-
1
-
-
32944479048
-
Host-microbe interactions: shaping the evolution of the plant immune response
-
Chisholm S.T., Coaker G., Day B., Staskawicz B.J. Host-microbe interactions: shaping the evolution of the plant immune response. Cell 2006, 124:803-814.
-
(2006)
Cell
, vol.124
, pp. 803-814
-
-
Chisholm, S.T.1
Coaker, G.2
Day, B.3
Staskawicz, B.J.4
-
2
-
-
77954763024
-
Plant immunity: towards an integrated view of plant-pathogen interactions
-
Dodds P.N., Rathjen J.P. Plant immunity: towards an integrated view of plant-pathogen interactions. Nat Rev Genet 2010, 11:539-548.
-
(2010)
Nat Rev Genet
, vol.11
, pp. 539-548
-
-
Dodds, P.N.1
Rathjen, J.P.2
-
3
-
-
84864520212
-
Plant pattern recognition receptor complexes at the plasma membrane
-
Monaghan J., Zipfel C. Plant pattern recognition receptor complexes at the plasma membrane. Curr Opin Plant Biol 2012, 15:349-357.
-
(2012)
Curr Opin Plant Biol
, vol.15
, pp. 349-357
-
-
Monaghan, J.1
Zipfel, C.2
-
4
-
-
2442591728
-
Comparative analysis of the receptor-like kinase family in Arabidopsis and rice
-
Shiu S.H., Karlowski W.M., Pan R., Tzeng Y.H., Mayer K.F., Li W.H. Comparative analysis of the receptor-like kinase family in Arabidopsis and rice. Plant Cell 2004, 16:1220-1234.
-
(2004)
Plant Cell
, vol.16
, pp. 1220-1234
-
-
Shiu, S.H.1
Karlowski, W.M.2
Pan, R.3
Tzeng, Y.H.4
Mayer, K.F.5
Li, W.H.6
-
6
-
-
84878314972
-
Recent progress in understanding PAMP- and effector-triggered immunity against the rice blast fungus Magnaporthe oryzae
-
Liu W., Liu J., Ning Y., Ding B., Wang X., Wang Z., Wang G.L. Recent progress in understanding PAMP- and effector-triggered immunity against the rice blast fungus Magnaporthe oryzae. Mol Plant 2013, 6:605-620.
-
(2013)
Mol Plant
, vol.6
, pp. 605-620
-
-
Liu, W.1
Liu, J.2
Ning, Y.3
Ding, B.4
Wang, X.5
Wang, Z.6
Wang, G.L.7
-
7
-
-
33746582708
-
Plant cells recognize chitin fragments for defense signaling through a plasma membrane receptor
-
Kaku H., Nishizawa Y., Ishii-Minami N., Akimoto-Tomiyama C., Dohmae N., Takio K., Minami E., Shibuya N. Plant cells recognize chitin fragments for defense signaling through a plasma membrane receptor. Proc Natl Acad Sci U S A 2006, 103:11086-11091.
-
(2006)
Proc Natl Acad Sci U S A
, vol.103
, pp. 11086-11091
-
-
Kaku, H.1
Nishizawa, Y.2
Ishii-Minami, N.3
Akimoto-Tomiyama, C.4
Dohmae, N.5
Takio, K.6
Minami, E.7
Shibuya, N.8
-
8
-
-
84857697255
-
Effector-mediated suppression of chitin-triggered immunity by Magnaporthe oryzae is necessary for rice blast disease
-
Mentlak T.A., Kombrink A., Shinya T., Ryder L.S., Otomo I., Saitoh H., Terauchi R., Nishizawa Y., Shibuya N., Thomma B.P., et al. Effector-mediated suppression of chitin-triggered immunity by Magnaporthe oryzae is necessary for rice blast disease. Plant Cell 2012, 24:322-335.
-
(2012)
Plant Cell
, vol.24
, pp. 322-335
-
-
Mentlak, T.A.1
Kombrink, A.2
Shinya, T.3
Ryder, L.S.4
Otomo, I.5
Saitoh, H.6
Terauchi, R.7
Nishizawa, Y.8
Shibuya, N.9
Thomma, B.P.10
-
9
-
-
37649023555
-
CERK1, a LysM receptor kinase, is essential for chitin elicitor signaling in Arabidopsis
-
Miya A., Albert P., Shinya T., Desaki Y., Ichimura K., Shirasu K., Narusaka Y., Kawakami N., Kaku H., Shibuya N. CERK1, a LysM receptor kinase, is essential for chitin elicitor signaling in Arabidopsis. Proc Natl Acad Sci U S A 2007, 104:19613-19618.
-
(2007)
Proc Natl Acad Sci U S A
, vol.104
, pp. 19613-19618
-
-
Miya, A.1
Albert, P.2
Shinya, T.3
Desaki, Y.4
Ichimura, K.5
Shirasu, K.6
Narusaka, Y.7
Kawakami, N.8
Kaku, H.9
Shibuya, N.10
-
10
-
-
78649609189
-
Two LysM receptor molecules, CEBiP and OsCERK1, cooperatively regulate chitin elicitor signaling in rice
-
Shimizu T., Nakano T., Takamizawa D., Desaki Y., Ishii-Minami N., Nishizawa Y., Minami E., Okada K., Yamane H., Kaku H., et al. Two LysM receptor molecules, CEBiP and OsCERK1, cooperatively regulate chitin elicitor signaling in rice. Plant J 2010, 64:204-214.
