Matsushita A, Inoue H, Goto S, Nakayama A, Sugano S, Hayashi N et al (2013) Nuclear ubiquitin
proteasome degradation affects WRKY 45 function in the rice defense program. Plant J
73:302–313
Meng Q, Gupta R, Kwon SJ, Wang Y, Agrawal GK, Rakwal R et al (2018a) Transcriptomic
analysis of Oryza sativa leaves reveals key changes in response to Magnaporthe oryzae MSP1.
Plant Pathol J 34:257
Meng Q, Gupta R, Min CW, Kim J, Kramer K, Wang Y et al (2018b) Label-free quantitative
proteome data associated with MSP1 and flg22 induced signaling in rice leaves. Data Brief
20:204–209
Meng Q, Gupta R, Min CW, Kim J, Kramer K, Wang Y et al (2019a) A proteomic insight into the
MSP1 and flg22 induced signaling in Oryza sativa leaves. J Proteome 196:120–130. https://doi.
org/10.1016/j.jprot.2018.04.015
Meng Q, Gupta R, Min CW, Kwon SW, Wang Y, Je BI et al (2019b) Proteomics of rice—
Magnaporthe oryzae interaction: what have we learned so far? Front Plant Sci 10. https://doi.
org/10.3389/fpls.2019.01383
Mentlak TA, Kombrink A, Shinya T, Ryder LS, Otomo I, Saitoh H et al (2012) Effector-mediated
suppression of chitin-triggered immunity by Magnaporthe oryzae is necessary for rice blast
disease. Plant Cell 24:322–335
Miller RNG, Costa Alves GS, Van Sluys M-A (2017) Plant immunity: unravelling the complexity
of plant responses to biotic stresses. Ann Bot 119:681–687
Nie H-Z, Zhang L, Zhuang H-Q, Shi W-J, Yang X-F, Qiu D-W et al (2019) The secreted protein
MoHrip1 is necessary for the virulence of Magnaporthe oryzae. Int J Mol Sci 20:1643
Okuyama Y, Kanzaki H, Abe A, Yoshida K, Tamiru M, Saitoh H et al (2011) A multifaceted
genomics approach allows the isolation of the rice Pia-blast resistance gene consisting of two
adjacent NBS-LRR protein genes. Plant J 66:467–479
Parlevliet JE (1979) Components of resistance that reduce the rate of epidemic development. Annu
Rev Phytopathol 17:203–222
Paterson AH, Damon S, Hewitt JD, Zamir D, Rabinowitch HD, Lincoln SE et al (1991) Mendelian
factors underlying quantitative traits in tomato: comparison across species, generations, and
environments. Genetics 127:181–197
Ramamoorthy R, Jiang S-Y, Kumar N, Venkatesh PN, Ramachandran S (2008) A comprehensive
transcriptional profiling of the WRKY gene family in rice under various abiotic and phytohormone treatments. Plant Cell Physiol 49:865–879
Ryu H-S, Han M, Lee S-K, Cho J-I, Ryoo N, Heu S et al (2006) A comprehensive expression
analysis of the WRKY gene superfamily in rice plants during defense response. Plant Cell Rep
25:836–847
Schmelz EA, Huffaker A, Sims JW, Christensen SA, Lu X, Okada K et al (2014) Biosynthesis,
elicitation and roles of monocot terpenoid phytoalexins. Plant J 79:659–678
Sharma TR, Rai AK, Gupta SK, Vijayan J, Devanna BN, Ray S (2012) Rice blast management
through host-plant resistance: retrospect and prospects. Agric Res 1:37–52
Shimizu T, Nakano T, Takamizawa D, Desaki Y, Ishii-Minami N, Nishizawa Y et al (2010) Two
LysM receptor molecules, CEBiP and OsCERK1, cooperatively regulate chitin elicitor signaling in rice. Plant J 64:204–214
Shimono M, Sugano S, Nakayama A, Jiang C-J, Ono K, Toki S et al (2007) Rice WRKY45 plays a
crucial role in benzothiadiazole-inducible blast resistance. Plant Cell 19:2064–2076
Shimono M, Koga H, Akagi AYA, Hayashi N, Goto S, Sawada M et al (2012) Rice WRKY45 plays
important roles in fungal and bacterial disease resistance. Mol Plant Pathol 13:83–94
Silverman P, Seskar M, Kanter D, Schweizer P, Metraux J-P, Raskin I (1995) Salicylic acid in rice
(biosynthesis, conjugation, and possible role). Plant Physiol 108:633–639
Skamnioti P, Gurr SJ (2009) Against the grain: safeguarding rice from rice blast disease. Trends
Biotechnol 27:141–150
Skorbiansky SR (2018) Rice outlook. Econ Res Serv:1–33
376
N. Khatri et al.
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