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Plant-Insect Interactions

Prohydrojasmon treatment of lima bean plants reduces the performance of two-spotted spider mites and induces volatiles

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Pages 69-73 | Received 23 Dec 2012, Accepted 29 Dec 2012, Published online: 31 Jan 2013

References

  • Arimura G, Matsui K, Takabayashi J. 2009. Chemical and molecular ecology of herbivore-induced plant volatiles: proximate factors and their ultimate functions. Plant Cell Physiol. 50:911–923. 10.1093/pcp/pcp030
  • Bruce TJA, Martin JL, Pickett JA, Pye BJ, Smart LE, Wadhams LJ. 2003. cis-Jasmone treatment induces resistance in wheat plants against the grain aphid, Sitobion avenae (Fabricius) (Homoptera: Aphididae). Pest Manag Sci. 59:1031–1036. 10.1002/ps.730
  • Bruce TJA, Matthes MC, Chamberlain K, Woodcock CM, Mohib A, Webster B, Smart LE, Birkett MA, Pickett JA, Napier JA. 2008. cis-Jasmone induces Arabidopsis genes that affect the chemical ecology of multitrophic interactions with aphids and their parasitoids. Proc Natl Acad Sci USA. 105:4553–4558. 10.1073/pnas.0710305105
  • Choh Y, Shimoda T, Ozawa R, Dicke M, Takabayashi J. 2004. Exposure of lima bean leaves to volatiles from herbivore-induced conspecific plants results in emission of carnivore attractants: active or passive process? J Chem Ecol. 30:1305–1317. 10.1023/B:JOEC.0000037741.13402.19
  • Cooper WR, Rieske LK. 2008. Differential responses in American (Castanea dentata Marshall) and Chinese (C. mollissima Blume) chestnut (Falales: Fagaceae) to foliar application of jasmonic acid. Chemoecology. 18:121–127. 10.1007/s00049-008-0399-y
  • Dicke M, Vanbeek TA, Posthumus MA, Bendom N, Vanbokhoven H, Degroot AE. 1990. Isolation and identification of volatile kairomone that affects Acarine predator–prey interactions: involvement of host plant in its production. J Chem Ecol. 16:381–396. 10.1007/BF01021772
  • Dicke M, Bruin J, Sabelis MW. 1993. Herbivore-induced plant volatiles mediate plant–carnivore, plant–herbivore and plant–plant interactions; talking plants revisited. In: Schultz J, Raskin I, editors. Plant signals in interactions with other plants. Rockville, MD: American Society of Plant Physiologists. p. 182–196.
  • Dicke M, Gols R, Ludeking D, Posthumus MA. 1999. Jasmonic acid and herbivory differentially induce carnivore-attracting plant volatiles in lima bean plants. J Chem Ecol. 25:1907–1922. 10.1023/A:1020942102181
  • Farmer EE, Ryan CA. 1992. Octadecanoid precursors of jasmonic acid activate the synthesis of wound-inducible proteinase inhibitors. Plant Cell. 4:129–134.
  • Heijari J, Nerg AM, Kainulainen P, Viiri H, Vuorinen M, Holopainen JK. 2005. Application of methyl jasmonate reduces growth but increases chemical defence and resistance against Hylobius abietis in Scots pine seedlings. Entomol Exp Appl. 115:117–124. 10.1111/j.1570-7458.2005.00263.x
  • Hopke J, Donath J, Blechert S, Boland W. 1994. Herbivore induced volatiles: the emission of acyclic homoterpenes from leaves of Phaseolus lunatus and Zea mays can be triggered by β-glucosidase and jasmonic acid. FEBS Lett. 352:146–150. 10.1016/0014-5793(94)00948-1
  • Horiuchi J, Arimura G, Ozawa R, Shimoda T, Takabayashi J, Nishioka T. 2003. A comparison of the responses of Tetranychus urticae (Acari: Tetranychidae) and Phytoseiulus persimilis (Acari: Phytoseiidae) to volatiles emitted from lima bean leaves with different levels of damage made by T. urticae or Spodoptera exigua (Lepidoptera: Noctuidae). Appl Entomol Zool. 38:109–116. 10.1303/aez.2003.109
  • Kappers IF, Aharoni A, van Herpen TWJM, Luckerhoff LLP, Dicke M, Bouwmeester HJ. 2005. Genetic engineering of terpenoid metabolism attracts bodyguards to Arabidopsis. Science. 309:2070–2072. 10.1126/science.1116232
  • Koshiyama M, Seto H, Kamuro Y, Kateora M. 2006. A jasmonic acid analog, PDJ, comes into practical use as a plant growth regulator (in Japanese). Plant Growth Regul. 38:35–47.
  • Mandour NS, Kainoh Y, Ozawa R, Uefune M, Takabayashi J. 2013. Effects of prohydrojasmon-treated corn plants on attractiveness to parasitoids and the performance of their hosts. J Appl Entomol. 137:104–112.
  • Ozawa R, Arimura G, Takabayashi J, Shimoda T, Nishioka T. 2000. Involvement of jasmonate- and salicylate-related signaling pathways for the production of specific herbivore-induced volatiles in plants. Plant Cell Physiol. 41:391–398. 10.1093/pcp/41.4.391
  • Ozawa R, Shiojiri K, Sabelis MW, Arimura G, Nishioka T, Takabayashi J. 2004. Corn plants treated with jasmonic acid attract more specialist parasitoids, thereby increasing parasitization of the common armyworm. J Chem Ecol. 30:1797–1808. 10.1023/B:JOEC.0000042402.04012.c7
  • Ozawa R, Shiojiri K, Sabelis MW, Takabayashi J. 2008. Maize plants sprayed with either jasmonic acid or its precursor, methyl linolenate, attract armyworm parasitoids, but the composition of attractants differs. Entomol Exp Appl. 129:189–199. 10.1111/j.1570-7458.2008.00767.x
  • SAS Institute Inc. 2010. JMP version 9.0.2. Cary, NC: SAS Institute Inc.
  • Shimoda T. 2010. A key volatile infochemical that elicits a strong olfactory response of the predatory mite Neoseiulus californicus, an important natural enemy of the two-spotted spider mite Tetranychus urticae. Exp Appl Acarol. 50:9–22. 10.1007/s10493-009-9275-x
  • Shimoda T, Nishihara M, Ozawa R, Takabayashi J, Arimura G. 2012. The effect of genetically enriched (E)-beta-ocimene and the role of floral scent in the attraction of the predatory mite Phytoseiulus persimilis to spider mite-induced volatile blends of torenia. New Phytol. 193:1009–1021. 10.1111/j.1469-8137.2011.04018.x
  • Shimoda T, Ozawa R, Arimura G, Takabayashi J, Nishioka T. 2002. Olfactory responses of two specialist insect predators of spider mites toward plant volatiles from lima bean leaves induced by jasmonic acid and/or methyl salicylate. Appl Entomol Zool. 37:535–541. 10.1303/aez.2002.535
  • Sobhy IS, Erb M, Sarhan AA, El-Husseini MM, Mandour NS, Turlings TCJ. 2012. Less is more: treatment with BTH and laminarin reduces herbivore-induced volatile emissions in maize but increases parasitoid attraction. J Chem Ecol. 38:348–360. 10.1007/s10886-012-0098-6

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