-
(2010)
Plant J
, vol.64
, pp. 204-214
-
-
Shimizu, T.1
Nakano, T.2
Takamizawa, D.3
Desaki, Y.4
Ishii-Minami, N.5
Nishizawa, Y.6
Minami, E.7
Okada, K.8
Yamane, H.9
Kaku, H.10
-
11
-
-
83755195019
-
Arabidopsis lysin-motif proteins LYM1 LYM3 CERK1 mediate bacterial peptidoglycan sensing and immunity to bacterial infection
-
Willmann R., Lajunen H.M., Erbs G., Newman M.A., Kolb D., Tsuda K., Katagiri F., Fliegmann J., Bono J.J., Cullimore J.V., et al. Arabidopsis lysin-motif proteins LYM1 LYM3 CERK1 mediate bacterial peptidoglycan sensing and immunity to bacterial infection. Proc Natl Acad Sci U S A 2011, 108:19824-19829.
-
(2011)
Proc Natl Acad Sci U S A
, vol.108
, pp. 19824-19829
-
-
Willmann, R.1
Lajunen, H.M.2
Erbs, G.3
Newman, M.A.4
Kolb, D.5
Tsuda, K.6
Katagiri, F.7
Fliegmann, J.8
Bono, J.J.9
Cullimore, J.V.10
-
12
-
-
84866989809
-
Lysin motif-containing proteins LYP4 and LYP6 play dual roles in peptidoglycan and chitin perception in rice innate immunity
-
Liu B., Li J.F., Ao Y., Qu J., Li Z., Su J., Zhang Y., Liu J., Feng D., Qi K., et al. Lysin motif-containing proteins LYP4 and LYP6 play dual roles in peptidoglycan and chitin perception in rice innate immunity. Plant Cell 2012, 24:3406-3419.
-
(2012)
Plant Cell
, vol.24
, pp. 3406-3419
-
-
Liu, B.1
Li, J.F.2
Ao, Y.3
Qu, J.4
Li, Z.5
Su, J.6
Zhang, Y.7
Liu, J.8
Feng, D.9
Qi, K.10
-
13
-
-
84861665941
-
Chitin-induced dimerization activates a plant immune receptor
-
Liu T., Liu Z., Song C., Hu Y., Han Z., She J., Fan F., Wang J., Jin C., Chang J., et al. Chitin-induced dimerization activates a plant immune receptor. Science 2012, 336:1160-1164.
-
(2012)
Science
, vol.336
, pp. 1160-1164
-
-
Liu, T.1
Liu, Z.2
Song, C.3
Hu, Y.4
Han, Z.5
She, J.6
Fan, F.7
Wang, J.8
Jin, C.9
Chang, J.10
-
14
-
-
84878437050
-
LYM2-dependent chitin perception limits molecular flux via plasmodesmata
-
Faulkner C., Petutschnig E., Benitez-Alfonso Y., Beck M., Robatzek S., Lipka V., Maule A.J. LYM2-dependent chitin perception limits molecular flux via plasmodesmata. Proc Natl Acad Sci U S A 2013, 110:9166-9170.
-
(2013)
Proc Natl Acad Sci U S A
, vol.110
, pp. 9166-9170
-
-
Faulkner, C.1
Petutschnig, E.2
Benitez-Alfonso, Y.3
Beck, M.4
Robatzek, S.5
Lipka, V.6
Maule, A.J.7
-
15
-
-
0035895284
-
Essential role of the small GTPase Rac in disease resistance of rice
-
Ono E., Wong H.L., Kawasaki T., Hasegawa M., Kodama O., Shimamoto K. Essential role of the small GTPase Rac in disease resistance of rice. Proc Natl Acad Sci U S A 2001, 98:759-764.
-
(2001)
Proc Natl Acad Sci U S A
, vol.98
, pp. 759-764
-
-
Ono, E.1
Wong, H.L.2
Kawasaki, T.3
Hasegawa, M.4
Kodama, O.5
Shimamoto, K.6
-
16
-
-
0036791063
-
The heterotrimeric G protein alpha subunit acts upstream of the small GTPase Rac in disease resistance of rice
-
Suharsono U., Fujisawa Y., Kawasaki T., Iwasaki Y., Satoh H., Shimamoto K. The heterotrimeric G protein alpha subunit acts upstream of the small GTPase Rac in disease resistance of rice. Proc Natl Acad Sci U S A 2002, 99:13307-13312.
-
(2002)
Proc Natl Acad Sci U S A
, vol.99
, pp. 13307-13312
-
-
Suharsono, U.1
Fujisawa, Y.2
Kawasaki, T.3
Iwasaki, Y.4
Satoh, H.5
Shimamoto, K.6
-
17
-
-
84876391971
-
An OsCEBiP/OsCERK1-OsRacGEF1-OsRac1 module is an essential component of chitin-induced rice immunity
-
Akamatsu A., Wong H., Fujiwara M., Okuda J., Nishide K., Uno K., Imai K., Umemura K., Kawasaki T., Kawano Y., et al. An OsCEBiP/OsCERK1-OsRacGEF1-OsRac1 module is an essential component of chitin-induced rice immunity. Cell Host Microbe 2013, 13:465-476.
