[1] MORITZ G. Structure, growth and development[M]//LEWIS T. Thrips as crop pests. Wallingford: CAB International, 1997: 15 − 63.
[2] DE LA FILIA A G, BAIN S A, ROSS L. Haplodiploidy and the reproductive ecology of arthropods [J]. Current Opinion in Insect Science, 2015, 9: 36 − 43. doi:  10.1016/j.cois.2015.04.018
[3] BONDY E C, HUNTER M S. Sex ratios in the haplodiploid herbivores, Aleyrodidae and Thysanoptera: A review and tools for study[M]//JURENKA R. (ed.). Advances in Insect Physiology, Cambridge: Academic Press, 2019, 251 − 281.
[4] WEST S. Sex allocation[M]. New Jersey: Princeton University Press, 2009: 14 − 378.
[5] HAMILTON W D. Extraordinary sex ratios [J]. Science, 1967, 156(3774): 477 − 488. doi:  10.1126/science.156.3774.477
[6] GODFRAY H C J. The causes and consequences of constrained sex allocation in haplodiploid animals [J]. Journal of Evolutionary Biology, 1990, 3(1/2): 3 − 17.
[7] 张念台. 蓟马为害杂粮之习性及其防治[J]. 中华昆虫特刊, 1987(1): 55 − 72.
[8] 范咏梅, 童晓立, 高良举, 等. 普通大蓟马在海南豇豆上的空间分布型[J]. 环境昆虫学报, 2013, 35(6): 737 − 743.
[9] TANG L D, YAN K L, FU B L, et al. The life table parameters of Megalurothrips usitatus (Thysanoptera: Thripidae) on four leguminouscrops [J]. Florida Entomologist, 2015, 98(2): 620 − 625.
[10] 谭珂, 李曼娟, 陈鑫, 等. 普通大蓟马产卵选择性初探[J]. 热带作物学报, 2015, 36(3): 587 − 590. doi:  10.3969/j.issn.1000-2561.2015.03.024
[11] 谭珂, 陈鑫, 李曼娟, 等. 普通大蓟马在3种豆类作物上的实验种群生命表研究[J]. 热带作物学报, 2015b, 36(5): 956 − 960. doi:  10.3969/j.issn.1000-2561.2015.05.021
[12] 罗亚丽, 施丹, 乔雪莹, 等. 杀虫剂亚致死浓度对普通大蓟马繁殖的影响[J]. 应用昆虫学报, 2020, 57(2): 427 − 433.
[13] CHARLENE J H, JUDITH H M. Sex ratio patterns and population dynamics of western flower thrips (Thysanoptera: Thripidae) [J]. Environmental Entomology, 1992, 21(2): 322 − 330. doi:  10.1093/ee/21.2.322
[14] KATLAV A, NGUYEN D T, COOK J M, et al. Constrained sex allocation after mating in a haplodiploid thrips species depends on maternal condition [J]. Evolution, 2021, 75(6): 1525 − 1536. doi:  10.1111/evo.14217
[15] WONDIMAGEGN A W, MÁRTA L, JÓZSEF F. Effect of temperature on the sex ratio and life table parameters of the leek-(L1) and tobacco-associated (T) Thrips tabaci lineages (Thysanoptera: Thripidae) [J]. Population ecology, 2021, 63(3): 230 − 237. doi:  10.1002/1438-390X.12082
[16] DALLAI R, DEL B G, LUPETTI P. Fine structure of spermatheca and accessory gland of Frankliniella occidentalis (Pergande) (Thysanoptera: Thripidae) [J]. International Journal of Insect Morphology and Embryology, 1996, 25(3): 317 − 330. doi:  10.1016/0020-7322(95)00018-6
[17] LI X W, JIANG H X, ZHANG X C, et al. Post-mating interactions and their effects on fitness of female and male Echinothrips americanus (Thysanoptera: Thripidae), a new insect pest in China [J]. PLoS ONE, 2014, 9(1): e87725. doi:  10.1371/journal.pone.0087725
[18] KRUEGER S, MÜLLER B, MORITZ G. Olfactory and physical manipulation by males on life-history traits in Echinothrips americanus Morgan 1913 (Thysanoptera: Thripidae) [J]. Journal of Applied Entomology, 2020, 144(1/2): 64 − 73.
[19] KING B H. Sex ratio responses to other parasitiod wasps: Multiple adaptive explanations [J]. Behavioral Ecology and Sociobiology, 1996, 39(6): 367 − 374. doi:  10.1007/s002650050302
[20] ODE P J, ANTOLIN M F, STRAND M R. Constrained oviposition and female-biased sex allocation in a parasitic wasp [J]. Oecologia, 1997, 109(4): 547 − 555. doi:  10.1007/s004420050115
[21] KING B H. Sex ratio response to conspecifics in a parasitoid wasp: test of a prediction of local mate competition theory and alternative hypotheses [J]. Behavioral Ecology and Sociobiology, 2002, 52(1): 17 − 24. doi:  10.1007/s00265-002-0492-0
[22] KING B H, D’SOUZA J A. Effects of constrained females on offspring sex ratios of Nasonia vitripennis in relation to local mate competition theory [J]. Canadian Journal of Zoology, 2004, 82(12): 1969 − 1974. doi:  10.1139/z05-006
[23] METZGER M, BERNSTEIN C, DESOUHANT E. Does constrained oviposition influence offspring sex ratio in the solitary parasitoid wasp Venturia canescens? [J]. Ecological Entomology, 2008, 33(2): 167 − 174. doi:  10.1111/j.1365-2311.2007.00953.x
[24] HENTER H J. Constrained sex allocation in a parasitoid due to variation in male quality [J]. Journal of Evolutionary Biology, 2004, 17(4): 886 − 896. doi:  10.1111/j.1420-9101.2004.00746.x
[25] BOIVIN G. Sperm as a limiting factor in mating success in Hymenoptera parasitoids [J]. Entomologia Experimentalis et Applicata, 2013, 146(1): 149 − 155. doi:  10.1111/j.1570-7458.2012.01291.x
[26] CHIRAULT M, BRESSAC C, GOUBAULT M, et al. Sperm limitation affects sex allocation in a parasitoid wasp Nasonia vitripennis [J]. Insect Science, 2019, 26(5): 853 − 862. doi:  10.1111/1744-7917.12586
[27] SIMMONS LW. Sperm competition and its evolutionary consequences in the insects[M]. New Jersey: Princeton University Press, 2001: 277-318.
