citrus psyllid on yellow sticky traps in Florida, Puerto Rico, and Texas citrus groves[J]. Southwestern Entomologist, 2015, 34(1): 1-11. [78] Hall D G, Ciomperlik H M A. A comparison of traps and stem tap sampling for monitoring adult Asian citrus psyllid (Hemiptera: Psyllidae) in citrus[J]. Florida Entomologist, 2007, 90(2): 327-334. [79] 吴兰花, 陈仁琛, 韩若琛, 等. 柑橘木虱对不同颜色的趋性研究[J]. 果树学报, 2018, 35(12): 1509-1515. [80] 赵政, 夏长秀, 姚志超, 等. 不同色板和悬挂方式对柑橘木虱的诱集效果[J]. 果树学报, 2018, 35(5): 596-601. [81] 赵龙龙, 韩凤, 闫彩英. 使用黄板防控梨园害虫的生态效益评价[J]. 植物医生, 2021, 34(6): 33-37. [82] Hall D G. An assessment of yellow sticky card traps as indicators of the abundance of adult Diaphorina citri (Hemiptera: Psyllidae) in citrus[J]. Journal of Economic Entomology, 2009, 102(1): 446-452. [83] Sétamou M, Sanchez A, Patt J M, et al. Diurnal patterns of flight activity and effects of light on host finding behavior of the Asian citrus psyllid[J]. Journal of Insect Behavior, 2012, 25(3): 264-276. [84] 王飞凤, 王也, 陈雨晨, 等. 柑橘木虱成虫趋光行为反应[J]. 环境昆虫学报, 2020, 42(1): 187-192. [85] 袁楷, 陈祯, 杨婷婷, 等. 光谱和光强度对柑橘木虱成虫趋光行为的影响[J]. 云南农业大学学报(自然科学版), 2020, 35(5): 750-755. [86] Paris T M, Croxton S D, Stansly P A, et al. Temporal response and attraction of Diaphorina citri to visual stimuli[J]. Entomologia Experimentalis et Applicata, 2015, 155(2): 137-147. [87] 林雄杰, 范国成, 胡菡青, 等. 适配太阳能诱虫器诱杀柑橘木虱LED光源的筛选[J]. 植物保护, 2013, 39(4): 52-55. [88] Chittka L. Does bee color vision predate the evolution of flower color?[J]. Naturwissenschaften, 1996, 83(3): 136-138. [89] Allan S A. Spectral sensitivity of the Asian citrus psyllid, Diaphorina citri[C]. Grower Day International Research Conference HLB IV. Orlando, FL. 2015. [90] Warrant E, Nilsson D. Invertebrate vision[M]. Cambridge, UK: Cambridge University Press, 2006, 547. [91] Witzgall P, Kirsch P, Cork A. Sex pheromones and their impact on pest management[J]. Journal of Chemical Ecology, 2010, 36(1): 80-100. [92] Kristoffersen L, Hallberg E, Wallen R, et al. Sparse sensillar array on Trioza apicalis (Homoptera, Triozidae) antennae-an adaptation to high stimulus levels?[J]. Arthropod Structure and Development, 2006, 35(2): 85-92. [93] Onagbola E O, Meyer W L, Boina D R, et al. Morphological characterization of the antennal sensilla of the Asian citrus psyllid, Diaphorina citri Kuwayama (Hemiptera: Psyllidae), with reference to their probable functions[J]. Micron, 2008, 39(8): 1184-1191. [94] Arras J, Hunter W, Bextine B. Comparative analysis of antennae sensory arrays in Asian citrus psyllid, Diaphorina citri, and potato psyllid, Bactericera cockerelli (Hemiptera)[J]. Southwestern Entomologist, 2012, 37(1): 1-12. [95] Mann R S, Rouseff R L, Smoot J, et al. Chemical and behavioral analysis of the cuticular hydrocarbons from Asian citrus psyllid, Diaphorina citri[J]. Insect Science, 2013, 20(3): 367-378. [96] Wenninger E J, Stelinski L L, Hall D G. Behavioral evidence for a female-produced sex attractant in Diaphorina citri[J]. Entomologia