A parasitoid wasp induces overwintering behaviour in its spider host

. 2011 ; 6 (9) : e24628. [epub] 20110908

Jazyk angličtina Země Spojené státy americké Médium print-electronic

Typ dokumentu časopisecké články, práce podpořená grantem

Perzistentní odkaz   https://www.medvik.cz/link/pmid21931784

Parasites and parasitoids control behaviors of their hosts. However, the origin of the behavior evoked by the parasitic organism has been rarely identified. It is also not known whether the manipulation is universal or host-specific. Polysphinctine wasps, koinobiont ectoparasitoids of several spider species that manipulate host web-spinning activity for their own protection during pupation, provide an ideal system to reveal the origin of the evoked behavior. Larva of Zatypota percontatoria performed species-specific manipulation of theridiid spiders, Neottiura bimaculata and Theridion varians, shortly before pupation. Parasitized N. bimaculata produced a dense web, whereas parasitized T. varians built a cupola-like structure. The larva pupated inside of either the dense web or the cupola-like structure. We discovered that unparasitized N. bimaculata produce an analogous dense web around their eggsacs and for themselves during winter, while T. varians construct an analogous 'cupola' only for overwintering. We induced analogous manipulation in unparasitized hosts by altering ambient conditions. We discovered that the behavior evoked by larvae in two hosts was functionally similar. The larva evoked protective behaviors that occur in unparasitized hosts only during specific life-history periods.

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Brodeur J, McNeil JN. Seasonal microhabitat selection by an endoparasitoid through adaptative modification of host behavior. Science. 1989;244:226–228. PubMed

Moore J. Parasites and the behavior of animals. Oxford: Oxford University Press; 2002. 338

Carney WP. Behavioral and morphological changes in carpenter ants harboring Dicrocoelium metacercariae. Am Midl Nat. 1969;82:605–611.

Bethel WM, Holmes JC. Increased vulnerability of amphipods to predation owing to altered behaviour induced by larval acanthocephalans. Can J Zool. 1977;55:110–115. PubMed

Brodeur J, Vet LEM. Usurpation of host behaviour by a parasitic wasp. Anim Behav. 1994;48:187–192.

Eberhard WG. Spider manipulation by a wasp larva. Nature. 2000;406:255–256. PubMed

Eberhard WG. The natural history and behavior of Hymenoepimecis argyraphaga (Hymenoptera: Ichneumonidae) a parasitoid of Plesiometa argyra (Araneae: Tetragnathidae). J Hymenopt Res. 2000;9:220–240.

Thomas F, Schmidt-Rhaesa A, Martin G, Manu C, Durand P, et al. Do hairworms (Nematomorpha) manipulate the water seeking behaviour of their terrestrial hosts? J Evolution Biol. 2002;15:356–361.

Tanaka S, Ohsaki N. Behavioral manipulation of host caterpillars by the primary parasitoid wasp Cotesia glomerata (L.) to construct defensive webs against hyperparasitism. Ecol Res. 2006;21:570–577.

Tanaka S, Ohsaki N. Does manipulation by the parasitoid wasp Cotesia glomerata (L.) cause attachment behaviour of host caterpillars on cocoon clusters? Ethology. 2009;115:781–789.

Harvey JA, Kos M, Nakamatsu Y, Tanaka T, Dicke M, et al. Do parasitized caterpillars protect thein parasitoids from hyperparasitoids? A test of the ‚usurpation hypothesis'. Anim Behav. 2008;76:701–708.

Harvey JA, Tanaka T, Kruidhof M, Vet LEM, Gols R. The usurpation hypothesis revisited: dying caterpillar repels attack from a hyperparasitoid wasp. Anim Behav. 2011;81:1281–1287.

Maure J, Brodeur J, Ponlet N, Doyon J, Firlej A, et al. The cost of a bodyguard. Biol Lett Published online. 2011 doi: 10.1098/rsbl.2011.0415. PubMed DOI PMC

Vyas A, Kim SK, Giacomini N, Boothroyd JC, Sapolsky RM. Behavioral changes induced by Toxoplasma infection of rodents are highly specific to aversion of cat odors. Proc Natl Acad Sci USA. 2007;104:6442–6447. PubMed PMC

Grosman AH, Janssen A, de Brito EF, Cordeiro EG, Colares F, et al. Parasitoid increases survival of its pupae by inducing hosts to fight predators. PLoS ONE. 2008;3(6):e2276. doi: 10.1371/journal.pone.0002276. PubMed DOI PMC

Matsumoto R. “Veils” against predators: Modified web structure of a host spider induced by an ichneumonid parasitiod, Brachyzapus nikkoensis (Uchida) (Hymenoptera). J Insect Behav. 2009;22:39–48.

Sobczak JF, Loffredo APS, Penteado-Dias AM, Gonzaga MO. Two new species of Hymenoepimecis (Hymenoptera: Ichneumonidae: Pimplinae) with notes on their spider hosts and behaviour manipulation. J Nat Hist. 2009;43:2691–2699.

