Gupta R, Kwon S-Y, Kim ST (2018a) An insight into the tomato spotted wilt virus (TSWV), tomato
and thrips interaction. Plant Biotechnol Rep 12:157–163
Gupta R, Min CW, Kramer K, Agrawal GK, Rakwal R, Park KH et al (2018b) A multi-omics
analysis of Glycine max leaves reveals alteration in flavonoid and isoflavonoid metabolism upon
ethylene and Abscisic acid treatment. Proteomics 18. https://doi.org/10.1002/pmic.201700366
Gupta R, Min CW, Kim YJ, Kim ST (2019) Identification of Msp1-induced signaling components
in rice leaves by integrated proteomic and phosphoproteomic analysis. Int J Mol Sci 20. https://
doi.org/10.3390/ijms20174135
Gupta R, Min CW, Kim SW, Yoo JS, Moon A-R, Shin A-Y et al (2020) A TMT-based quantitative
proteome analysis to elucidate the TSWV induced signaling cascade in susceptible and resistant
cultivars of Solanum lycopersicum. Plan Theory 9:290
Hong Y, Yang Y, Zhang H, Huang L, Li D, Song F (2017) Overexpression of MoSM1, encoding
for an immunity-inducing protein from Magnaporthe oryzae, in rice confers broad-spectrum
resistance against fungal and bacterial diseases. Sci Rep 7:41037
Jeong JS, Mitchell TK, Dean RA (2007) The Magnaporthe grisea snodprot1 homolog, MSP1, is
required for virulence. FEMS Microbiol Lett 273:157–165
Jia Y, McAdams SA, Bryan GT, Hershey HP, Valent B (2000) Direct interaction of resistance gene
and avirulence gene products confers rice blast resistance. EMBO J 19:4004–4014
Jia Y, Wang Z, Singh P (2002) Development of dominant rice blast Pi-ta resistance gene markers.
Crop Sci 42:2145–2149
Jones JDG, Dangl JL (2006) The plant immune system. Nature 444:323
Kaku H, Nishizawa Y, Ishii-Minami N, Akimoto-Tomiyama C, Dohmae N, Takio K et al (2006)
Plant cells recognize chitin fragments for defense signaling through a plasma membrane
receptor. Proc Natl Acad Sci 103:11086–11091
Kang H, Wang Y, Peng S, Zhang Y, Xiao Y, Wang D et al (2016) Dissection of the genetic
architecture of rice resistance to the blast fungus Magnaporthe oryzae. Mol Plant Pathol
17:959–972
Katagiri F, Tsuda K (2010) Understanding the plant immune system. Mol Plant-Microbe Interact
23:1531–1536
Kawano Y, Akamatsu A, Hayashi K, Housen Y, Okuda J, Yao A et al (2010) Activation of a Rac
GTPase by the NLR family disease resistance protein Pit plays a critical role in rice innate
immunity. Cell Host Microbe 7:362–375
Kim SG, Wang Y, Lee KH, Park Z-Y, Park J, Wu J et al (2013) In-depth insight into in vivo
apoplastic secretome of rice-Magnaporthe oryzae interaction. J Proteome 78:58–71
Kou Y, Qiu J, Tao Z (2019) Every coin has two sides: reactive oxygen species during rice–
Magnaporthe oryzae interaction. Int J Mol Sci 20:1191
Kuchitsu K, Kikuyama M, Shibuya N (1993) N-acetylchitooligosaccharides, biotic elicitor for
phytoalexin production, induce transient membrane depolarization in suspension-cultured rice
cells. Protoplasma 174:79–81
Lee SE, Gupta R, Jayaramaiah RH, Lee SH, Wang Y, Park SR et al (2017) Global transcriptome
profiling of xanthomonas oryzae pv. Oryzae under in planta growth and in vitro culture
conditions. Plant Pathol J 33:458–466. https://doi.org/10.5423/PPJ.OA.04.2017.0076
Lee S-K, Song M-Y, Seo Y-S, Kim H-K, Ko S, Cao P-J et al (2009) Rice Pi5-mediated resistance to
Magnaporthe oryzae requires the presence of two coiled-coil–nucleotide-binding–leucine-rich
repeat genes. Genetics 181:1627–1638
Liu W, Liu J, Ning Y, Ding B, Wang X, Wang Z et al (2013) Recent progress in understanding
PAMP-and effector-triggered immunity against the rice blast fungus Magnaporthe oryzae. Mol
Plant 6:605–620
Liu W, Liu J, Triplett L, Leach JE, Wang G-L (2014) Novel insights into Rice innate immunity
against bacterial and fungal pathogens. Annu Rev Phytopathol 52:213–241. https://doi.org/10.
