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Article

Expression of defense-related enzymes in blast [Magnaporthe grisea (Herbert) Barr] resistant and susceptible genotypes of pearl millet [Pennisetum glaucum (L.) R. Br.]

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Pages 813-835 | Received 28 Jan 2020, Accepted 28 Oct 2020, Published online: 02 Dec 2020

References

  • Arun K, Mali PC, Manga VK. 2010. Changes of some phenolic compounds and enzyme activities on infected pearl millet caused by Sclerospora graminicola. Int J Plant Physiol Biochem. 2:6–10.
  • Balbi-Pena MI, Schwan-Estrada KR, Stangarlin JR. 2014. Oxidative burst and the activity of defense-related enzymes in compatible and incompatible tomato-Alternaria solani interactions. Sem Ci Agr. 35(5):2399–2414.
  • Bell JN, Dixon RA, Bailey JA, Rowell PM, Lamb CJ. 1984. Differential induction of chalcone synthase mRNA activity at the onset of phytoalexin accumulation in compatible and incompatible plant-pathogen interactions. Proc Natl Acad Sci U S A. 81(11):3384–3388.
  • Chandrasekaran M, Belachew ST, Yoon E, Chun SC. 2017. Expression of β-1, 3-glucanase (GLU) and phenylalanine ammonia-lyase (PAL) genes and their enzymes in tomato plants induced after treatment with Bacillus subtilis CBR05 against Xanthomonas campestris pv. vesicatoria. J Gen Plant Pathol. 83(1):7–13.
  • Chhabra AK, Behl RK, El Bassam N. 2001. Role of isozymes in pearl millet improvement (Pennisetum glaucum). Landbauforschung Volkenrode. 51(4):165–173.
  • Daayf F, Bel-Rhlid R, Bélanger RR. 1997. Methyl ester of p-coumaric acid: a phytoalexin-like compound from long English cucumber leaves. J Chem Ecol. 23(6):1517–1526.
  • De Lucca AJ, Cleveland TE, Wedge DE. 2005. Plant-derived antifungal proteins and peptides. Can J Microbiol. 51(12):1001–1014.
  • Dicko MH, Gruppen H, Barro C, Traore AS, Van Berkel WJH, Voragen AGJ. 2005. Impact of phenolic compounds and related enzymes in sorghum varieties for resistance and susceptibility to biotic and abiotic stresses. J Chem Ecol. 31(11):2671–2688.
  • Dicko MH, Gruppen H, Zouzouho OC, Traore AS, Van Berkel WJH, Voragen AGJ. 2006. Effects of germination on the activities of amylases and phenolic enzymes in sorghum grouped according to food end-use properties. J Sci Food Agric. 86(6):953–963.
  • Dicko MH, Hilhorst R, Gruppen H, Traore AS, Laane C, van Berkel WJH, Voragen AGJ. 2002. Comparison of content in phenolic compounds, polyphenol oxidase, and peroxidase in grains of fifty sorghum varieties from Burkina Faso. J Agric Food Chem. 50(13):3780–3788.
  • Do HM, Hong JK, Jung HW, Kim SH, Ham JH, Hwang BK. 2003. Expression of peroxidase-like genes, H2O2 production, and peroxidase activity during the hypersensitive response to Xanthomonas campestris pv. vesicatoria in Capsicum annuum. Mol Plant Microbe Interact. 16(3):196–205.
  • Farkas GL, Kiraaly Z. 1962. Role of phenolic compounds in the physiology of plant diseases and disease resistance. J Phytopathol. 44(2):105–150.
  • Fernandez A, Solorzano E, Peteira B, Fernandez E. 1996. Peroxidase induction in tomato leaves with different degrees of susceptibility to Alternaria solani. Rev Prot Veg. 11:79–83.
  • Hammerschmidt R, Nuckles EM, Kuc J. 1982. Association of enhanced peroxidase activity with induced systemic resistance of cucumber to Colletotrichum lagenarium. Plant Pathol. 20(1):73–82.
  • Hammond-Kosack KE, Jones JDG. 1996. Resistance gene-dependent plant defense responses. Plant Cell. 8(10):1773–1791.
  • Hanna WW, Wells HD. 1989. Inheritance of Pyricularia leaf spot resistance in pearl millet. J Hered. 80(2):145–147.
  • Hanna WW, Wells HD, Burton GW, Hill GM, Monson WG. 1988. Registration of ‘Tifleaf 2’ pearl millet. Crop Sci. 28(6):1023–1023.
  • Heldt HW. 2005. Phenylalanine ammonia lyase catalyzes the initial reaction of phenylpropanoid metabolism. Plant biochemistry. Amsterdam: Elsevier. pp. 437–454.
  • Jayaraman KS, Ramanuja MN, Vijayaraghavan PK, Vaidyanathan CS. 1987. Oxidative enzymes in pearl millet. Food Chem. 24(3):203–206.
  • Jia Y, Valent B, Lee FN. 2003. Determination of host responses to Magnaporthe grisea on detached rice leaves using a spot inoculation method. Plant Dis. 87(2):129–133.
