-
1
-
-
84864503694
-
Plant-bacterial pathogen interactions mediated by type III effectors
-
Feng F, Zhou J-M, (2012) Plant-bacterial pathogen interactions mediated by type III effectors. Curr Opin Plant Biol 15: 469–476. doi: 10.1016/j.pbi.2012.03.004 22465133
-
(2012)
Curr Opin Plant Biol
, vol.15
, pp. 469-476
-
-
Feng, F.1
Zhou, J.-M.2
-
2
-
-
84987779504
-
Recent Advances in Plant NLR Structure, Function, Localization, and Signaling
-
Qi D, Innes RW, (2013) Recent Advances in Plant NLR Structure, Function, Localization, and Signaling. Front Immunol 4: 348. doi: 10.3389/fimmu.2013.00348 24155748
-
(2013)
Front Immunol
, vol.4
, pp. 348
-
-
Qi, D.1
Innes, R.W.2
-
3
-
-
77954763024
-
Plant immunity: towards an integrated view of plant-pathogen interactions
-
Dodds PN, Rathjen JP, (2010) Plant immunity: towards an integrated view of plant-pathogen interactions. Nat Rev Genet 11: 539–548. doi: 10.1038/nrg2812 20585331
-
(2010)
Nat Rev Genet
, vol.11
, pp. 539-548
-
-
Dodds, P.N.1
Rathjen, J.P.2
-
4
-
-
84881413993
-
Pivoting the plant immune system from dissection to deployment
-
Dangl JL, Horvath DM, Staskawicz BJ, (2013) Pivoting the plant immune system from dissection to deployment. Science 341: 746–751. doi: 10.1126/science.1236011 23950531
-
(2013)
Science
, vol.341
, pp. 746-751
-
-
Dangl, J.L.1
Horvath, D.M.2
Staskawicz, B.J.3
-
5
-
-
84856170491
-
How do plants achieve immunity? Defence without specialized immune cells
-
Spoel SH, Dong X, (2012) How do plants achieve immunity? Defence without specialized immune cells. Nat Rev Immunol 12: 89–100. doi: 10.1038/nri3141 22273771
-
(2012)
Nat Rev Immunol
, vol.12
, pp. 89-100
-
-
Spoel, S.H.1
Dong, X.2
-
6
-
-
0037423306
-
Arabidopsis RIN4 Is a Target of the Type III Virulence Effector AvrRpt2 and Modulates RPS2-Mediated Resistance
-
Mackey D, Belkhadir Y, Alonso JM, Ecker JR, Dangl JL, (2003) Arabidopsis RIN4 Is a Target of the Type III Virulence Effector AvrRpt2 and Modulates RPS2-Mediated Resistance. Cell 112: 379–389. 12581527
-
(2003)
Cell
, vol.112
, pp. 379-389
-
-
Mackey, D.1
Belkhadir, Y.2
Alonso, J.M.3
Ecker, J.R.4
Dangl, J.L.5
-
7
-
-
0037423390
-
Initiation of RPS2-Specified Disease Resistance in Arabidopsis Is Coupled to the AvrRpt2-Directed Elimination of RIN4
-
Axtell MJ, Staskawicz BJ, (2003) Initiation of RPS2-Specified Disease Resistance in Arabidopsis Is Coupled to the AvrRpt2-Directed Elimination of RIN4. Cell 112: 369–377. 12581526
-
(2003)
Cell
, vol.112
, pp. 369-377
-
-
Axtell, M.J.1
Staskawicz, B.J.2
-
8
-
-
0037155687
-
RIN4 Interacts with Pseudomonas syringae Type III Effector Molecules and Is Required for RPM1-Mediated Resistance in Arabidopsis
-
Mackey D, Holt BF, Wiig A, Dangl JL, (2002) RIN4 Interacts with Pseudomonas syringae Type III Effector Molecules and Is Required for RPM1-Mediated Resistance in Arabidopsis. Cell 108: 743–754. 11955429
-
(2002)
Cell
, vol.108
, pp. 743-754
-
-
Mackey, D.1
Holt, B.F.2
Wiig, A.3
Dangl, J.L.4
-
9
-
-
33751100626
-
The plant immune system
-
