Expression Analysis of Rice Polygalacturonase cDNA Responding to Brown Planthopper [Nilaparvata lugens (Stål)]

Authors

  • Sugunya Suebsan University of Phayao
  • Supranee Sitthiphrom Loei Rajabhat University
  • Kanta Sangwijit University of Phayao
  • Mondhon Sanguansermsri University of Phayao
  • Somboon Anuntalabhochai University of Phayao

DOI:

https://doi.org/10.14456/gag.2017.3

Keywords:

polygalacturonase, Oryza sativa cv. KDML105, insect herbivore, ethylene, cytokinin

Abstract

A cDNA (OsKPG) encoding polygalacturonase (PG) from rice (Oryza sativa cv. KDML105) was cloned and sequenced. The cDNA full length was 978 bp and carried 277 deduced amino acids with 4 highly conserved domains among PG family. Consequently, the expression of OsKPG was investigated under brown planthopper [Nilaparvata lugens (Stål)] attack. The transcription of OsKPG under different phytohormone applications including ethylene, abscisic acid (ABA), 6-benzyladenine (6-BA) and 2,4-dichlorophenoxyacetic acid (2,4-D) were also analyzed in leaves. An RT-PCR revealed that the expression of OsKPG was high when faced with brown planthopper attack, application of ethylene or 6-BA treatments. This is the first evidence demonstrating that OsKPG may play a role to respond against insect herbivores through the signaling pathways between ethylene and cytokinin in rice.

Author Biographies

Sugunya Suebsan, University of Phayao

Biology Department, School of Science,

Supranee Sitthiphrom, Loei Rajabhat University

Faculty of Science and Technology

Kanta Sangwijit, University of Phayao

Biotechnology Unit

Mondhon Sanguansermsri, University of Phayao

Pharmaceutical Sciences Department, School of Pharmaceutical Sciences

Somboon Anuntalabhochai, University of Phayao

Biology Department, School of Science and Biotechnology Unit

References

Altschul SF, Gish W, Miller W, Myers EW, Lipman DJ (1990) Basic local alignment search tool. J Mol Biol 215: 403–411.

Argandoña VH, Chaman M, Cardemil L, Muñoz O, Zúñiga GE, Corcuera LJ (2001) Ethylene production and peroxidase activity in aphid-infested barley. J Chem Ecol 27: 53–68.

Bergey D, Orozco-Cardenas M, De Moura DS, Ryan CA (1999) A wound- and systemin-inducible polygalacturonase in tomato leaves. Proc Natl Acad Sci USA 96: 1756-1760.

Broekaert WF, Pneumas WJ (1988) Pectic polysaccharides elicit chitinase accumulation in tobacco. Physiol Plant 74: 740–744.

Bussink HJD, Buxton FP, Visser J (1991) Expression and sequence comparison of the Aspergillus niger and Aspergillus tubigensis genes encoding polygalacturonase II. Curr Genet 19: 467–474.

Davis KR, Darvill AG, Albersheim P, Dell A (1986) Host–pathogen interactions. XXIX. Oligogalacturonides released from sodium polypectate by endopolygalacturonic acid lyase are elicitors of phytoalexins in soybean. Plant Physiol 80: 568–577.

Davis KR, Hahlbrock K (1987) Induction of defense responses in cultured parsley cells by plant cell wall fragments. Plant Physiol 84(4): 1286-1290.

Fabi JP, Cordenunsi BR, Seymour GB, Lajolo FM, do Nascimento JR (2006) Molecular cloning and characterization of a ripening-induced polygalacturonase related to papaya fruit softening. Plant Physiol Biochem 47(11-12): 1075-1081.

Fürstenberg-Hägg J, Zagrobelny M, Bak S (2013) Plant defense against insect herbivores. Int J Mol Sci 14: 10242-10297.

Galletti R, Denoux C, Gambetta S, Dewdney J, Ausubel FM, De Lorenzo G, Ferrari S (2008) The AtrbohD-mediated oxidative burst elicited by oligogalacturonides in Arabidopsis is dispensable for the activation of defense responses effective against Botrytis cinerea. Plant Physiol 148:1695–1706.

Gayathri T, Nair AS (2015) Purification and characterization of polygalacturonase from ripened fruits of Musa acuminata cultivar from Kerala (Musa acuminata cv. Palayankodan). J Food Meas Char 9: 233-239.

Harfouche AL, Shivaji R, Stocker R, Williams PW, Luthe DS (2006) Ethylene signaling mediates a maize defense response to insect herbivory. Mol Plant-Microbe Interact 19:189–199.