  • Kim DS, Hwang BK. 2014. An important role of the pepper phenylalanine ammonia-lyase gene (PAL1) in salicylic acid-dependent signalling of the defence response to microbial pathogens. J Exp Bot. 65(9):2295–2306.
  • Kosuge T. 1969. The role of phenolics in host response to infection. Annu Rev Phytopathol. 7(1):195–222.
  • Laemmli UK. 1970. Cleavage of structural proteins during the assembly of the head of bacteriophage T4. Nature. 227(5259):680–685.
  • Lattanzio V, Lattanzio VM, Cardinali A. 2006. Role of phenolics in the resistance mechanisms of plants against fungal pathogens and insects. Phytochem Adv Res. 661(2):23–67.
  • Lawrence CB, Joosten MHAJ, Tuzun S. 1996. Differential induction of pathogenesis related proteins in tomato by Alternaria solani and the association of a basic chitinase isozyme with resistance. Physiol Mol Plant Pathol. 48(6):361–377.
  • Lawrence CB, Singh NP, Qiu J, Gardner RG, Tuzun S. 2000. Constitutive hydrolytic enzymes are associated with polygenic resistance of tomato to Alternaria solani and may function as an elicitor release mechanism. Physiol Mol Plant Pathol. 57(5):211–220.
  • Lisker N, Cohen L, Chalutz E, Fuchs Y. 1983. Fungal infection suppresses ethylene- induced Phenylalanine ammonia lyase activity in grape fruits. Physiol Plant Pathol. 22(3):331–338.
  • Lowry OH, Rosebrough NJ, Farr AL, Randall RJ. 1951. Protein measurement with folin phenol reagent. J Biol Chem. 193(1):265–275.
  • Malik CP, Singh MB. 1980. Extraction and estimation of amino acids and keto acids. In: Malik CP, Singh MB (eds) Plant Enzymology and Histo-Enzymology. New Delhi: Kalyani Publishers, p. 286.
  • Manjunatha G, Niranjan-Raj S, Prashanth GN, Deepak S, Amruthesh KN, Shetty HS. 2009. Nitric oxide is involved in chitosan-induced systemic resistance in pearl millet against downy mildew disease. Pest Manag Sci. 65(7):737–743.
  • Martinez C, Montillet JL, Bresson E, Agnel JP, Dai GH, Daniel JF, Geiger JP, Nicole M. 1998. Apoplastic peroxidase generates superoxide anions in cells of cotton cotyledons undergoing the hypersensitive reaction to Xanthomonas campestris pv. malvacearum race 18. MPMI. 11(11):1038–1047.
  • Mauch-Mani B, Slusarenko AJ. 1996. Production of salicylic acid precursors is a major function of phenylalanine ammonia-lyase in the resistance of Arabidopsis to Peronospora parasitica. Plant Cell. 8(2):203–212.
  • Mayer AM, Harel E. 1979. Polyphenol oxidase in plants. Phytochemistry. 18(2):193–215.
  • Mayer AM, Harel E, Shaul RB. 1966. Assay of catechol oxidase a critical comparison of methods. Phytochemistry. 5(4):783–789.
  • Muthusamy M. 1979. Studies on the downy mildew of pearl millet caused by Sclerospora grarninicola (Sacc.S) chroet [Ph.D. Thesis] Coimbatore, India: Tamil Nadu Agricultural University.
  • Nicholson RL, Hammerschmidt R. 1992. Phenolic compounds and their role in disease resistance. Annu. Rev. Phytopathol. 30(1):369–389.
  • Parashar RD, Sidhan GS, Lndra H. 1987. Role of phenolic compounds and carbohydrates in resistance of bajra cultivars to downy mildews. Pl Dis Res. 2:120–121.
  • Perez-de-Luque A, Gonzalez-Verdejo CI, Lozano MD, Dita MA, Cubero JI, Gonzalez-Melendi P, Risueno MC, Rubiales D. 2006. Protein cross-linking, peroxidase and beta-1,3-endoglucanase involved in resistance of pea against Orobanche crenata . J Exp Bot. 57(6):1461–1469.
  • Pusztahelyi T, Holb IJ, Pocsi I. 2015. Secondary metabolites in fungus-plant interactions. Front Plant Sci. 6:573
  • Raju S, Jayalakshmi SK, Sreeramulu K. 2008. Comparative study on the induction of defence related enzymes in two different cultivars of chickpea (Cicer arietinum L.) genotypes by salicylic acid, spermin and Fusarium oxysporum f. sp. ciceri. Aust J Crop Sci. 2:121–140.
  • Rani P, Yasur J. 2009. Physiological changes in groundnut plants induced by pathogenic infection of Cercosporidium personatum Deighton. Allelopathy J. 23:369–378.
  • Rathour R, Sharma R, Sharma V. 2006. Genetic differentiation of rice and non-rice populations of Magnaporthe grisea from north-western Himalayas using native protein and isozyme polymorphisms. J Phytopathol. 154(11-12):641–647.
