[1] Desneux N, Wajnberg E, Wyckhuys G A K, et al. Biological invasion of European tomato crops by Tuta absoluta:ecology, geographic expansion and prospects for biological control[J]. Journal of Pest Science, 2010, 83(3):197-215. [2] Sridhar V, Chakravarthy A K, Asokan R, et al. New record of the invasive South American tomato leafminer, Tuta absoluta(Meyrick)(Lepidoptera:Gelechiidae)in India[J]. Pest Management in Horticultural Ecosystems, 2014, 20(2):148-154. [3] 张桂芬,冼晓青,张毅波,等.警惕南美番茄潜叶蛾Tuta absoluta(Meyrick)在中国扩散[J]. 植物保护, 2020, 46(2):281-286. [4] 张桂芬,马德英,刘万学,等.中国新发现外来入侵害虫--南美番茄潜叶蛾(鳞翅目:麦蛾科)[J]. 生物安全学报, 2019, 28(3):200-203. [5] Zhang G F, Ma D Y, Wang Y S, et al. First report of the South American tomato leafminer, Tuta absoluta(Meyrick), in China[J]. Journal of Integrative Agriculture, 2020, 19(7):1912-1917. [6] Miranda M M M, Picanço M, Zanuncio J C, et al. Ecological life table of Tuta absoluta(Meyrick)(Lepidoptera:Gelechiidae)[J]. Biocontrol Science Technology, 1998, 8(4):597-606. [7] Aigbedion-Atalor P O, Hill M P, Zalucki M P, et al. The South America tomato leafminer, Tuta absoluta(Lepidoptera:Gelechiidae), spreads its wings in Eastern Africa:distribution and socioeconomic impacts[J]. Journal of Economic Entomology, 2019, 112(6):2797-2807. [8] Tonnang Henri E Z, Mohamed Samira A, Mohamed Samira F, et al. Identification and risk assessment for worldwide invasion and spread of Tuta absoluta with a focus on sub-saharan Africa:implications for phytosanitary measures and management.[J]. PLoS ONE, 2015, 10(8):1-19. [9] Yang H S, Zhang C, Shen Y Y, et al. Life table parameters of the tomato leaf miner Tuta absoluta(Lepidoptera:Gelechiidae)on five tomato cultivars in China[J]. Insects, 2024, 15(3):208. [10] Vidal M C, Murphy S M. Bottom-up vs. top-down effects on terrestrial insect herbivores:a meta-analysis[J]. Ecology Letters, 2018, 21(1):138-150. [11] Van Lenteren J C. The state of commercial augmentative biological control:plenty of natural enemies, but a frustrating lack of uptake[J]. BioControl,2012, 57(1):1-20. [12] Van Lenteren J C, Bolckmans K, Köhl J, et al. Biological control using invertebrates and microorganisms:Plenty of new opportunities[J]. BioControl,2018, 63(1):39-59. [13] Hassell M P, May R M. Generalist and specialist natural enemies in insect predator-prey interactions[J]. The Journal of Animal Ecology, 1986, 55:923-940. [14] Snyder E W, Evans W E. Ecological effects of invasive arthropod generalist predators[J]. Annual Review of Ecology, Evolution, and Systematics, 2006,37:95-122. [15] Symondson W O C, Glen D M, Ives A R, et al. Dynamics of the relationship between a generalist predator and slugs over five years[J]. Ecology, 2002, 83:137-147. [16] Gonthier J, ArnóJ, Romeis J, et al. Insight into the host-specificity of a native and a newly introduced parasitoid of Tuta absoluta and prospect for biological control[J]. Biological Control, 2024, 191:105464. [17] Sohrabi F, Enkegaard A, Shishehbor P, et al. Intraguild predation by the generalist predator Orius majusculus on the parasitoid Encarsia formosa[J]. BioControl, 2013, 58:65-72 [18] Polis G A, Myers C A, Holt R D. The ecology and evolution of intraguild predation:potential competitors that eat each other[J]. Annual Review of Ecology and Systematics, 1989, 20(1):297. [19] Holt R D, Polis G A. A theoretical