Kubo Y, Xue Y, Nakatsuka A, Mathooko FM, Inaba A, Nakamura R (2000) Expression of a water stress- induced polygalacturonase gene in harvested cucumber fruit. J Japan Soc Hort Sci 69(3): 273-279.

Lee RH, Wang CH, Huang LT, Chen SG (2001) Leaf senescence in rice plants: cloning and characterization of senescence up-regulated genes. short communication in J Exp Bot 52(358): 1117-1121.

Louis J, Basu S, Varsani S, Castano-Duque L, Jiang V, Williams WP, Felton GW, Luthe DS (2015) Ethylene contributes to maize insect resistance1-mediated maize defense against the phloem sap-sucking corn leaf aphid. Plant Physiol 169(1): 313-324.

Lu J, Li J, Ju H, Liu X, Erb M, Wang X, Lou Y (2014) Contrasting effects of ethylene biosynthesis on induced plant resistance against a chewing and a piercing-sucking herbivore in rice. Mol Plant 7(11): 1670-1682.

Orozco-Cardenas M, Ryan CA (1999) Hydrogen peroxide is generated systemically in plant leaves by wounding and systemin via the octadecanoid pathway. Proc Natl Acad Sci USA 96(11): 6553-6557.

Palanivelu P (2006) Polygalacturonase: Active site analyses and mechanism of action. Indian J Biotechnol 5: 148-162.

Pitakrattananukool S, Kawakatsu T, Anuntalabhochai S, Takaiwa F (2012) Overexpression of OsRab7B3, a small GTP-binding protein gene, enhances leaf senescence in transgenic rice. Biosci Biotechnol Biochem 76(7): 296-302.

Qi MF, Xu T, Chen WZ, Li TL (2014) Ultrastructural localization of polygalacturonase in ethylene-stimulated abscission of tomato pedicel explants. SCI WORLD J 2014: 389896.

Rakwal R, Yang G, Komatsu S (2004) Chitinase induced by jasmonic acid, methyl jasmonate, ethylene and protein phosphatase inhibitors in rice. Mol Biol Rep 31(2): 113-119.

Rao MN, Kembhavi AA (1996) Pant A. Implication of tryptophan and histidine in the active site of endo-polygalacturonase from Aspergillus ustus: elucidation of the reaction mechanism. Biochim Biophys Acta 1296(2): 167-173.

Rasul S, Dubreuil-Maurizi C, Lamotte O, Koen E, Poinssot B, Alcaraz G, Wendehenne D, Jeandroz S (2012) Nitric oxide production mediates oligogalacturonide-triggered immunity and resistance to Botrytis cinerea in Arabidopsis thaliana. Plant Cell Environ 35: 1483–1499.

Sanger F, Nicklen S, Coulson AR (1977) DNA sequencing with chain terminating inhibitors. Proc Natl Acad Sci USA 74: 5463–5467.

Schäfer M, Meza-Canales ID, Navarro-Quezada A, Brütting C, Vanková R, Baldwin IT, Meldau S (2015) Cytokinin levels and signaling respond to wounding and the perception of herbivore elicitors in Nicotiana attenuate. J Integr Plant Biol 57(2): 198-212.

Shibuya N, Minami E (2001) Oligosaccharide signaling for defense responses in plant. Physiol Mol Plant Path 59: 223-233.

Sitrit Y, Hadfield A, Bennett AB, Bradford KJ, Downie AB (1999) Expression of polygalacturonase associated with tomato seed germination. Plant Physiol 121: 419-428.

Suttle JC (1986) Cytokinin-induced ethylene biosynthesis in nonsenescing cotton leaves. Plant Physiol 82(4): 930-935.

Vogel JP, Schuerman P, Woeste K, Brandstatter I, Kieber JJ (1998) Isolation and characterization of Arabidopsis mutants defective in the induction of ethylene biosynthesis by cytokinin. Genetics 149: 417-427.

von Dahl CC, Baldwin IT (2007) Deciphering the role of ethylene in plant–herbivore interactions. J Plant Growth Regul 26: 201-209.

War AR, Paulraj MG, Ahmad T, Buhroo AA, Hussain B, Ignacimuthu S, Sharma HC (2012) Mechanisms of plant defense against insect herbivores. Plant Signal Behav 7(10): 1306-1320.

Wittstock U, Gershenzon J (2002) Constitutive plant toxins and their role in defense against herbivores and pathogens. Curr Opin Plant Biol 5(4): 300-307.

Xiao C., Somerville C, Anderson CT (2014) POLYGALACTURONASE INVOLVED IN EXPANSION1 functions in cell elongation and flower development in Arabidopsis. Plant Cell 26(3): 1018-1035.

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Published

2017-10-09

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Research Articles