-
(2013)
Cell Host Microbe
, vol.13
, pp. 465-476
-
-
Akamatsu, A.1
Wong, H.2
Fujiwara, M.3
Okuda, J.4
Nishide, K.5
Uno, K.6
Imai, K.7
Umemura, K.8
Kawasaki, T.9
Kawano, Y.10
-
18
-
-
77749310195
-
The Hop/Sti1-Hsp90 chaperone complex facilitates the maturation and transport of a PAMP receptor in rice innate immunity
-
Chen L., Hamada S., Fujiwara M., Zhu T., Thao N.P., Wong H.L., Krishna P., Ueda T., Kaku H., Shibuya N., et al. The Hop/Sti1-Hsp90 chaperone complex facilitates the maturation and transport of a PAMP receptor in rice innate immunity. Cell Host Microbe 2010, 7:185-196.
-
(2010)
Cell Host Microbe
, vol.7
, pp. 185-196
-
-
Chen, L.1
Hamada, S.2
Fujiwara, M.3
Zhu, T.4
Thao, N.P.5
Wong, H.L.6
Krishna, P.7
Ueda, T.8
Kaku, H.9
Shibuya, N.10
-
19
-
-
26444515408
-
A sphingolipid elicitor-inducible mitogen-activated protein kinase is regulated by the small GTPase OsRac1 and heterotrimeric G-protein in rice
-
Lieberherr D., Thao N.P., Nakashima A., Umemura K., Kawasaki T., Shimamoto K. A sphingolipid elicitor-inducible mitogen-activated protein kinase is regulated by the small GTPase OsRac1 and heterotrimeric G-protein in rice. Plant Physiol 2005, 138:1644-1652.
-
(2005)
Plant Physiol
, vol.138
, pp. 1644-1652
-
-
Lieberherr, D.1
Thao, N.P.2
Nakashima, A.3
Umemura, K.4
Kawasaki, T.5
Shimamoto, K.6
-
20
-
-
30444436434
-
Cinnamoyl-CoA reductase, a key enzyme in lignin biosynthesis, is an effector of small GTPase Rac in defense signaling in rice
-
Kawasaki T., Koita H., Nakatsubo T., Hasegawa K., Wakabayashi K., Takahashi H., Umemura K., Umezawa T., Shimamoto K. Cinnamoyl-CoA reductase, a key enzyme in lignin biosynthesis, is an effector of small GTPase Rac in defense signaling in rice. Proc Natl Acad Sci U S A 2006, 103:230-235.
-
(2006)
Proc Natl Acad Sci U S A
, vol.103
, pp. 230-235
-
-
Kawasaki, T.1
Koita, H.2
Nakatsubo, T.3
Hasegawa, K.4
Wakabayashi, K.5
Takahashi, H.6
Umemura, K.7
Umezawa, T.8
Shimamoto, K.9
-
21
-
-
39149113748
-
RAR1 and HSP90 form a complex with Rac/Rop GTPase and function in innate-immune responses in rice
-
Thao N.P., Chen L., Nakashima A., Hara S., Umemura K., Takahashi A., Shirasu K., Kawasaki T., Shimamoto K. RAR1 and HSP90 form a complex with Rac/Rop GTPase and function in innate-immune responses in rice. Plant Cell 2007, 19:4035-4045.
-
(2007)
Plant Cell
, vol.19
, pp. 4035-4045
-
-
Thao, N.P.1
Chen, L.2
Nakashima, A.3
Hara, S.4
Umemura, K.5
Takahashi, A.6
Shirasu, K.7
Kawasaki, T.8
Shimamoto, K.9
-
22
-
-
55849137106
-
RACK1 functions in rice innate immunity by interacting with the Rac1 immune complex
-
Nakashima A., Chen L., Thao N.P., Fujiwara M., Wong H.L., Kuwano M., Umemura K., Shirasu K., Kawasaki T., Shimamoto K. RACK1 functions in rice innate immunity by interacting with the Rac1 immune complex. Plant Cell 2008, 20:2265-2279.
-
(2008)
Plant Cell
, vol.20
, pp. 2265-2279
-
-
Nakashima, A.1
Chen, L.2
Thao, N.P.3
Fujiwara, M.4
Wong, H.L.5
Kuwano, M.6
Umemura, K.7
Shirasu, K.8
Kawasaki, T.9
Shimamoto, K.10
-
23
-
-
84859770338
-
The bHLH Rac immunity1 (RAI1) is activated by OsRac1 via OsMAPK3 and OsMAPK6 in rice immunity
-
Kim S.H., Oikawa T., Kyozuka J., Wong H.L., Umemura K., Kishi-Kaboshi M., Takahashi A., Kawano Y., Kawasaki T., Shimamoto K. The bHLH Rac immunity1 (RAI1) is activated by OsRac1 via OsMAPK3 and OsMAPK6 in rice immunity. Plant Cell Physiol 2012, 53:740-754.
-
(2012)
Plant Cell Physiol
, vol.53
, pp. 740-754
-
-
Kim, S.H.1
Oikawa, T.2
Kyozuka, J.3
Wong, H.L.4
Umemura, K.5
Kishi-Kaboshi, M.6
Takahashi, A.7
Kawano, Y.8
Kawasaki, T.9
Shimamoto, K.10
-
24
-
-
84856599955
-
The function of Rac small GTPase and associated proteins in rice innate immunity
-
Kawano Y., Chen L., Shimamoto K. The function of Rac small GTPase and associated proteins in rice innate immunity. Rice 2010, 3:112-121.
-
(2010)
Rice
, vol.3
, pp. 112-121
-
-
Kawano, Y.1
Chen, L.2
Shimamoto, K.3
-
25
-
-
77955697556
-
A rice fungal MAMP-responsive MAPK cascade regulates metabolic flow to antimicrobial metabolite synthesis
-
Kishi-Kaboshi M., Okada K., Kurimoto L., Murakami S., Umezawa T., Shibuya N., Yamane H., Miyao A., Takatsuji H., Takahashi A., et al. A rice fungal MAMP-responsive MAPK cascade regulates metabolic flow to antimicrobial metabolite synthesis. Plant J 2010, 63:599-612.