framework for intraguild predation[J]. The American Naturalist, 1997, 149(4):745-764. [20] LucasÉ, Coderre D, Brodeur J. Intraguild predation among aphid predators:characterization and influence of extraguild prey density[J]. Ecology, 1998,79(3):1084-1092. [21] Hindayana D, Meyhöfer R, Scholz D, et al. Intraguild predation among the hoverfly Episyrphus balteatus de Geer(Diptera:Syrphidae)and other aphidophagous predators[J]. Biological Control, 2001, 20(3):236-246. [22] Tormos J, Beitia F, Asís J, et al. Intraguild interactions between two biological control agents in citrus fruit:implications for biological control of medfly[J]. Annals of Applied Biology, 2018, 172(3):321-331. [23] Mutiso J M, Munyao D M, Ochieng G A, et al. Competitive plant-mediated and intraguild predation interactions of the invasive Spodoptera frugiperda and resident stemborers Busseola fusca and Chilo partellus in maize cropping systems in Kenya[J]. Insects, 2022, 13(9):790-790. [24] Ferracini C, Bueno V H P, Dindo M L, et al. Natural enemies of Tuta absoluta in the Mediterranean basin, Europe and South America[J]. Biocontrol Science and Technology, 2019, 29(6):578-609. [25] Mansour R, Biondi A. Releasing natural enemies and applying microbial and botanical pesticides for managing Tuta absoluta in the MENA region[J]. Phytoparasitica, 2021, 49:179-194. [26] 罗涛涛,阎姝彦,曹梦宇,等.基于捕食性天敌资源的番茄潜叶蛾生物防控研究进展[J]. 中国生物防治学报, 2024, 40(4):727-738. [27] 梁永轩,郭建洋,王绮静,等.番茄潜叶蛾生物防治研究进展[J]. 热带生物学报, 2023, 14(1):88-104. [28] Desneux N, Han P, Mansour R, et al. Integrated pest management of Tuta absoluta:practical implementations across different world regions[J]. Journal of Pest Science, 2022, 95(1):1-23. [29] Giustolin T A, Vendramim J D, Alves S B, et al. Susceptibility of Tuta absoluta(Meyrick)(Lep., Gelechiidae)reared on two species of Lycopersicon to Bacillus thuringiensis var. kurstaki[J]. Journal of Applied Entomology, 2001, 125:551-556. [30] Urbaneja A, González-Cabrera J, ArnóJ, et al. Prospects for the biological control of Tuta absoluta in tomatoes of the Mediterranean basin[J]. Pest Management Science, 2012, 68:1215-1222. [31] Klieber J A, Reineke A. The entomopathogen Beauveria bassiana has epiphytic and endophytic activity against the tomato leaf miner Tuta absoluta[J]. Journal of Applied Entomology, 2016, 140:580-589. [32] Contreras J, Mendoza E J, MartíR M, et al. Efficacy of enthomopathogenic fungus Metarhizium anisopliae against Tuta absoluta(Lepidoptera:Gelechiidae)[J]. Journal of Economic Entomology, 2014, 107(1):121-124. [33] Mascarin G M, Alves S B, Rampelotti-Ferreira F T, et al. Potential of a granulovirus isolate to control Phthorimaea operculella(Lepidoptera:Gelechiidae)[J]. BioControl, 2010, 55(5):657-671. [34] Valderrama G A J , Barrera G , López-Ferber M , et al. Potential of betabaculoviruses to control the tomato leafminer Tuta absoluta(Meyrick)[J]. Journal of Applied Entomology, 2018, 142(1/2):67-77. [35] Biondi A, Chailleux A, Lambion J, et al. Indigenous natural enemies attacking Tuta absoluta(Lepidoptera:Gelechiidae)in southern France[J]. Egyptian Journal of Biological Pest Control, 2013, 23(1):117. [36] ZappalàL, Biondi A, Alma A, et al. Natural enemies of the south American moth, Tuta absoluta, in Europe, north Africa and Middle East, and their potential use in pest control strategies[J]. Journal of Pest