Experimentalis et Applicata, 2008, 128(3): 450-459. [97] Zanardi O Z, Volpe H, Favaris A P, et al. Putative sex pheromone of the Asian citrus psyllid, Diaphorina citri, breaks down into an attractant[J]. Scientific Reports, 2018, 8(1): 455. [98] Zanardi O Z, Volpe H, Luvizotto R, et al. Laboratory and field evaluation of acetic acid-based lures for male Asian citrus psyllid, Diaphorina citri[J]. Scientific Reports, 2019, 9(1): 12920. [99] Lapointe S L, Hall D G, George J. A phagostimulant blend for the Asian citrus psyllid[J]. Journal of Chemical Ecology, 2016, 42(9): 941-951. [100] Kahn M C, Offenhauser W. The first field tests of recorded mosquito sounds used for mosquito destruction[J]. American Journal of Tropical Medicine, 1949, 29(5): 811-825. [101]Mistal C, Takács S, Gries G. Evidence for sonic communication in the German cockroach (Dictyoptera: Blattellidae)[J]. The Canadian Entomologist, 2000, 132(6): 867-876. [102] Mankin R W. Applications of acoustics in insect pest management[J]. CABI Reviews, 2012(2012): 1-7. [103] 郭敏, 尚志远. 利用声测报技术检测农产品害虫的新方法[J]. 陕西师范大学学报(自然科学版), 2001(1): 107-112. [104] Patt J M, Meikle W G, Niedz R P, et al. Synthetic ligands of olfactory binding proteins modulate aggregation response of Asian citrus psyllid in the presence of host-plant volatiles[J]. Frontiers in Plant Science, 2018, 9: 1891. [105] Zhang H, Chen J L, Lin J H, et al. Odorant-binding proteins and chemosensory proteins potentially involved in host plant recognition in the Asian citrus psyllid, Diaphorina citri[J]. Pest Management Science, 2020, 76(8): 2609-2618. [106] Wu Z, Zhang H, Bin S, et al. Antennal and abdominal transcriptomes reveal chemosensory genes in the Asian citrus psyllid, Diaphorina citri[J]. PLoS ONE, 2016, 11(7): e159372. [107] Liu X Q, Jiang H B, Fan J Y, et al. An odorant-binding protein of Asian citrus psyllid, Diaphorina citri, participates in the response of host plant volatiles[J]. Pest Management Science, 2021, 77(7): 3068-3079. [108] Zaka S M. 番石榴叶挥发性化合物对亚洲柑橘木虱寄主选择的影响[D]. 广州: 华南农业大学, 2009. [109] Paris T M, Allan S A, Udell B J, et al. Evidence of behavior-based utilization by the Asian citrus psyllid of a combination of UV and green or yellow wavelengths[J]. PLoS ONE, 2017, 12(12): e189228. [110] George J, Lapointe S L, Markle L T, et al. A multimodal attract-and-kill device for the Asian citrus psyllid Diaphorina citri (Hemiptera: Liviidae)[J]. Insects, 2020, 11(12): 870. [111] Patt J M, Meikle W G, Mafra-neto A, et al. Multimodal cues drive host-plant assessment in Asian citrus psyllid (Diaphorina citri)[J]. Environmental Entomology, 2011, 40(6): 1494-1502. [112] 吴丰年. 两种韧皮部杆菌媒介木虱内生原核生物和线粒体基因组研究[D]. 广州: 华南农业大学, 2016. [113] Wu T, Luo X, Xu C, et al. Feeding behavior of Diaphorina citri and its transmission of ‘Candidatus Liberibacter asiaticus’ to citrus[J]. Entomologia Experimentalis et Applicata, 2016, 161(2): 104-111. |
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