-
(2010)
Plant J
, vol.63
, pp. 599-612
-
-
Kishi-Kaboshi, M.1
Okada, K.2
Kurimoto, L.3
Murakami, S.4
Umezawa, T.5
Shibuya, N.6
Yamane, H.7
Miyao, A.8
Takatsuji, H.9
Takahashi, A.10
-
26
-
-
84875203565
-
A receptor-like cytoplasmic kinase targeted by a plant pathogen effector is directly phosphorylated by the chitin receptor and mediates rice immunity
-
Yamaguchi K., Yamada K., Ishikawa K., Yoshimura S., Hayashi N., Uchihashi K., Ishihama N., Kishi-Kaboshi M., Takahashi A., Tsuge S., et al. A receptor-like cytoplasmic kinase targeted by a plant pathogen effector is directly phosphorylated by the chitin receptor and mediates rice immunity. Cell Host Microbe 2013, 13:347-357.
-
(2013)
Cell Host Microbe
, vol.13
, pp. 347-357
-
-
Yamaguchi, K.1
Yamada, K.2
Ishikawa, K.3
Yoshimura, S.4
Hayashi, N.5
Uchihashi, K.6
Ishihama, N.7
Kishi-Kaboshi, M.8
Takahashi, A.9
Tsuge, S.10
-
27
-
-
33645776778
-
Plant and animal pathogen recognition receptors signal through non-RD kinases
-
Dardick C., Ronald P. Plant and animal pathogen recognition receptors signal through non-RD kinases. PLoS Pathog 2006, 2:e2.
-
(2006)
PLoS Pathog
, vol.2
-
-
Dardick, C.1
Ronald, P.2
-
28
-
-
84869401064
-
Tyrosine sulfation in a Gram-negative bacterium
-
Han S.W., Lee S.W., Bahar O., Schwessinger B., Robinson M.R., Shaw J.B., Madsen J.A., Brodbelt J.S., Ronald P.C. Tyrosine sulfation in a Gram-negative bacterium. Nat Commun 2012, 3:1153.
-
(2012)
Nat Commun
, vol.3
, pp. 1153
-
-
Han, S.W.1
Lee, S.W.2
Bahar, O.3
Schwessinger, B.4
Robinson, M.R.5
Shaw, J.B.6
Madsen, J.A.7
Brodbelt, J.S.8
Ronald, P.C.9
-
29
-
-
70449413848
-
A type I-secreted, sulfated peptide triggers XA21-mediated innate immunity
-
Lee S.W., Han S.W., Sririyanum M., Park C.J., Seo Y.S., Ronald P.C. A type I-secreted, sulfated peptide triggers XA21-mediated innate immunity. Science 2009, 326:850-853.
-
(2009)
Science
, vol.326
, pp. 850-853
-
-
Lee, S.W.1
Han, S.W.2
Sririyanum, M.3
Park, C.J.4
Seo, Y.S.5
Ronald, P.C.6
-
30
-
-
84863299558
-
Cleavage and nuclear localization of the rice XA21 immune receptor
-
Park C.J., Ronald P.C. Cleavage and nuclear localization of the rice XA21 immune receptor. Nat Commun 2012, 3:920.
-
(2012)
Nat Commun
, vol.3
, pp. 920
-
-
Park, C.J.1
Ronald, P.C.2
-
31
-
-
63549104452
-
OsWRKY62 is a negative regulator of basal and Xa21-mediated defense against Xanthomonas oryzae pv. oryzae in rice
-
Peng Y., Bartley L.E., Chen X., Dardick C., Chern M., Ruan R., Canlas P.E., Ronald P.C. OsWRKY62 is a negative regulator of basal and Xa21-mediated defense against Xanthomonas oryzae pv. oryzae in rice. Mol Plant 2008, 1:446-458.
-
(2008)
Mol Plant
, vol.1
, pp. 446-458
-
-
Peng, Y.1
Bartley, L.E.2
Chen, X.3
Dardick, C.4
Chern, M.5
Ruan, R.6
Canlas, P.E.7
Ronald, P.C.8
-
32
-
-
54749114874
-
Rice XB15, a protein phosphatase 2C, negatively regulates cell death and XA21-mediated innate immunity
-
Park C.J., Peng Y., Chen X., Dardick C., Ruan D., Bart R., Canlas P.E., Ronald P.C. Rice XB15, a protein phosphatase 2C, negatively regulates cell death and XA21-mediated innate immunity. PLoS Biol 2008, 6:e231.
-
(2008)
PLoS Biol
, vol.6
-
-
Park, C.J.1
Peng, Y.2
Chen, X.3
Dardick, C.4
Ruan, D.5
Bart, R.6
Canlas, P.E.7
Ronald, P.C.8
-
33
-
-
77951226283
-
A conserved threonine residue in the juxtamembrane domain of the XA21 pattern recognition receptor is critical for kinase autophosphorylation and XA21-mediated immunity
-
Chen X., Chern M., Canlas P.E., Jiang C., Ruan D., Cao P., Ronald P.C. A conserved threonine residue in the juxtamembrane domain of the XA21 pattern recognition receptor is critical for kinase autophosphorylation and XA21-mediated immunity. J Biol Chem 2010, 285:10454-10463.