Eberhard WG. New types of behavioral manipulation of host spiders by a parasitoid wasp. Psyche ID 950614. 2010 doi: 10.1155/2010/950614. DOI

Gonzaga MO, Sobczak JF, Penteado-Dias AM, Eberhard WG. Modification of Nephila clavipes (Araneae Nephilidae) webs induced by the parasitoids Hymenoepimecis bicolor and H. robertsae (Hymenoptera Ichneumonidae). Ethol Ecol Evol. 2010;22:151–165.

Gauld ID, Dubois J. Phylogeny of the Polysphincta group of genera (Hymenoptera: Ichneumonidae; Pimplinae), a taxonomic revision of spider ectoparasitoids. Syst Entomol. 2006;31:529–564.

Nielsen E. Contributions to the life history of the Pimpline spider parasites (Polysphincta, Zaglyptus, Tromatobia) (Hym. Ichneum.). Entomol Medd. 1923;14:137–205.

Fincke OM, Higgins L, Rojas E. Parasitism of Nephila clavipes (Araneae, Tetragnathidae) by an ichneumonid (Hymenoptera, Polysphinctini) in Panama. J Arachnol. 1990;18:321–329.

Gonzaga MO, Sobczak JF. Parasitoid-induced mortality of Araneus omnicolor (Araneae, Araneidae) by Hymenoepimecis sp. (Hymenoptera, Ichneumonidae) in southeastern Brazil. Naturwissenschaften. 2006;94:223–227. PubMed

Eberhard WG. Under the influence: webs and building behaviour of Plesiometa argyra (Araneae, Tetragnathidae) when parasitized by Hymenoepimecis argyraphaga (Hymenopera, Ichneumonidae). J Arachnol. 2001;29:354–366.

Althoff DM. Does parasitoid attack strategy influence host specificity? A test with New World braconids. Ecol Entomol. 2003;28:500–502.

Korenko S, Michalková V, Zwakhals K, Pekár S. Host specificity and temporal and seasonal shifts in host preference of a web-spider parasitoid (Hymenoptera: Ichneumonidae). J Insect Sci. 2011 In press. PubMed PMC

Arnedo AM, Agnarsson I, Gillespie RG. Molecular insights into the phylogenetic structure of the spider genus Theridion (Araneae, Theridiidae) and the origin of the Hawaiian Theridion-like fauna. Zoologica Skripta. 2007;4:337–352.

Heimer S, Nentwig W. Spinnen Mitteleuropas. Berlin: Paul Parey; 1991. 543

Eberhard WG, Agnarsson I, Levi HW. Web forms and the phylogeny of theridiid spiders (Araneae: Theridiidae): chaos from order. Syst Biodivers. 2008;6:415–475.

Weng J-L, Barrantes G. Natural history and larval behavior of the parasitoid Zatypota petronae (Hymenoptera: Ichneumonidae). J Hymenopt Res. 2007;16:326–335.

Poulin R. Manipulation of host behaviour by parasites: a weakening paradigm? Proc R Soc B. 2000;267:787–792. PubMed PMC

Libersat F, Delago A, Gal R. Manipulation of host behavior by parasitic insects and insect parasites. Annu Rev Entomol. 2009;54:189–207. PubMed

Gal R, Libersat F. A wasp manipulates neuronal activity in the sub-esophageal ganglion to decrease the drive for walking in its cockroach prey. PLoS ONE. 2010;5(4):e10019. doi: 10.1371/journal.pone.0010019. PubMed DOI PMC

Thomas F, Adamo S, Moore J. Parasitic manipulation: where are we and where should we go? Behav Process. 2005;68:185–199. PubMed

Harris-Warwick RM, Marder E. Modulation of neural networks for behavior. Annu Rev Neurosci. 1991;14:39–57. PubMed

Beckage NE. Effects on host hormones and behavior. In: Beckage NE, editor. Parasites and pathogens. New York: Chapman and Hall; 1985. pp. 3–36.

Fitton MG, Shaw MR, Austin AD. The Hymenoptera associated with spiders in Europe. Zool J Linn Soc-Lond. 1987;90(1):65–93.

Gauld ID, Wahl DB, Broad GR. The suprageneric groups of the Pimplinae (Hymenoptera: Ichneumonidae): a cladistic re-evaluation and evolutionary biological study. Zool J Linn Soc-Lond. 2002;136:421–485.

Matsumoto R, Konishi K. Life histories of two ichneumonid parasitoids of Cyclosa octotuberculata (Araneae), Reclinervellus tuberculatus (Uchida) and its new sympatric congener (Hymenoptera: Ichneumonidae: Pimplinae). Entomol Sci. 2007;10:267–278.

Schlinger EI. The biology of Acroceridae (Diptera): true endoparasitoids of spiders. In: Nentwig W, editor. Ecophysiology of spiders. New York: Springer-Verlag; 1987. pp. 319–327.

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