[28] AVILA F W, SIROT LK, LAFLAMME B A, et al. Insect seminal fluid proteins: Identification and function [J]. Annual Review of Entomology, 2011, 56: 21 − 40. doi:  10.1146/annurev-ento-120709-144823
[29] AVILA F W, SÁNCHEZ-LÓPEZ J A, MCGLAUGHON J L, et al. Nature and functions of glands and ducts in the Drosophila reproductive tract[M]//COHEN E, MOUSSIAN B (eds.). Extracellular Composite Matrices in Arthropods. Cham: Springer, 2016: 411-444.
[30] THOMAS M L. Detection of female mating status using chemical signals and cues [J]. Biological Reviews, 2011, 86(1): 1 − 13. doi:  10.1111/j.1469-185X.2010.00130.x
[31] AYASSE M, PAXTON RJ, TENGÖ J. Mating behavior and chemical communication in the order Hymenoptera [J]. Annual Review of Entomology, 2001, 46: 31 − 78. doi:  10.1146/annurev.ento.46.1.31
[32] XU H, ZHOU G, DÖTTERL S, et al. The Combined use of an attractive and a repellent sex pheromonal component by a gregarious parasitoid [J]. Journal of Chemical Ecology, 2019, 45(7): 559 − 569. doi:  10.1007/s10886-019-01066-4
[33] SCHIESTL F P, AYASSE M. Post-mating odor in females of the solitary bee, Andrena nigroaenea (Apoidea, Andrenidae), inhibits male mating behavior [J]. Behavioral Ecology and Sociobiology, 2000, 48(4): 303 − 307. doi:  10.1007/s002650000241
[34] FISCHER C R, KING B H. Inhibition of male sexual behavior after interacting with a mated female [J]. Behaviour, 2012, 149(2): 153 − 169. doi:  10.1163/156853912X631974
[35] BENELLI G, GIUNTI G, MESSING R H, et al. Visual and olfactory female-borne cues evoke male courtship in the aphid parasitoid Aphidius colemani Viereck (Hymenoptera: Braconidae) [J]. Journal of Insect Behavior, 2013, 26(5): 695 − 707. doi:  10.1007/s10905-013-9386-4
[36] MOWLES S L, KING B H, LINFORTH R S T, et al. A female-emitted pheromone component is associated with reduced male courtship in the parasitoid wasp Spalangia endius [J]. PLoS ONE, 2013, 8(11): e82010. doi:  10.1371/journal.pone.0082010
[37] KRUEGER S, MORITZ G, LINDEMANN P, et al. Male pheromones influence the mating behavior of Echinothrips americanus [J]. Journal of Chemical Ecology, 2016, 42(4): 294 − 299. doi:  10.1007/s10886-016-0685-z
[38] AKINYEMI A O, KIRK W D J. Experienced males recognise and avoid mating with non-virgin females in the western flower thrips [J]. PLoS ONE, 2019, 14(10): e0224115. doi:  10.1371/journal.pone.0224115
[39] AKINYEMI A O, SUBRAMANIAN S, MFUTI D K, et al. Mating behaviour, mate choice and female resistance in the bean flower thrips (Megalurothrips sjostedti) [J]. Scientific Reports, 2021, 11(1): 14504. doi:  10.1038/s41598-021-93891-5
[40] KRUEGER S, WILFER A, TSCHUCH G, et al. First detection of a female‐specific volatile substance in thrips[C]//Entomologentagung/Entomology Congress 2019. Halle (Saale): Deutsche Gesellschaft für allgemeine und angewandteEntomologiee. V. , 2019: 108.
[41] KIRK W D J, DEKOGEL W J, KOSCHIER E H, et al. Semiochemicals for thrips and their use in pest management [J]. Annual Review of Entomology, 2021, 66: 101 − 119. doi:  10.1146/annurev-ento-022020-081531
[42] 李晓维, 罗雪君, 王丽坤, 等. 普通大蓟马聚集信息素的分离和鉴定[J]. 昆虫学报, 2019, 62(9): 1017 − 1027.
[43] LIU P, QIN Z, FENG M, et al. The male-produced aggregation pheromone of the bean flower thrips Megalurothripsusitatus in China: Identification and attraction of conspecifics in the laboratory and field [J]. Pest Management Science, 2020, 76(9): 2986 − 2993. doi:  10.1002/ps.5844
[44] NIASSY S, TAMIRU A, HAMILTON J, et al. Characterization of male-produced aggregation pheromone of the bean flower thrips Megalurothrips sjostedti (Thysanoptera: Thripidae) [J]. Journal of Chemical Ecology, 2019, 45: 348 − 355. doi:  10.1007/s10886-019-01054-8