Accumulation of salicylic acid, jasmonic acid and phytoalexins in rice, Oryza sativa, infested by the white-backed planthopper, Sogatella furcifera (Hemiptera: Delphacidae)

Applied Entomology and Zoology - Tập 47 Số 1 - Trang 27-34 - 2012
Hiroo Kanno1, Morifumi Hasegawa2, Osamu Kodama2
1Laboratory of Applied Entomology, Kyushu Okinawa National Agricultural Research Center, Kohshi, Kumamoto, 861-1192, Japan
2College of Agriculture, Ibaraki University, Ami, Ibaraki 300-0393, Japan

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Tài liệu tham khảo

Bailey JA, Manfield JW (eds) (1982) Phytoalexins. Wiley, New York

Cartwright D, Langcake P, Price R, Leworthy DP, Ride JP (1977) Chemical activation of host defense mechanisms as a basis for crop protection. Nature 267:511–513

De Vos M, Van Oosten VR, Van Poecke RMP (2005) Signal signature and transcriptom changes of Arabidopsis during pathogen and insect attack. Mol Plant Microbe Interact 18:923–927

Dethier VG, Barton-Browne L, Smith CN (1960) The designation of chemicals in terms of the responses they elicit from the insects. J Econ Entomol 53:134–136

Devadas SK, Enyedi A, Raina R (2002) The Arabidopsis hrl1 mutation reveals novel overlapping roles for salicylic acid, jasmonic acid and ethylene signaling in cell death and defense against pathogens. Plant J 30:467–480

Durrant WE, Dong X (2004) Systemic acquired resistance. Ann Rev Phytopathol 42:185–209

Felton GW, Korth KL (2000) Trade-offs between pathogen and herbivore resistance. Curr Opin Plant Biol 3:309–314

Gomi K, Satoh M, Ozawa R, Shinonaga Y, Sanada S, Sasaki K, Matsumura M, Ohashi Y, Kanno H, Akimitsu K, Takabayashi J (2010) Role of hydroperoxide lyase in white-backed planthopper (Sogatella furcifera Horváth)-induced resistance to bacterial blight in rice, Oryza sativa L. Plant J 61:46–57

Grayer RJ, Kokubun T (2001) Plant–fungal interactions: the search for phytoalexins and other antifungal compounds from higher plants. Phytochemistry 56:253–263

Halitschke R, Baldwin IT (2004) Jasmonates and related compounds in plant–insect interactions. J Plant Growth Regul 23:238–245

Hart SV, Kogan M, Paxton JD (1983) Effect of soybean phytoalexins on the herbivorous insects Mexican bean beetle and soybean looper. J Chem Ecol 9:657–672

Hasegawa M, Mitsuhara I, Seo S, Imai T, Koga J, Okada K, Yamane H, Ohashi Y (2010) Phytoalexin accumulation in the interaction between rice and the blast fungus. Mol Plant Microbe Interact 23:1000–1011

Heidel AJ, Baldwin IT (2004) Microarray analysis of salicylic acid- and jasmonic acid-signalling in responses of Nicotiana attenuate to attack by insects from multiple feeding guilds. Plant Cell Environ 27:1362–1373

Iwano M (1999) Presumed genotypes for true resistance of recommended rice varieties to rice blast in Kyushu Okinawa districts. Kyushu Agric Res 64:69

Kanno H, Fujita Y (2003) Induced systemic resistance to rice blast fungus in rice plants infested by white-backed planthopper. Entomol Exp Appl 107:155–158

Kanno H, Satoh M, Kimura T, Fujita Y (2005) Some aspects of induced resistance to rice blast fungus, Magnaporthe grisea, in rice plant infested by white-backed planthopper, Sogatella furcifera. Appl Entomol Zool 40:91–97

Karban R, Myers JH (1989) Induced plant responses to herbivory. Ann Rev Ecol Syst 20:331–348

Kodama O, Miyakawa J, Akatsuka T, Kiyosawa S (1992) Sakuranetin, a flavanone phytoalexin from ultraviolet-irradiated rice leaves. Phytochemistry 31:3807–3809

Koeduka T, Matsui K, Hasegawa M, Akakabe Y, Kajiwara T (2005) Rice fatty acid α-dioxygenase is induced by pathogen attack and heavy metal stress: activation through jasmonate signaling. J Plant Physiol 162:912–920

Moran PJ, Thompson GA (2001) Molecular responses to aphid feeding in Arabidopsis in relation to plant defense pathways. Plant Physiol 125:1074–1085

Moran PJ, Cheng Y, Cassell JL, Thompson GA (2002) Gene expression profiling of Arabidopsis thaliana in compatible plant–aphid interactions. Arch Insect Biochem Physiol 51:182–203