Jones JDG, Dangl JL, (2006) The plant immune system. Nature 444: 323–329. 17108957
-
(2006)
Nature
, vol.444
, pp. 323-329
-
-
Jones, J.D.G.1
Dangl, J.L.2
-
10
-
-
57749111993
-
From Guard to Decoy: a new model for perception of plant pathogen effectors
-
Van der Hoorn RAL, Kamoun S, (2008) From Guard to Decoy: a new model for perception of plant pathogen effectors. Plant Cell 20: 2009–2017. doi: 10.1105/tpc.108.060194 18723576
-
(2008)
Plant Cell
, vol.20
, pp. 2009-2017
-
-
Van der Hoorn, R.A.L.1
Kamoun, S.2
-
11
-
-
0034254266
-
Direct interaction of resistance gene and avirulence gene products confers rice blast resistance
-
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. 10921881
-
(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
-
12
-
-
77956823972
-
Activation of an Arabidopsis resistance protein is specified by the in planta association of its leucine-rich repeat domain with the cognate oomycete effector
-
Krasileva K V, Dahlbeck D, Staskawicz BJ, (2010) Activation of an Arabidopsis resistance protein is specified by the in planta association of its leucine-rich repeat domain with the cognate oomycete effector. Plant Cell 22: 2444–2458. doi: 10.1105/tpc.110.075358 20601497
-
(2010)
Plant Cell
, vol.22
, pp. 2444-2458
-
-
Krasileva, K.V.1
Dahlbeck, D.2
Staskawicz, B.J.3
-
13
-
-
33745015480
-
Direct protein interaction underlies gene-for-gene specificity and coevolution of the flax resistance genes and flax rust avirulence genes
-
Dodds PN, Lawrence GJ, Catanzariti A-M, Teh T, Wang C-IA, et al. (2006) 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 103: 8888–8893. 16731621
-
(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.A.5
-
14
-
-
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, et al. (2013) The rice resistance protein pair RGA4/RGA5 recognizes the Magnaporthe oryzae effectors AVR-Pia and AVR1-CO39 by direct binding. Plant Cell 25: 1463–1481. doi: 10.1105/tpc.112.107201 23548743
-
(2013)
Plant Cell
, vol.25
, pp. 1463-1481
-
-
Cesari, S.1
Thilliez, G.2
Ribot, C.3
Chalvon, V.4
Michel, C.5
-
15
-
-
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, et al. (2012) Arms race co-evolution of Magnaporthe oryzae AVR-Pik and rice Pik genes driven by their physical interactions. Plant J 72: 894–907. doi: 10.1111/j.1365-313X.2012.05110.x 22805093
-
(2012)
Plant J
, vol.72
, pp. 894-907
-
-
Kanzaki, H.1
Yoshida, K.2
Saitoh, H.3
Fujisaki, K.4
Hirabuchi, A.5
-
16
-
-
84864511877
-
How to build a pathogen detector: structural basis of NB-LRR function
-
Takken FLW, Goverse A, (2012) How to build a pathogen detector: structural basis of NB-LRR function. Curr Opin Plant Biol 15: 375–384. doi: 10.1016/j.pbi.2012.05.001 22658703
-
(2012)
Curr Opin Plant Biol
, vol.15
, pp. 375-384
-
-
Takken, F.L.W.1
Goverse, A.2
-
17
-
-
79952643473
-
Structural and functional analysis of a plant resistance protein TIR domain reveals interfaces for self-association, signaling, and autoregulation
-
