Kodric-Brown A, Brown JH. Truth in advertising: the kinds of traits favored by sexual selection. Am Nat. 1984;124(3):309–23.
Google Scholar
Oliveira RF, Taborsky M, Brockmann HJ. Alternative reproductive tactics: an integrative approach. Cambridge: Cambridge University Press; 2008.
Google Scholar
Brockmann HJ, Grafen A, Dawkins R. Evolutionarily stable nesting strategy in a digger wasp. J Theor Biol. 1979;77(4):473–96.
CAS
PubMed
Google Scholar
Gross MR. Salmon breeding behavior and life history evolution in changing environments. Ecology. 1991;72(4):1180–6.
Google Scholar
Bass A. Dimorphic male brains and alternative reproductive tactics in a vocalizing fish. Trends Neurosci. 1992;15(4):139–45.
CAS
PubMed
Google Scholar
Sinervo B, Lively CM. The rock–paper–scissors game and the evolution of alternative male strategies. Nature. 1996;380(6571):240–3.
CAS
Google Scholar
Emlen DJ. Alternative reproductive tactics and male-dimorphism in the horned beetle Onthophagus acuminatus (Coleoptera: Scarabaeidae). Behav Ecol Sociobiol. 1997;41(5):335–41.
Google Scholar
Stewart KA, Hudson CM, Lougheed SC. Can alternative mating tactics facilitate introgression across a hybrid zone by circumventing female choice? J Evol Biol. 2017;30(2):412–21.
CAS
PubMed
Google Scholar
Gadgil M. Male dimorphism as a consequence of sexual selection. Am Nat. 1972;106(951):574–80.
Google Scholar
Emlen DJ. Environmental control of horn length dimorphism in the beetle Onthophagus acuminatus (Coleoptera: Scarabaeidae). Proc Biol Sci. 1994;256(1346):131–6.
Google Scholar
Tomkins JL. Environmental and genetic determinants of the male forceps length dimorphism in the European earwig Forficula auricularia L. Behav Ecol Sociobiol. 1999;47(1–2):1–8.
Google Scholar
Cremer S, Heinze J. Stress grows wings: environmental induction of winged dispersal males in Cardiocondyla ants. Curr Biol. 2003;13(3):219–23.
CAS
PubMed
Google Scholar
Moczek AP, Hunt J, Emlen DJ, Simmons LW. Threshold evolution in exotic populations of a polyphenic beetle. Evol Ecol Res. 2002;4(4):587–601.
Google Scholar
Piché J, Hutchings JA, Blanchard W. Genetic variation in threshold reaction norms for alternative reproductive tactics in male Atlantic salmon, Salmo salar. Proc Biol Sci. 2008;275(1642):1571–5.
PubMed
PubMed Central
Google Scholar
Nettle D, Bateson M. Adaptive developmental plasticity: what is it, how can we recognize it and when can it evolve? Proc Biol Sci. 1812;2015(282):20151005.
Google Scholar
Emlen DJ. Artificial selection on horn length-body size allometry in the horned beetle Onthophagus acuminatus (Coleoptera: Scarabaeidae). Evolution. 1996;50(3):1219–30.
PubMed
Google Scholar
Smallegange IM. Complex environmental effects on the expression of alternative reproductive phenotypes in the bulb mite. Evol Ecol. 2011;25(4):857–73.
Google Scholar
Rhebergen FT, Stewart KA, Smallegange IM. Nutrient-dependent allometric plasticity in a male-diphenic mite [Internet]. 2021. https://0-doi-org.brum.beds.ac.uk/10.1101/2021.06.14.448383.
Smallegange IM, Rhebergen FT, Stewart KA. Cross-level considerations for explaining selection pressures and the maintenance of genetic variation in condition-dependent male morphs. Curr Opin Insect Sci. 2019;36:66–73.
PubMed
Google Scholar
Godin J-GJ. Predation risk and alternative mating tactics in male Trinidadian guppies (Poecilia reticulata). Oecologia. 1995;103(2):224–9.
PubMed
Google Scholar
Shuster SM. The reproductive behaviour of ɑ-, β-, Ɣ- male morphs in the Paracerceis sculpta, a marine isopod crustacean. Behaviour. 1992;121:3–4.
Google Scholar
Jukema J, Piersma T. Permanent female mimics in a lekking shorebird. Biol Lett. 2006;2(2):161–4.
PubMed
PubMed Central
Google Scholar
Shine R, Phillips B, Waye H, LeMaster M, Mason RT. Benefits of female mimicry in snakes. Nature. 2001;414(6861):267.
CAS
PubMed
Google Scholar
Shuster SM, Wade MJ. Equal mating success among male reproductive strategies in a marine isopod. Nature. 1991;350(6319):608–10.