Science, 2013, 86(4):635-647. [37] Lins J C, van Loon J J A, Bueno V H P, et al. Response of the zoophytophagous predators Macrolophus pygmaeus and Nesidiocoris tenuis to volatiles of uninfested plants and to plants infested by prey or conspecifics[J]. BioControl, 2014, 59(6):707-718. [38] Chailleux A, Biondi A, Han P, et al. Suitability of the pest–plant system Tuta absoluta(Lepidoptera:Gelechiidae)–tomato for Trichogramma(Hymenoptera:Trichogrammatidae)parasitoids and insights for biological control[J]. Journal of Economic Entomology, 2013, 106(6):2310-2321. [39] Van Lenteren J C, Hemerik L, Lins J C, et al. Functional responses of three neotropical mirid predators to eggs of Tuta absoluta on tomato[J]. Insects,2016, 7(3):34. [40] Malo S, ArnóJ, Rosa G. Intraguild interactions between the predator Macrolophus pygmaeus and the parasitoid Eretmocerus mundus, natural enemies of Bemisia tabaci[J]. Biocontrol Science and Technology, 2012, 22(9):1059-1073. [41] Chailleux A, Bearez P, Pizzol J, et al. Potential for combined use of parasitoids and generalist predators for biological control of the key invasive tomato pest Tuta absoluta[J]. Journal of Pest Science, 2013, 86(3):533-541. [42] Cabello T, Bonfil F, Gallego R J, et al. Can interactions between an omnivorous hemipteran and an egg parasitoid limit the level of biological control for the tomato pinworm?[J]. Environmental Entomology, 2015, 44(1):12-26. [43] Cascone P, Tabebordbar F, Cencetti G, et al. Phytophagy of Nesidiocoris tenuis triggers the response of Trichogramma achaeae to tomato plants infested by Tuta absoluta[J]. Journal of Pest Science, 2024, 97(1):323-333. [44] Marzieh M, Mojtaba H, Javad K, et al. Effect of age-dependent parasitism in eggs of Tuta absoluta(Lepidoptera:Gelechiidae)on intraguild predation between Nabis pseudoferus(Hemiptera:Nabidae)and Trichogramma brassicae(Hymenoptera:Trichogrammatidae)[J]. Journal of Insect Science, 2019,19(3):27. [45] Mohammadpour M, Michaud P J, Hosseini M, et al. Age and parasitism status of Tuta absoluta eggs alter the foraging responses of the predator Nabis pseudoferus[J]. BioControl, 2021, 66(3):1-12. [46] Aigbedion-Atalor P O, Hill M P, Ayelo P M, et al. Can the combined use of the mirid predator Nesidiocoris tenuis and a Braconid larval endoparasitoid Dolichogenidea gelechiidivoris improve the biological control of Tuta absoluta?[J]. Insects, 2021, 12(11):1004. [47] Mouratidis A, Leman A, Poelman E H, et al. Dicyphus predatory bugs pre-established on tomato plants reduce Nesidiocoris tenuis population growth[J]. Journal of Pest Science, 2022, 95(4):1659-1670. [48] Salas Gervassio N G, Pérez-Hedo M, Luna M G, et al. Intraguild predation and competitive displacement between Nesidiocoris tenuis and Dicyphus maroccanus, two biological control agents in tomato pests[J]. Insect Science, 2017, 24(5):809-817. [49] Georgios M, Spyros S, Maria P, et al. Functional response and multiple predator effects of two generalist predators preying on Tuta absoluta eggs[J]. Pest Management Science, 2018, 74(2):332-339. [50] Duarte A G, Caldas F, Pechirra A, et al. Intraguild predation and cannibalism among Dicyphini:Dicyphus cerastii vs. two commercialized species[J]. Entomologia Experimentalis et Applicata, 2020, 169(1):90-96. [51] 赵静,肖达,张帆,等.三种捕食性瓢虫成虫对卵的种内自残及其集团内捕食作用[J]. 