Bernoux M, Ve T, Williams S, Warren C, Hatters D, et al. (2011) Structural and functional analysis of a plant resistance protein TIR domain reveals interfaces for self-association, signaling, and autoregulation. Cell Host Microbe 9: 200–211. doi: 10.1016/j.chom.2011.02.009 21402359
-
(2011)
Cell Host Microbe
, vol.9
, pp. 200-211
-
-
Bernoux, M.1
Ve, T.2
Williams, S.3
Warren, C.4
Hatters, D.5
-
18
-
-
79952642803
-
Coiled-coil domain-dependent homodimerization of intracellular barley immune receptors defines a minimal functional module for triggering cell death
-
Maekawa T, Cheng W, Spiridon LN, Töller A, Lukasik E, et al. (2011) Coiled-coil domain-dependent homodimerization of intracellular barley immune receptors defines a minimal functional module for triggering cell death. Cell Host Microbe 9: 187–199. doi: 10.1016/j.chom.2011.02.008 21402358
-
(2011)
Cell Host Microbe
, vol.9
, pp. 187-199
-
-
Maekawa, T.1
Cheng, W.2
Spiridon, L.N.3
Töller, A.4
Lukasik, E.5
-
19
-
-
68149175128
-
STANDing strong, resistance proteins instigators of plant defence
-
Lukasik E, Takken FLW, (2009) STANDing strong, resistance proteins instigators of plant defence. Curr Opin Plant Biol 12: 427–436. doi: 10.1016/j.pbi.2009.03.001 19394891
-
(2009)
Curr Opin Plant Biol
, vol.12
, pp. 427-436
-
-
Lukasik, E.1
Takken, F.L.W.2
-
20
-
-
59649103157
-
Wheel of Life, Wheel of Death: A Mechanistic Insight into Signaling by STAND Proteins
-
Danot O, Marquenet E, Vidal-Ingigliardi D, Richet E, (2009) Wheel of Life, Wheel of Death: A Mechanistic Insight into Signaling by STAND Proteins. Structure 17: 172–182. doi: 10.1016/j.str.2009.01.001 19217388
-
(2009)
Structure
, vol.17
, pp. 172-182
-
-
Danot, O.1
Marquenet, E.2
Vidal-Ingigliardi, D.3
Richet, E.4
-
21
-
-
84880280093
-
Crystal structure of NLRC4 reveals its autoinhibition mechanism
-
Hu Z, Yan C, Liu P, Huang Z, Ma R, et al. (2013) Crystal structure of NLRC4 reveals its autoinhibition mechanism. Science 341: 172–175. doi: 10.1126/science.1236381 23765277
-
(2013)
Science
, vol.341
, pp. 172-175
-
-
Hu, Z.1
Yan, C.2
Liu, P.3
Huang, Z.4
Ma, R.5
-
22
-
-
84879724105
-
Structural determinants at the interface of the ARC2 and leucine-rich repeat domains control the activation of the plant immune receptors Rx1 and Gpa2
-
Slootweg EJ, Spiridon LN, Roosien J, Butterbach P, Pomp R, et al. (2013) Structural determinants at the interface of the ARC2 and leucine-rich repeat domains control the activation of the plant immune receptors Rx1 and Gpa2. Plant Physiol 162: 1510–1528. doi: 10.1104/pp.113.218842 23660837
-
(2013)
Plant Physiol
, vol.162
, pp. 1510-1528
-
-
Slootweg, E.J.1
Spiridon, L.N.2
Roosien, J.3
Butterbach, P.4
Pomp, R.5
-
23
-
-
33747473700
-
Distinct domains in the ARC region of the potato resistance protein Rx mediate LRR binding and inhibition of activation
-
Rairdan GJ, Moffett P, (2006) Distinct domains in the ARC region of the potato resistance protein Rx mediate LRR binding and inhibition of activation. Plant Cell 18: 2082–2093. 16844906
-
(2006)
Plant Cell
, vol.18
, pp. 2082-2093
-
-
Rairdan, G.J.1
Moffett, P.2
-
24
-
-
68149089161
-