Google Scholar
Norman MD, Finn J, Tregenza T. Female impersonation as an alternative reproductive strategy in giant cuttlefish. Proc Biol Sci. 1999;266(1426):1347–9.
PubMed Central
Google Scholar
Karlson P, Butenandt A. Pheromones (Ectohormones) in insects. Annu Rev Entomol. 1959;4(1):39–58.
CAS
Google Scholar
Law JH, Regnier FE. Pheromones. Annu Rev Biochem. 1971;40(1):533–48.
CAS
PubMed
Google Scholar
Gomez-Diaz C, Benton R. The joy of sex pheromones. EMBO Rep. 2013;14(10):874–83.
CAS
PubMed
PubMed Central
Google Scholar
De Pasqual C, Groot AT, Mappes J, Burdfield-Steel E. Evolutionary importance of intraspecific variation in sex pheromones. Trends Ecol Evol. 2021;36(9):848–59.
PubMed
Google Scholar
Ono T. Effect of rearing temperature on pheromone component ratio in potato tuberworm moth, Phthorimaea operculella, (Lepidoptera: Gelechiidae. J Chem Ecol. 1993;19(1):71–81.
CAS
PubMed
Google Scholar
Hock V, Chouinard G, Lucas E, Cormier D, Leskey T, Wright S, et al. Establishing abiotic and biotic factors necessary for reliable male pheromone production and attraction to pheromones by female plum curculios Conotrachelus nenuphar (Coleoptera: Curculionidae. Can Entomol. 2014;146(5):528–47.
Google Scholar
Boppré M, Schneider D. Pyrrolizidine alkaloids quantitatively regulate both scent organ morphogenesis and pheromone biosynthesis in male Creatonotos moths (Lepidoptera: Arctiidae. J Comp Physiol A. 1985;157(5):569–77.
Google Scholar
Martín J, López P. Vitamin D supplementation increases the attractiveness of males’ scent for female Iberian rock lizards. Proc Biol Sci. 2006;273(1601):2619–24.
PubMed
PubMed Central
Google Scholar
Edde PA, Phillips TW, Robertson JB, Dillwith JW. Pheromone output by Rhyzopertha dominica (Coleoptera: Bostrichidae), as affected by host plant and beetle size. Ann Entomol Soc Am. 2007;100(1):83–90.
Google Scholar
Ming Q-L, Lewis SM. Pheromone production by male Tribolium castaneum (Coleoptera: Tenebrionidae) is influenced by diet quality. J Econ Entomol. 2010;103(5):1915–9.
PubMed
Google Scholar
Weddle CB, Mitchell C, Bay SK, Sakaluk SK, Hunt J. Sex-specific genotype-by-environment interactions for cuticular hydrocarbon expression in decorated crickets, Gryllodes sigillatus: implications for the evolution of signal reliability. J Evol Biol. 2012;25(10):2112–25.
CAS
PubMed
Google Scholar
Liedo P, Orozco D, Cruz-López L, Quintero JL, Becerra-Pérez C, del Refugio HM, et al. Effect of post-teneral diets on the performance of sterile Anastrepha ludens and Anastrepha obliqua fruit flies. J Appl Entomol. 2013;137:49–60.
Google Scholar
Blaul B, Steinbauer R, Merkl P, Merkl R, Tschochner H, Ruther J. Oleic acid is a precursor of linoleic acid and the male sex pheromone in Nasonia vitripennis. Insect Biochem Mol Biol. 2014;51:33–40.
CAS
PubMed
Google Scholar
Jensen K, Shearman M, Rapkin J, Carey MR, House CM, Hunt J. Change in sex pheromone expression by nutritional shift in male cockroaches. Behav Ecol. 2017;28(6):1393–401.
Google Scholar
Radwan J. Male morph determination in two species of acarid mites. Heredity (Edinb). 1995;74(6):669–73.
Google Scholar
Deere JA, Smallegange IM. Does frequency-dependence determine male morph survival in the bulb mite Rhizoglyphus robini? Exp Appl Acarol. 2014;62(4):425–36.
PubMed
Google Scholar
Fan QH, Zhang ZQ. Revision of Rhizoglyphus Claparède. Acari: Acaridae of Australasia and Oceania. Syst Appl Acarol Soc. 2004.
Beuken TP, Duinmeijer CC, Smallegange IM. Costs of weaponry: unarmed males sire more offspring than armed males in a male-dimorphic mite. J Evol Biol. 2019;32(2):153–62.
PubMed
Google Scholar
Croll JC, Egas M, Smallegange IM. An eco-evolutionary feedback loop between population dynamics and fighter expression affects the evolution of alternative reproductive tactics. J Anim Ecol. 2019;88(1):11–23.