1146/annurev-phyto-102313-045926
Luna E, Pastor V, Robert J, Flors V, Mauch-Mani B, Ton J (2011) Callose deposition: a multifaceted plant defense response. Mol Plant-Microbe Interact 24:183–193
12 Unraveling the Molecular Mechanism of Magnaporthe oryzae Induced. . .
375
and thrips interaction. Plant Biotechnol Rep 12:157–163
Gupta R, Min CW, Kramer K, Agrawal GK, Rakwal R, Park KH et al (2018b) A multi-omics
analysis of Glycine max leaves reveals alteration in flavonoid and isoflavonoid metabolism upon
ethylene and Abscisic acid treatment. Proteomics 18. https://doi.org/10.1002/pmic.201700366
Gupta R, Min CW, Kim YJ, Kim ST (2019) Identification of Msp1-induced signaling components
in rice leaves by integrated proteomic and phosphoproteomic analysis. Int J Mol Sci 20. https://
doi.org/10.3390/ijms20174135
Gupta R, Min CW, Kim SW, Yoo JS, Moon A-R, Shin A-Y et al (2020) A TMT-based quantitative
proteome analysis to elucidate the TSWV induced signaling cascade in susceptible and resistant
cultivars of Solanum lycopersicum. Plan Theory 9:290
Hong Y, Yang Y, Zhang H, Huang L, Li D, Song F (2017) Overexpression of MoSM1, encoding
for an immunity-inducing protein from Magnaporthe oryzae, in rice confers broad-spectrum
resistance against fungal and bacterial diseases. Sci Rep 7:41037
Jeong JS, Mitchell TK, Dean RA (2007) The Magnaporthe grisea snodprot1 homolog, MSP1, is
required for virulence. FEMS Microbiol Lett 273:157–165
Jia Y, McAdams SA, Bryan GT, Hershey HP, Valent B (2000) Direct interaction of resistance gene
and avirulence gene products confers rice blast resistance. EMBO J 19:4004–4014
Jia Y, Wang Z, Singh P (2002) Development of dominant rice blast Pi-ta resistance gene markers.
Crop Sci 42:2145–2149
Jones JDG, Dangl JL (2006) The plant immune system. Nature 444:323
Kaku H, Nishizawa Y, Ishii-Minami N, Akimoto-Tomiyama C, Dohmae N, Takio K et al (2006)
Plant cells recognize chitin fragments for defense signaling through a plasma membrane
receptor. Proc Natl Acad Sci 103:11086–11091
Kang H, Wang Y, Peng S, Zhang Y, Xiao Y, Wang D et al (2016) Dissection of the genetic
architecture of rice resistance to the blast fungus Magnaporthe oryzae. Mol Plant Pathol
17:959–972
Katagiri F, Tsuda K (2010) Understanding the plant immune system. Mol Plant-Microbe Interact
23:1531–1536
Kawano Y, Akamatsu A, Hayashi K, Housen Y, Okuda J, Yao A et al (2010) Activation of a Rac
GTPase by the NLR family disease resistance protein Pit plays a critical role in rice innate
immunity. Cell Host Microbe 7:362–375
Kim SG, Wang Y, Lee KH, Park Z-Y, Park J, Wu J et al (2013) In-depth insight into in vivo
apoplastic secretome of rice-Magnaporthe oryzae interaction. J Proteome 78:58–71
Kou Y, Qiu J, Tao Z (2019) Every coin has two sides: reactive oxygen species during rice–
Magnaporthe oryzae interaction. Int J Mol Sci 20:1191
Kuchitsu K, Kikuyama M, Shibuya N (1993) N-acetylchitooligosaccharides, biotic elicitor for
phytoalexin production, induce transient membrane depolarization in suspension-cultured rice
cells. Protoplasma 174:79–81
Lee SE, Gupta R, Jayaramaiah RH, Lee SH, Wang Y, Park SR et al (2017) Global transcriptome
profiling of xanthomonas oryzae pv. Oryzae under in planta growth and in vitro culture
conditions. Plant Pathol J 33:458–466. https://doi.org/10.5423/PPJ.OA.04.2017.0076
Lee S-K, Song M-Y, Seo Y-S, Kim H-K, Ko S, Cao P-J et al (2009) Rice Pi5-mediated resistance to
Magnaporthe oryzae requires the presence of two coiled-coil–nucleotide-binding–leucine-rich
repeat genes. Genetics 181:1627–1638
Liu W, Liu J, Ning Y, Ding B, Wang X, Wang Z et al (2013) Recent progress in understanding
PAMP-and effector-triggered immunity against the rice blast fungus Magnaporthe oryzae. Mol
Plant 6:605–620
Liu W, Liu J, Triplett L, Leach JE, Wang G-L (2014) Novel insights into Rice innate immunity
against bacterial and fungal pathogens. Annu Rev Phytopathol 52:213–241. https://doi.org/10.
1146/annurev-phyto-102313-045926
Luna E, Pastor V, Robert J, Flors V, Mauch-Mani B, Ton J (2011) Callose deposition: a multifaceted plant defense response. Mol Plant-Microbe Interact 24:183–193
12 Unraveling the Molecular Mechanism of Magnaporthe oryzae Induced. . .
375