Transcomplementation, but not physical association of the CC-NB-ARC and LRR domains of tomato R protein Mi-1.2 is altered by mutations in the ARC2 subdomain
-
Van Ooijen G, Mayr G, Albrecht M, Cornelissen BJC, Takken FLW, (2008) Transcomplementation, but not physical association of the CC-NB-ARC and LRR domains of tomato R protein Mi-1.2 is altered by mutations in the ARC2 subdomain. Mol Plant 1: 401–410. doi: 10.1093/mp/ssn009 19825549
-
(2008)
Mol Plant
, vol.1
, pp. 401-410
-
-
Van Ooijen, G.1
Mayr, G.2
Albrecht, M.3
Cornelissen, B.J.C.4
Takken, F.L.W.5
-
25
-
-
84859346744
-
Structure-function analysis of the coiled-coil and leucine-rich repeat domains of the RPS5 disease resistance protein
-
Qi D, DeYoung BJ, Innes RW, (2012) Structure-function analysis of the coiled-coil and leucine-rich repeat domains of the RPS5 disease resistance protein. Plant Physiol 158: 1819–1832. doi: 10.1104/pp.112.194035 22331412
-
(2012)
Plant Physiol
, vol.158
, pp. 1819-1832
-
-
Qi, D.1
DeYoung, B.J.2
Innes, R.W.3
-
26
-
-
33845495805
-
Artificial evolution extends the spectrum of viruses that are targeted by a disease-resistance gene from potato
-
Farnham G, Baulcombe DC, (2006) Artificial evolution extends the spectrum of viruses that are targeted by a disease-resistance gene from potato. Proc Natl Acad Sci U S A 103: 18828–18833. 17021014
-
(2006)
Proc Natl Acad Sci U S A
, vol.103
, pp. 18828-18833
-
-
Farnham, G.1
Baulcombe, D.C.2
-
27
-
-
84901703726
-
Single amino acid mutations in the potato immune receptor R3a expand response to Phytophthora effectors
-
Segretin ME, Pais M, Franceschetti M, Chaparro-Garcia A, Bos JI, et al. (2014) Single amino acid mutations in the potato immune receptor R3a expand response to Phytophthora effectors. Mol Plant Microbe Interact 27: 624–637. doi: 10.1094/MPMI-02-14-0040-R 24678835
-
(2014)
Mol Plant Microbe Interact
, vol.27
, pp. 624-637
-
-
Segretin, M.E.1
Pais, M.2
Franceschetti, M.3
Chaparro-Garcia, A.4
Bos, J.I.5
-
28
-
-
0036739297
-
Patterns of positive selection in the complete NBS-LRR gene family of Arabidopsis thaliana
-
Mondragón-Palomino M, Meyers BC, Michelmore RW, Gaut BS, (2002) Patterns of positive selection in the complete NBS-LRR gene family of Arabidopsis thaliana. Genome Res 12: 1305–1315. 12213767
-
(2002)
Genome Res
, vol.12
, pp. 1305-1315
-
-
Mondragón-Palomino, M.1
Meyers, B.C.2
Michelmore, R.W.3
Gaut, B.S.4
-
29
-
-
84881520616
-
Effector recognition and activation of the Arabidopsis thaliana NLR innate immune receptors
-
Steinbrenner AD, Goritschnig S, Krasileva K V, Schreiber KJ, Staskawicz BJ, (2012) Effector recognition and activation of the Arabidopsis thaliana NLR innate immune receptors. Cold Spring Harb Symp Quant Biol 77: 249–257. doi: 10.1101/sqb.2012.77.014860 23174767
-
(2012)
Cold Spring Harb Symp Quant Biol
, vol.77
, pp. 249-257
-
-
Steinbrenner, A.D.1
Goritschnig, S.2
Krasileva, K.V.3
Schreiber, K.J.4
Staskawicz, B.J.5
-
30
-
-
81755163005
-
Multiple candidate effectors from the oomycete pathogen Hyaloperonospora arabidopsidis suppress host plant immunity
-