PubMed
Google Scholar
Radwan J, Czyz M, Konior M, Kolodziejczyk M. Aggressiveness in two male morphs of the bulb mite Rhizoglyphus robini. Ethology. 2000;106(1):53–62.
Google Scholar
Stewart KA, Van den Beuken TPG, Rhebergen FT, Deere JA, Smallegange IM. Evidence for a third male type in a male-dimorphic model species. Ecology. 2018;99(7):1685–7.
PubMed
Google Scholar
Smallegange IM, Coulson T. The stochastic demography of two coexisting male morphs. Ecology. 2011;92(3):755–64.
PubMed
Google Scholar
Smallegange IM, Thorne N, Charalambous M. Fitness trade-offs and the maintenance of alternative male morphs in the bulb mite (Rhizoglyphus robini): fitness trade-offs in alternative male morphs. J Evol Biol. 2012;25(5):972–80.
CAS
PubMed
Google Scholar
Radwan J. Heritability of male morph in the bulb mite, Rhizoglyphus robini (Astigmata, Acaridae). Exp Appl Acarol. 2003;29(1–2):109–14.
PubMed
Google Scholar
Stewart KA, Draaijer R, Kolasa MR, Smallegange IM. The role of genetic diversity in the evolution and maintenance of environmentally-cued, male alternative reproductive tactics. BMC Evol Biol. 2019;19(1):58.
CAS
PubMed
PubMed Central
Google Scholar
Plesnar-Bielak A, Jawor A, Kramarz PE. Complex response in size-related traits of bulb mites (Rhizoglyphus robini) under elevated thermal conditions - an experimental evolution approach. J Exp Biol. 2013;216(Pt 24):4542–8.
PubMed
Google Scholar
Radwan J, Klimas M. Male dimorphism in the bulb mite, Rhizoglyphus robini: fighters survive better. Ethol Ecol Evol. 2001;13(1):69–79.
Google Scholar
Beuken TP, Smallegange IM. Male nutritional history affects female fecundity in a male-dimorphic mite: evidence for a nuptial gift? Evol Ecol. 2018;32(4):411–25.
Google Scholar
Gerson U, Cohen E, Capua S. Bulb mite, Rhizoglyphus robini (Astigmata: Acaridae) as an experimental animal. Exp Appl Acarol. 1991;12(1–2):103–10.
Google Scholar
Leal WS, Kuwahara Y, Nakano Y, Nakao H, Suzuki T. A novel monoterpene from the acarid mite Tyrophagm perniciosm Acarina, Acaridae. Agric Biol Chem. 1989;2(E).
Mizoguchi A, Mori N, Nishida R, Kuwahara Y. α-Acaridial a female sex pheromone from an alarm pheromone emitting mite Rhizoglyphus robini. J Chem Ecol. 2003;29(7):1681–90.
CAS
PubMed
Google Scholar
Henneken J, Goodger JQD, Jones TM, Elgar MA. Diet-mediated pheromones and signature mixtures can enforce signal reliability. Front Ecol Evol [Internet]. 2017. https://0-doi-org.brum.beds.ac.uk/10.3389/fevo.2016.00145.
Article
Google Scholar
Brückner A, Heethoff M. The ontogeny of oil gland chemistry in the oribatid mite Archegozetes longisetosus Aoki (Oribatida, Trhypochthoniidae). Int J Acarology. 2017;43(5):337–42.
Google Scholar
Pureswaran DS, Borden JH. Is bigger better? Size and pheromone production in the Mountain Pine beetle, Dendroctonus ponderosae Hopkins (Coleoptera: Scolytidae). J Insect Behav. 2003;16(6):765–82.
Google Scholar
Byers JA. A cost of alarm pheromone production in cotton aphids. Aphis gossypii Sci Nat. 2005;92(2):69–72.
CAS
Google Scholar
Ruther J, Matschke M, Garbe L-A, Steiner S. Quantity matters: male sex pheromone signals mate quality in the parasitic wasp Nasonia vitripennis. Proc Biol Sci. 2009;276(1671):3303–10.
PubMed
PubMed Central
Google Scholar
Harari AR, Zahavi T, Thiéry D. Fitness cost of pheromone production in signaling female moths: cost of pheromone production in moths. Evolution. 2011;65(6):1572–82.
PubMed
Google Scholar
Birgersson G, Schlyter F, Bergström G, Löfqvist J. Individual variation in aggregation pheromone content of the bark beetle, Ips typographus. J Chem Ecol. 1988;14(9):1737–61.
CAS
PubMed
Google Scholar
Pankewitz F, Hilker M. Polyketides in insects: ecological role of these widespread chemicals and evolutionary aspects of their biogenesis. Biol Rev Camb Philos Soc. 2008;83(2):209–26.