-
(2010)
J Biol Chem
, vol.285
, pp. 10454-10463
-
-
Chen, X.1
Chern, M.2
Canlas, P.E.3
Jiang, C.4
Ruan, D.5
Cao, P.6
Ronald, P.C.7
-
34
-
-
33644872221
-
The autophosphorylated Ser686, Thr688, and Ser689 residues in the intracellular juxtamembrane domain of XA21 are implicated in stability control of rice receptor-like kinase
-
Xu W.H., Wang Y.S., Liu G.Z., Chen X., Tinjuangjun P., Pi L.Y., Song W.Y. The autophosphorylated Ser686, Thr688, and Ser689 residues in the intracellular juxtamembrane domain of XA21 are implicated in stability control of rice receptor-like kinase. Plant J 2006, 45:740-751.
-
(2006)
Plant J
, vol.45
, pp. 740-751
-
-
Xu, W.H.1
Wang, Y.S.2
Liu, G.Z.3
Chen, X.4
Tinjuangjun, P.5
Pi, L.Y.6
Song, W.Y.7
-
35
-
-
77952396347
-
An ATPase promotes autophosphorylation of the pattern recognition receptor XA21 and inhibits XA21-mediated immunity
-
Chen X., Chern M., Canlas P.E., Ruan D., Jiang C., Ronald P.C. An ATPase promotes autophosphorylation of the pattern recognition receptor XA21 and inhibits XA21-mediated immunity. Proc Natl Acad Sci U S A 2010, 107:8029-8034.
-
(2010)
Proc Natl Acad Sci U S A
, vol.107
, pp. 8029-8034
-
-
Chen, X.1
Chern, M.2
Canlas, P.E.3
Ruan, D.4
Jiang, C.5
Ronald, P.C.6
-
36
-
-
33947504480
-
Rice XA21 binding protein 3 is a ubiquitin ligase required for full Xa21-mediated disease resistance
-
Wang Y.S., Pi L.Y., Chen X., Chakrabarty P.K., Jiang J., De Leon A.L., Liu G.Z., Li L., Benny U., Oard J., et al. Rice XA21 binding protein 3 is a ubiquitin ligase required for full Xa21-mediated disease resistance. Plant Cell 2006, 18:3635-3646.
-
(2006)
Plant Cell
, vol.18
, pp. 3635-3646
-
-
Wang, Y.S.1
Pi, L.Y.2
Chen, X.3
Chakrabarty, P.K.4
Jiang, J.5
De Leon, A.L.6
Liu, G.Z.7
Li, L.8
Benny, U.9
Oard, J.10
-
37
-
-
77949522695
-
Overexpression of the endoplasmic reticulum chaperone BiP3 regulates XA21-mediated innate immunity in rice
-
Park C.J., Bart R., Chern M., Canlas P.E., Bai W., Ronald P.C. Overexpression of the endoplasmic reticulum chaperone BiP3 regulates XA21-mediated innate immunity in rice. PLoS ONE 2010, 5:e9262.
-
(2010)
PLoS ONE
, vol.5
-
-
Park, C.J.1
Bart, R.2
Chern, M.3
Canlas, P.E.4
Bai, W.5
Ronald, P.C.6
-
38
-
-
84874497452
-
The XA21 binding protein XB25 is required for maintaining XA21-mediated disease resistance
-
Jiang Y., Chen X., Ding X., Wang Y., Chen Q., Song W.Y. The XA21 binding protein XB25 is required for maintaining XA21-mediated disease resistance. Plant J 2012, 73:814-823.
-
(2012)
Plant J
, vol.73
, pp. 814-823
-
-
Jiang, Y.1
Chen, X.2
Ding, X.3
Wang, Y.4
Chen, Q.5
Song, W.Y.6
-
39
-
-
67651085221
-
Association genetics reveals three novel avirulence genes from the rice blast fungal pathogen Magnaporthe oryzae
-
Yoshida K., Saitoh H., Fujisawa S., Kanzaki H., Matsumura H., Tosa Y., Chuma I., Takano Y., Win J., Kamoun S., et al. Association genetics reveals three novel avirulence genes from the rice blast fungal pathogen Magnaporthe oryzae. Plant Cell 2009, 21:1573-1591.
-
(2009)
Plant Cell
, vol.21
, pp. 1573-1591
-
-
Yoshida, K.1
Saitoh, H.2
Fujisawa, S.3
Kanzaki, H.4
Matsumura, H.5
Tosa, Y.6
Chuma, I.7
Takano, Y.8
Win, J.9
Kamoun, S.10
-
40
-
-
79955402863
-
A multifaceted genomics approach allows the isolation of the rice Pia-blast resistance gene consisting of two adjacent NBS-LRR protein genes
-
Okuyama Y., Kanzaki H., Abe A., Yoshida K., Tamiru M., Saitoh H., Fujibe T., Matsumura H., Shenton M., Galam D.C., et al. A multifaceted genomics approach allows the isolation of the rice Pia-blast resistance gene consisting of two adjacent NBS-LRR protein genes. Plant J 2011, 66:467-479.
-
(2011)
Plant J
, vol.66
, pp. 467-479
-
-
Okuyama, Y.1
Kanzaki, H.2
Abe, A.3
Yoshida, K.4
Tamiru, M.5
Saitoh, H.6
Fujibe, T.7
Matsumura, H.8
Shenton, M.9
Galam, D.C.10
-
41
-
-
84871961578
-
Arms race co-evolution of Magnaporthe oryzae AVR-Pik and rice Pik genes driven by their physical interactions
-
Kanzaki H., Yoshida K., Saitoh H., Fujisaki K., Hirabuchi A., Alaux L., Fournier E., Tharreau D., Terauchi R. Arms race co-evolution of Magnaporthe oryzae AVR-Pik and rice Pik genes driven by their physical interactions. Plant J 2012, 72:894-907.