  • Salim AP, Saminaidu K, Marimuthu M, Perumal Y, Rethinasamy V, Palanisami JR, Vadivel K. 2011. Defense responses in tomato landrace and wild genotypes to early blight pathogen Alternaria solani infection and accumulation of pathogenesis-related proteins. Arch Phytopathol Plant Protect. 44(12):1147–1164.
  • Sapre SS, Patel V, Rajivkumar YR, Rao KS, Patel JS, Talati JG. 2013. Biochemical traits in pearl millet (Pennisetum glaucum) against downy mildew disease. Indian J Agric Sci. 83(12):1411–1415.
  • Satija DR, Thukral SK, Gupta VK. 1983. Role of polyphenol oxidase in imparting resistance to downy mildew in pearl millet. MILWAI Newslett. 2:5–6.
  • Sharma R, Upadhyaya HD, Manjunatha SV, Rai KN, Gupta SK, Thakur RP. 2013. Pathogenic variation in the pearl millet blast pathogen Magnaporthe grisea and identification of resistance to diverse pathotypes. Plant Dis. 97(2):189–195.
  • Sharma R, Yella Goud T, Prasad YP, Nimmala N, Kadvani DL, Mathur AC, Thakare CS, Uma Devi G, Naik MK. 2021. Pathogenic variability amongst Indian isolates of Magnaporthe grisea causing blast in pearl millet. Crop Prot. 139:105372.
  • Solorzano E, Fernandez A, Peteira B, Fernandez E. 1996. Polyphenol oxidases and phenylalanine ammonium lyases induction in tomato leaves infected with Alternaria solani. Rev Prot Veg. 11:153–157.
  • Stout MJ, Fidantsef AL, Duffey SS, Bostock RM. 1999. Signal interactions in pathogen and insect attack: systemic plant-mediated interactions between pathogens and herbivores of the tomato, Lycopersicon esculentum. Physiol Mol Plant Pathol. 54(3-4):115–130.
  • Taranto F, Pasqualone A, Mangini G, Tripodi P, Miazzi MM, Pavan S, Montemurro C. 2017. Polyphenol oxidases in crops: biochemical, physiological and genetic aspects. IJMS. 18(2):377.
  • Thakur RP, Sharma R, Rai KN, Gupta SK, Rao VP. 2009. Screening techniques and resistance sources for foliar blast in pearl millet. J SAT Agric Res. 7:1–5.
  • Thimmaiah SR. 1999. Standard Methods of Biochemical Analysis. New Delhi, India: Kalyani Publishers.
  • Thipyapong P, Hunt MD, Steffens JC. 1995. Systemic wound induction of potato (Solanum tuberosum) polyphenol oxidase. Phytochemistry. 40(3):673–676.
  • Thipyapong P, Melkonian J, Wolfe DW, Steffens JC. 2004. Suppression of polyphenol oxidases increases stress tolerance in tomato. Plant Sci. 167(4):693–703.
  • Thipyapong P, Steffens JC. 1997. Tomato polyphenol oxidase: differential response of the polyphenol oxidase F promoter to injuries and wound signals. Plant Physiol. 115(2):409–418.
  • Thipyapong P, Stout MJ, Attajarusit J. 2007. Functional analysis of polyphenol oxidases by antisense/sense technology. Molecules. 12(8):1569–1595.
  • Timper P, Wilson JP, Johnson AW, Hanna WW. 2002. Evaluation of pearl millet grain hybrids for resistance to Meloidogyne spp. and leaf blight caused by Pyricularia grisea. Plant Dis. 86(8):909–914.
  • Tukey JW. 1977. Exploratory data analysis. 2:131–160.
  • Umesha S. 2006. Phenylalanine ammonia lyase activity in tomato seedlings and its relation to bacterial canker disease resistance. Phytoparasitica. 34(1):68–71.
  • Velazhahan R, Vidhyasekaran P. 1994. Role of phenolic compounds, peroxidase and polyphenol oxidase in resistance of groundnut to rust. Acta Phytopathol Entomol Hung. 29:23–29.
  • Ward E, Uknes SJ, Williams SC, Dincher SS, Wiederhold DL, Alexander DC, Ahl-Goy P, Metraux JP, Ryals JA. 1991. Coordinate gene activity in response to agents that induce systemic acquired resistance. Plant Cell. 3(10):1085–1094.
  • Wen PF, Chen JY, Kong WF, Pan QH, Wan SB, Huang WD. 2005. Salicylic acid induced the expression of phenylalanine ammonia-lyase gene in grape berry. Plant Sci. 169(5):928–934.
  • Wilson JP, Gates RN. 1993. Forage yield losses in hybrid pearl millet due to leaf blight caused primarily by Pyricularia grisea. Phytopathology. 83(9):739–743.
  • Youssef K, Sanzani SM, Ligorio A, Fallanaj F, Nigro F, Ippolito A. 2015. Biochemical and transcriptomic changes associated with induced resistance in citrus fruits treated with sodium salts. Acta Hortic. 1065:1627–1632.

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