PubMed
Google Scholar
Kuwahara Y, Shibata C, Akimoto K, Kuwahara M, Suzuki T. Pheromone study on acarid mites. XIII. Identification of neryl formate as an alarm pheromone from the bulb mite, Rhizoglyphus robini Acarina: Acaridae. Appl Entomol Zool. 1988;23(1):76–80.
CAS
Google Scholar
Howard RW, Kuwahara Y, Suzuki H, Suzuki T. Pheromone study on acarid mites. XII. Characterization of the hydrocarbons and external gland morphology of the opishonotal glands of six species of mites Acari: Astigmata. Appl Entomol Zool. 1988;23(1):58–66.
CAS
Google Scholar
Leal WS, Kuwahara Y, Suzuki T. Robinal, a highly conjugated monoterpenoid from the mite Rhizoglyphus robini. Chemical ecology of astigmatid mites, XXVII (1). Naturwiss. 1990;77(8):387–8.
CAS
Google Scholar
Kuwahara Y. Chemical ecology of astigmatid mites. In: Cardé RT, Millar JG, editors. Advances in insect chemical ecology. Cambridge: Cambridge University Press; 2004. p. 76–109.
Google Scholar
Heethoff M, Raspotnig G. Expanding the “enemy-free space” for oribatid mites: evidence for chemical defense of juvenile Archegozetes longisetosus against the rove beetle Stenus juno. Exp Appl Acarol. 2012;56(2):93–7.
PubMed
Google Scholar
Barata EN, Serrano RM, Miranda A, Nogueira R, Hubbard PC, Canário AVM. Putative pheromones from the anal glands of male blennies attract females and enhance male reproductive success. Anim Behav. 2008;75(2):379–89.
Google Scholar
Mazzoldi C, Rasotto MB. Alternative male mating tactics in Gobius niger. J Fish Biol. 2002;61(1):157–72.
Google Scholar
Locatello L, Mazzoldi C, Rasotto MB. Ejaculate of sneaker males is pheromonally inconspicuous in the black goby, Gobius niger (Teleostei, Gobiidae). J Exp Zool. 2002;293(6):601–5.
CAS
PubMed
Google Scholar
Shumate AM, Teale SA, Ayres BD, Ayres MP. Disruptive selection maintains variable pheromone blends in the bark beetle Ips pini. Environ Entomol. 2011;40(6):1530–40.
CAS
PubMed
Google Scholar
Collins RD, Cardé RT. Variation in and heritability of aspects of pheromone production in the pink bollworm moth, Pectinophora gossypiella (Lepidoptera: Gelechiidae). Ann Entomol Soc Am. 1985;78(2):229–34.
CAS
Google Scholar
Zhu J, Chastain BB, Spohn BG, Haynes KF. Assortative mating in two pheromone strains of the cabbage looper moth. Trichoplusia ni J Insect Behav. 1997;10(6):805–17.
Google Scholar
Brooks R, Hunt J, Blows MW, Smith MJ, Bussière LF, Jennions MD. Experimental evidence for multivariate stabilizing sexual selection. Evolution. 2005;59(4):871–80.
PubMed
Google Scholar
Smadja C, Butlin RK. On the scent of speciation: the chemosensory system and its role in premating isolation. Heredity (Edinb). 2009;102(1):77–97.
CAS
Google Scholar
Groot AT, Schöfl G, Inglis O, Donnerhacke S, Classen A, Schmalz A, et al. Within-population variability in a moth sex pheromone blend: genetic basis and behavioural consequences. Proc Biol Sci. 2014;281(1779):20133054.
PubMed
PubMed Central
Google Scholar
Groot AT, van Wijk M, Villacis-Perez E, Kuperus P, Schöfl G, van Veldhuizen D, et al. Within-population variability in a moth sex pheromone blend, part 2: selection towards fixation. R Soc Open Sci. 2019;6(3):182050.
CAS
PubMed
PubMed Central
Google Scholar
Gerson U, Capua S, Thorens D. Life history and life tables of Rhizoglyphus robini Claparède (Acari: Astigmata: Acaridae. Acarologia. 1983;24(4):439–48.
Google Scholar
Díaz A, Okabe K, Eckenrode CJ, Villani MG, Oconnor BM. Biology, ecology, and management of the bulb mites of the genus Rhizoglyphus (Acari: Acaridae). Exp Appl Acarol. 2000;24(2):85–113.
PubMed
Google Scholar
Crawley MJ. The R book. New Jersey: John Wiley & Sons; 2012.
Google Scholar
Montgomery DC. Design and analysis of experiments. Nashville: John Wiley & Sons; 1996.
Google Scholar
R Core Team (2020). R: A language and environment for statistical computing. R Foundation for Statistical Computing, Vienna, Austria. https://www.r-project.org/.