Nojiri H, Sugimori M, Yamane H, Nishimura Y, Yamada A, Shibuya N, Kodama O, Murofushi N, Omori T (1996) Involvement of jasmonic acid in elicitor-induced phytoalexin production in suspension-cultured rice cells. Plant Physiol 110:387–392

Obara N, Hasegawa M, Kodama O (2002) Induced volatiles in elicitor treated and rice blast fungus-inoculated rice leaves. Biosci Biotechnol Biochem 66:2549–2559

Olson MM, Roseland CR (1991) Induction of the coumarins scopoletin and ayapin in sunflower by insect feeding stress and effects of coumarins on the feeding of sunflower beetle (Coleoptera: Chrysomelidae). Environ Entomol 20:1166–1172

Peters RJ (2006) Uncovering the complex metabolic network underlying diterpenoid phytoalexin biosynthesis in rice and other cereal crop plants. Phytochemistry 67:2307–2317

Pedras MSC, Ahiahonu PWK (2005) Metabolism and detoxification of phytoalexins and analogs by phytopathogenic fungi. Phytochemistry 66:391–411

Pozo MJ, Van Loon LC, Pieterse CMJ (2004) Jasmonates: signals in plant microbe interactions. J Plant Growth Regul 23:211–222

Rairdan GJ, Delaney TP (2002) Role of salicylic acid and Niml/npr1 in race specific resistance in Arabidopsis. Genetics 161:803–811

Rakwal R, Tamogami R, Kodama O (1996) Role of jasmonic acid as signaling molecule in copper chloride-elicited rice phytoalexin production. Biosci Biotechnol Biochem 60:1046–1048

Raskin I, Skubatz H, Tang W, Meeuse BJD (1990) Salicylic acid levels in thermogenic and non-sermogenic plants. Ann Bot 66:369–373

Rojo E, Solano R, Sanchez-Serrano JJ (2003) Interactions between signaling compounds involved in plant defense. J Plant Growth Regul 22:82–98

Salzman RA, Brady JA, Finlayson SA (2005) Transcriptional profiling of sorghum induced by methyl jasmonate, salicylic acid, and aminocyclopropane carboxylic acid reveals cooperative regulation and novel gene responses. Plant Physiol 138:352–368

Satoh M, Nakajima T, Kanno H (2005) Induced resistance to rice blast disease in rice plants infested with white-backed planthopper in a paddy field. Jpn J Appl Entomol Zool 49:105–111

Schenk PM, Kazan K, Wilson I, Anderson JP, Richimond T, Somerville SC, Manners JM (2000) Co-ordinated plant defense responses in Arabidopsis revealed by microarray analysis. Proc Natl Acad Sci USA 97:11655–11660

Shulaev V, Silverman P, Raskin I (1997) Airborne signaling by methyl salicylate in plant pathogen resistance. Nature 385:718–721

Silverman P, Seskar M, Kanter D, Schweizer P, Metraux JP, Raskin I (1995) Salicylic acid in rice: biosynthesis, conjugation, and possible role. Plant Physiol 108:633–639

Tamogami R, Rakwal O, Kodama O (1997) Phytoalexin production elicited by exogenously applied jasmonic acid in rice leaves (Oryza sativa L.) is under the control of cytokinins and ascorbic acid. FEBS Lett 412:61–64

Tharler JS, Fidantsef AL, Bostok RM (2002) Antagonism between jasmonate- and salicylate-mediated induced plant resistance: effects of concentration and timing of elicitation on defense-related proteins, herbivore, and pathogen performance in tomato. J Chem Ecol 28:1131–1159

Thompson GA, Goggin FL (2006) Transcriptomics and functional genomics of plant defense induction by phloem-feeding insects. J Exp Bot 57:755–766

Toyomasu T (2008) Recent advances regarding diterpene cyclase genes in higher plants and fungi. Biosci Biotechnol Biochem 72:1168–1175

Van Loon LC (2000) Systemic induced resistance. In: Slusarenko AJ, Fraser RSS, Van Loon LC (eds) Mechanism of resistance to plant diseases. Kluwer, Dordrecht, pp 521–574

Van Wees MSC, de Swart EAM, van Pelt JA, van Loon LC, Pieterse CMJ (2000) Enhancement of induced disease resistance by simultaneous activation of salicylate- and jasmonate-dependent defense pathways in Arabidopsis thaliana. Proc Natl Acad Sci USA 97:8711–8716

Walling LL (2000) The myriad plant responses to herbivores. J Plant Growth Regul 19:195–216

Yang Y, Qi M, Mei C (2004) Endogenous salicylic acid protects rice plants from oxidative damage caused by aging as well as biotic and abiotic stress. Plant J 40:909–919

Yara A, Yaeno T, Hasegawa M, Seto H, Montillet J-L, Kusumi K, Seo S, Iba K (2007) Disease resistance against Magnaporthe grisea is enhanced in transgenic rice with suppression of ω-3 fatty acid desaturases. Plant Cell Physiol 48:1263–1274