-
(2012)
Plant J
, vol.72
, pp. 894-907
-
-
Kanzaki, H.1
Yoshida, K.2
Saitoh, H.3
Fujisaki, K.4
Hirabuchi, A.5
Alaux, L.6
Fournier, E.7
Tharreau, D.8
Terauchi, R.9
-
42
-
-
84883055908
-
MutMap-Gap: whole-genome resequencing of mutant F2 progeny bulk combined with de novo assembly of gap regions identifies the rice blast resistance gene Pii
-
(in press)
-
Takagi H., Uemura A., Yaegashi H., Tamiru M., Abe A., Mitsuoka C., Utsushi H., Natsume S., Kanzaki H., Matsumura H., et al. MutMap-Gap: whole-genome resequencing of mutant F2 progeny bulk combined with de novo assembly of gap regions identifies the rice blast resistance gene Pii. New Phytol 2013, (in press). 10.1111/nph.12369.
-
(2013)
New Phytol
-
-
Takagi, H.1
Uemura, A.2
Yaegashi, H.3
Tamiru, M.4
Abe, A.5
Mitsuoka, C.6
Utsushi, H.7
Natsume, S.8
Kanzaki, H.9
Matsumura, H.10
-
43
-
-
0034254266
-
Direct interaction of resistance gene and avirulence gene products confers rice blast resistance
-
Jia Y., McAdams S.A., Bryan G.T., Hershey H.P., Valent B. Direct interaction of resistance gene and avirulence gene products confers rice blast resistance. EMBO J 2000, 19:4004-4014.
-
(2000)
EMBO J
, vol.19
, pp. 4004-4014
-
-
Jia, Y.1
McAdams, S.A.2
Bryan, G.T.3
Hershey, H.P.4
Valent, B.5
-
44
-
-
0034525256
-
A telomeric avirulence gene determines efficacy for the rice blast resistance gene Pi-ta
-
Orbach M.J., Farrall L., Sweigard J.A., Chumley F.G., Valent B. A telomeric avirulence gene determines efficacy for the rice blast resistance gene Pi-ta. Plant Cell 2000, 12:2019-2032.
-
(2000)
Plant Cell
, vol.12
, pp. 2019-2032
-
-
Orbach, M.J.1
Farrall, L.2
Sweigard, J.A.3
Chumley, F.G.4
Valent, B.5
-
45
-
-
80051967147
-
NLR functions in plant and animal immune systems: so far and yet so close
-
Maekawa T., Kufer T.A., Schulze-Lefert P. NLR functions in plant and animal immune systems: so far and yet so close. Nat Immunol 2011, 12:817-826.
-
(2011)
Nat Immunol
, vol.12
, pp. 817-826
-
-
Maekawa, T.1
Kufer, T.A.2
Schulze-Lefert, P.3
-
46
-
-
33745015480
-
Direct protein interaction underlies gene-for-gene specificity and coevolution of the flax resistance genes and flax rust avirulence genes
-
Dodds P.N., Lawrence G.J., Catanzariti A.M., Teh T., Wang C.I., Ayliffe M.A., Kobe B., Ellis J.G. Direct protein interaction underlies gene-for-gene specificity and coevolution of the flax resistance genes and flax rust avirulence genes. Proc Natl Acad Sci U S A 2006, 103:8888-8893.
-
(2006)
Proc Natl Acad Sci U S A
, vol.103
, pp. 8888-8893
-
-
Dodds, P.N.1
Lawrence, G.J.2
Catanzariti, A.M.3
Teh, T.4
Wang, C.I.5
Ayliffe, M.A.6
Kobe, B.7
Ellis, J.G.8
-
47
-
-
77953184858
-
Translocation of Magnaporthe oryzae effectors into rice cells and their subsequent cell-to-cell movement
-
Khang C.H., Berruyer R., Giraldo M.C., Kankanala P., Park S.Y., Czymmek K., Kang S., Valent B. Translocation of Magnaporthe oryzae effectors into rice cells and their subsequent cell-to-cell movement. Plant Cell 2010, 22:1388-1403.
-
(2010)
Plant Cell
, vol.22
, pp. 1388-1403
-
-
Khang, C.H.1
Berruyer, R.2
Giraldo, M.C.3
Kankanala, P.4
Park, S.Y.5
Czymmek, K.6
Kang, S.7
Valent, B.8
-
48
-
-
84878677238
-
Blast resistance of CC-NB-LRR protein Pb1 is mediated by WRKY45 through protein-protein interaction
-
Inoue H., Hayashi N., Matsushita A., Xinqiong L., Nakayama A., Sugano S., Jiang C.J., Takatsuji H. Blast resistance of CC-NB-LRR protein Pb1 is mediated by WRKY45 through protein-protein interaction. Proc Natl Acad Sci U S A 2013, 110:9577-9582.
-
(2013)
Proc Natl Acad Sci U S A
, vol.110
, pp. 9577-9582
-
-
Inoue, H.1
Hayashi, N.2
Matsushita, A.3
Xinqiong, L.4
Nakayama, A.5
Sugano, S.6
Jiang, C.J.7
Takatsuji, H.8
-
49
-
-
34547699898
-
Rice WRKY45 plays a crucial role in benzothiadiazole-inducible blast resistance
-
Shimono M., Sugano S., Nakayama A., Jiang C.J., Ono K., Toki S., Takatsuji H. Rice WRKY45 plays a crucial role in benzothiadiazole-inducible blast resistance. Plant Cell 2007, 19:2064-2076.