环境昆虫学报, 2016, 38(2):299-304. [52] 彭勇强,孟瑞霞,张东旭,等.两种植绥螨的同类相残和集团内捕食作用[J]. 生态学杂志, 2013, 32(7):1825-1831. [53] Negm W M, Alatawi J F, Aldryhim N Y. Biology, predation, and life table of Cydnoseius negevi and Neoseiulus barkeri(Acari:Phytoseiidae)on the old world date mite, Oligonychus afrasiaticus(Acari:Tetranychidae)[J]. Journal of Insect Science, 2014, 14(177):1-6. [54] 卢塘飞,陈俊谕,张方平,等.不同猎物及密度对巴氏新小绥螨和拉戈钝绥螨同类相残和集团内捕食作用的影响[J]. 环境昆虫学报, 2021, 43(1):214-223. [55] Mohammadpour M, Hosseini M, Michaud J, et al. The life history of Nabis pseudoferus feeding on Tuta absoluta eggs is mediated by egg age and parasitism status[J]. Biological Control, 2020, 151:104401. [56] Mirhosseini M A, Fathipour Y, Holst N, et al. An egg parasitoid interferes with biological control of tomato leafminer by augmentation of Nesidiocoris tenuis(Hemiptera:Miridae)[J]. Biological Control, 2019, 133:34-40. [57] Mirhosseini M, Fathipour Y, Soufbaf M, et al. Implications of using two natural enemies of Tuta absoluta(Lepidoptera:Gelechiidae)toward tomato yield enhancement[J]. Bulletin of Entomological Research, 2019, 109(5):617-625. [58] Chailleux A, Wajnberg E, Zhou Y, et al. New parasitoid-predator associations:female parasitoids do not avoid competition with generalist predators when sharing invasive prey[J]. Naturwissenschaften, 2014, 101(12):1075-1083. [59] Jamwal R, Sharma P L, Verma S C, et al. Predatory potential of Blaptostethus pallescens on Tuta absoluta and intraguild predation on Trichogramma achaeae[J]. International Journal of Tropical Insect Science, 2022, 42(3):2473-2482. [60] Krebs C J. Some historical thoughts on the functional responses of predators to prey density[J]. Frontiers in Ecology and Evolution, 2022, 10:1052289. [61] Cheru S L, Kebedow K G, Ega T T. Prey-predator model of holling type II functional response with disease on both species[J]. Differential Equations and Dynamical Systems, 2024, 1-24. [62] 杨桂群,范苇,张倩,等.异色瓢虫和龟纹瓢虫幼虫对番茄潜叶蛾低龄幼虫的捕食功能反应[J]. 中国生物防治学报, 2022, 38(4):959-966. [63] Ingegno L B, Messelink J G, Bodino N, et al. Functional response of the mirid predators Dicyphus bolivari and Dicyphus errans and their efficacy as biological control agents of Tuta absoluta on tomato[J]. Journal of Pest Science, 2019, 92(4):1457-1466. [64] Cabello T, Gallego R J, Lopez I, et al. Importance of host feeding in the biological control of insect pests:case study of egg parasitoid species(Hymenoptera:Chalcidoidea:Trichogrammatidae)[J]. Insects, 2024, 15(7):496. [65] Chailleux A, Droui A, Bearez P, et al. Survival of a specialist natural enemy experiencing resource competition with an omnivorous predator when sharing the invasive prey Tuta absoluta[J]. Ecology and Evolution, 2017, 7(20):8329-8337. [66] Calvo F J, Soriano J D, Stansly P A, et al. Can the parasitoid Necremnus tutae(Hymenoptera:Eulophidae)improve existing biological control of the tomato leafminer Tuta absoluta(Lepidoptera:Gelechiidae)?[J]. Bulletin of Entomological Research, 2016, 106(4):502-511. [67] Snyder E W, Ballard N S, Yang S, et al. Complementary biocontrol of aphids by the ladybird beetle Harmonia axyridis and the parasitoid Aphelinus asychis on greenhouse roses[J]. Biological Control, 2004, 30(2):229-235. [68] 张莉丽,程静雯,李阿根,等.田埂种植蜜源植物对稻田天敌昆虫多样性的影响[J]. 浙江农业学报, 2023, 35(6):1360-1367. [69] 华永刚,洪文英,张莉丽,等.蜜源植物对虫害绿色防控促进作用的研究进展[J]. 浙江农业学报, 2023, 64(2):421-424. |