-
(2007)
Plant Cell
, vol.19
, pp. 2064-2076
-
-
Shimono, M.1
Sugano, S.2
Nakayama, A.3
Jiang, C.J.4
Ono, K.5
Toki, S.6
Takatsuji, H.7
-
50
-
-
84872485771
-
The nuclear ubiquitin proteasome degradation affects WRKY45 function in the rice defense program
-
Matsushita A., Inoue H., Goto S., Nakayama A., Sugano S., Hayashi N., Takatsuji H. The nuclear ubiquitin proteasome degradation affects WRKY45 function in the rice defense program. Plant J 2012, 73:302-313.
-
(2012)
Plant J
, vol.73
, pp. 302-313
-
-
Matsushita, A.1
Inoue, H.2
Goto, S.3
Nakayama, A.4
Sugano, S.5
Hayashi, N.6
Takatsuji, H.7
-
51
-
-
77955091927
-
NB-LRR proteins: pairs, pieces, perception, partners, and pathways
-
Eitas T.K., Dangl J.L. NB-LRR proteins: pairs, pieces, perception, partners, and pathways. Curr Opin Plant Biol 2010, 13:472-477.
-
(2010)
Curr Opin Plant Biol
, vol.13
, pp. 472-477
-
-
Eitas, T.K.1
Dangl, J.L.2
-
52
-
-
2942708099
-
NB:LRR genes are required to specify resistance to Peronospora parasitica isolate Cala2 in Arabidopsis
-
Sinapidou E., Williams K., Nott L., Bahkt S., Tor M., Crute I., Bittner-Eddy P., Beynon J: Two T.I.R. NB:LRR genes are required to specify resistance to Peronospora parasitica isolate Cala2 in Arabidopsis. Plant J 2004, 38:898-909.
-
(2004)
Plant J
, vol.38
, pp. 898-909
-
-
Sinapidou, E.1
Williams, K.2
Nott, L.3
Bahkt, S.4
Tor, M.5
Crute, I.6
Bittner-Eddy, P.7
Beynon, J.8
Two, T.I.R.9
-
53
-
-
61849179574
-
Two adjacent nucleotide-binding site-leucine-rich repeat class genes are required to confer Pikm-specific rice blast resistance
-
Ashikawa I., Hayashi N., Yamane H., Kanamori H., Wu J., Matsumoto T., Ono K., Yano M. Two adjacent nucleotide-binding site-leucine-rich repeat class genes are required to confer Pikm-specific rice blast resistance. Genetics 2008, 180:2267-2276.
-
(2008)
Genetics
, vol.180
, pp. 2267-2276
-
-
Ashikawa, I.1
Hayashi, N.2
Yamane, H.3
Kanamori, H.4
Wu, J.5
Matsumoto, T.6
Ono, K.7
Yano, M.8
-
54
-
-
67650302503
-
Rice Pi5-mediated resistance to Magnaporthe oryzae requires the presence of two coiled-coil-nucleotide-binding-leucine-rich repeat genes
-
Lee S.K., Song M.Y., Seo Y.S., Kim H.K., Ko S., Cao P.J., Suh J.P., Yi G., Roh J.H., Lee S., et al. Rice Pi5-mediated resistance to Magnaporthe oryzae requires the presence of two coiled-coil-nucleotide-binding-leucine-rich repeat genes. Genetics 2009, 181:1627-1638.
-
(2009)
Genetics
, vol.181
, pp. 1627-1638
-
-
Lee, S.K.1
Song, M.Y.2
Seo, Y.S.3
Kim, H.K.4
Ko, S.5
Cao, P.J.6
Suh, J.P.7
Yi, G.8
Roh, J.H.9
Lee, S.10
-
55
-
-
70349881464
-
RRS1 and RPS4 provide a dual resistance-gene system against fungal and bacterial pathogens
-
Narusaka M., Shirasu K., Noutoshi Y., Kubo Y., Shiraishi T., Iwabuchi M., Narusaka Y. RRS1 and RPS4 provide a dual resistance-gene system against fungal and bacterial pathogens. Plant J 2009, 60:218-226.
-
(2009)
Plant J
, vol.60
, pp. 218-226
-
-
Narusaka, M.1
Shirasu, K.2
Noutoshi, Y.3
Kubo, Y.4
Shiraishi, T.5
Iwabuchi, M.6
Narusaka, Y.7
-
56
-
-
84878228493
-
The rice resistance protein pair RGA4/RGA5 recognizes the Magnaporthe oryzae effectors AVR-Pia and AVR1-CO39 by direct binding
-
Cesari S., Thilliez G., Ribot C., Chalvon V., Michel C., Jauneau A., Rivas S., Alaux L., Kanzaki H., Okuyama Y., et al. The rice resistance protein pair RGA4/RGA5 recognizes the Magnaporthe oryzae effectors AVR-Pia and AVR1-CO39 by direct binding. Plant Cell 2013, 25:1463-1481.
-
(2013)
Plant Cell
, vol.25
, pp. 1463-1481
-
-
Cesari, S.1
Thilliez, G.2
Ribot, C.3
Chalvon, V.4
Michel, C.5
Jauneau, A.6
Rivas, S.7
Alaux, L.8
Kanzaki, H.9
Okuyama, Y.10
-
57
-
-
0036326051
-
Genetic and physical mapping of a rice blast resistance locus, Pi-CO39(t), that corresponds to the avirulence gene AVR1-CO39 of Magnaporthe grisea
-
Chauhan R.S., Farman M.L., Zhang H.B., Leong S.A. Genetic and physical mapping of a rice blast resistance locus, Pi-CO39(t), that corresponds to the avirulence gene AVR1-CO39 of Magnaporthe grisea. Mol Genet Genomics 2002, 267:603-612.
-
(2002)
Mol Genet Genomics
, vol.267
, pp. 603-612
-
-
Chauhan, R.S.1
Farman, M.L.2
Zhang, H.B.3
Leong, S.A.4
-
58
-
-
33750213264
-
The eight amino-acid differences within three leucine-rich repeats between Pi2 and Piz-t resistance proteins determine the resistance specificity to Magnaporthe grisea
-
Zhou B., Qu S., Liu G., Dolan M., Sakai H., Lu G., Bellizzi M., Wang G.L. The eight amino-acid differences within three leucine-rich repeats between Pi2 and Piz-t resistance proteins determine the resistance specificity to Magnaporthe grisea. Mol Plant Microbe Interact 2006, 19:1216-1228.
-
(2006)
Mol Plant Microbe Interact
, vol.19
, pp. 1216-1228
-
-
Zhou, B.1
Qu, S.2
Liu, G.3
Dolan, M.4
Sakai, H.5
Lu, G.6
Bellizzi, M.7
Wang, G.L.8
-
59
-
-
64749116348
-
The Magnaporthe oryzae avirulence gene AvrPiz-t encodes a predicted secreted protein that triggers the immunity in rice mediated by the blast resistance gene Piz-t
-
Li W., Wang B., Wu J., Lu G., Hu Y., Zhang X., Zhang Z., Zhao Q., Feng Q., Zhang H., et al. The Magnaporthe oryzae avirulence gene AvrPiz-t encodes a predicted secreted protein that triggers the immunity in rice mediated by the blast resistance gene Piz-t. Mol Plant Microbe Interact 2009, 22:411-420.
-
(2009)
Mol Plant Microbe Interact
, vol.22
, pp. 411-420
-
-
Li, W.1
Wang, B.2
Wu, J.3
Lu, G.4
Hu, Y.5
Zhang, X.6
Zhang, Z.7
Zhao, Q.8
Feng, Q.9
Zhang, H.10
-
60
-
-
84871915623
-
The Magnaporthe oryzae effector AvrPiz-t Targets the RING E3 ubiquitin ligase APIP6 to suppress pathogen-associated molecular pattern-triggered immunity in rice
-
Park C.H., Chen S., Shirsekar G., Zhou B., Khang C.H., Songkumarn P., Afzal A.J., Ning Y., Wang R., Bellizzi M., et al. The Magnaporthe oryzae effector AvrPiz-t Targets the RING E3 ubiquitin ligase APIP6 to suppress pathogen-associated molecular pattern-triggered immunity in rice. Plant Cell 2012, 24:4748-4762.
-
(2012)
Plant Cell
, vol.24
, pp. 4748-4762
-
-
Park, C.H.1
Chen, S.2
Shirsekar, G.3
Zhou, B.4
Khang, C.H.5
Songkumarn, P.6
Afzal, A.J.7
Ning, Y.8
Wang, R.9
Bellizzi, M.10
-
61
-
-
77952904259
-
Analysis of the Rac/Rop small GTPase family in rice: expression, subcellular localization and role in disease resistance
-
Chen L., Shiotani K., Togashi T., Miki D., Aoyama M., Wong H.L., Kawasaki T., Shimamoto K. Analysis of the Rac/Rop small GTPase family in rice: expression, subcellular localization and role in disease resistance. Plant Cell Physiol 2010, 51:585-595.
-
(2010)
Plant Cell Physiol
, vol.51
, pp. 585-595
-
-
Chen, L.1
Shiotani, K.2
Togashi, T.3
Miki, D.4
Aoyama, M.5
Wong, H.L.6
Kawasaki, T.7
Shimamoto, K.8
-
62
-
-
12444288639
-
Involvement of the small GTPase Rac in the defense responses of tobacco to pathogens
-
Moeder W., Yoshioka K., Klessig D.F. Involvement of the small GTPase Rac in the defense responses of tobacco to pathogens. Mol Plant Microbe Interact 2005, 18:116-124.
-
(2005)
Mol Plant Microbe Interact
, vol.18
, pp. 116-124
-
-
Moeder, W.1
Yoshioka, K.2
Klessig, D.F.3
-
63
-
-
77955288861
-
Activation of a Rac GTPase by the NLR family disease resistance protein Pit plays a critical role in rice innate immunity
-
Kawano Y., Akamatsu A., Hayashi K., Housen Y., Okuda J., Yao A., Nakashima A., Takahashi H., Yoshida H., Wong H.L., et al. Activation of a Rac GTPase by the NLR family disease resistance protein Pit plays a critical role in rice innate immunity. Cell Host Microbe 2010, 7:362-375.
-
(2010)
Cell Host Microbe
, vol.7
, pp. 362-375
-
-
Kawano, Y.1
Akamatsu, A.2
Hayashi, K.3
Housen, Y.4
Okuda, J.5
Yao, A.6
Nakashima, A.7
Takahashi, H.8
Yoshida, H.9
Wong, H.L.10
|