Fabro G, Steinbrenner J, Coates M, Ishaque N, Baxter L, et al. (2011) Multiple candidate effectors from the oomycete pathogen Hyaloperonospora arabidopsidis suppress host plant immunity. PLoS Pathog 7: e1002348. doi: 10.1371/journal.ppat.1002348 22072967
-
(2011)
PLoS Pathog
, vol.7
-
-
Fabro, G.1
Steinbrenner, J.2
Coates, M.3
Ishaque, N.4
Baxter, L.5
-
31
-
-
0032202153
-
Three genes of the Arabidopsis RPP1 complex resistance locus recognize distinct Peronospora parasitica avirulence determinants
-
Botella MA, Parker JE, Frost LN, Bittner-Eddy PD, Beynon JL, et al. (1998) Three genes of the Arabidopsis RPP1 complex resistance locus recognize distinct Peronospora parasitica avirulence determinants. Plant Cell 10: 1847–1860. 9811793
-
(1998)
Plant Cell
, vol.10
, pp. 1847-1860
-
-
Botella, M.A.1
Parker, J.E.2
Frost, L.N.3
Bittner-Eddy, P.D.4
Beynon, J.L.5
-
32
-
-
27944450693
-
Differential recognition of highly divergent downy mildew avirulence gene alleles by RPP1 resistance genes from two Arabidopsis lines
-
Rehmany AP, Gordon A, Rose LE, Allen RL, Armstrong MR, et al. (2005) Differential recognition of highly divergent downy mildew avirulence gene alleles by RPP1 resistance genes from two Arabidopsis lines. Plant Cell 17: 1839–1850. 15894715
-
(2005)
Plant Cell
, vol.17
, pp. 1839-1850
-
-
Rehmany, A.P.1
Gordon, A.2
Rose, L.E.3
Allen, R.L.4
Armstrong, M.R.5
-
33
-
-
83355176273
-
Global analysis of Arabidopsis/downy mildew interactions reveals prevalence of incomplete resistance and rapid evolution of pathogen recognition
-
Krasileva K V, Zheng C, Leonelli L, Goritschnig S, Dahlbeck D, et al. (2011) Global analysis of Arabidopsis/downy mildew interactions reveals prevalence of incomplete resistance and rapid evolution of pathogen recognition. PLoS One 6: e28765. doi: 10.1371/journal.pone.0028765 22194907
-
(2011)
PLoS One
, vol.6
-
-
Krasileva, K.V.1
Zheng, C.2
Leonelli, L.3
Goritschnig, S.4
Dahlbeck, D.5
-
34
-
-
84857479035
-
Sequence divergent RXLR effectors share a structural fold conserved across plant pathogenic oomycete species
-
Win J, Krasileva K V, Kamoun S, Shirasu K, Staskawicz BJ, et al. (2012) Sequence divergent RXLR effectors share a structural fold conserved across plant pathogenic oomycete species. PLoS Pathog 8: e1002400. doi: 10.1371/journal.ppat.1002400 22253591
-
(2012)
PLoS Pathog
, vol.8
-
-
Win, J.1
Krasileva, K.V.2
Kamoun, S.3
Shirasu, K.4
Staskawicz, B.J.5
-
35
-
-
80051993849
-
Hyaloperonospora arabidopsidis ATR1 effector is a repeat protein with distributed recognition surfaces
-
Chou S, Krasileva K V, Holton JM, Steinbrenner AD, Alber T, et al. (2011) Hyaloperonospora arabidopsidis ATR1 effector is a repeat protein with distributed recognition surfaces. Proc Natl Acad Sci U S A 108: 13323–13328. doi: 10.1073/pnas.1109791108 21788488
-
(2011)
Proc Natl Acad Sci U S A
, vol.108
, pp. 13323-13328
-
-
Chou, S.1
Krasileva, K.V.2
Holton, J.M.3
Steinbrenner, A.D.4
Alber, T.5
-
36
-
-
84888007160
-
On the front line: structural insights into plant-pathogen interactions
-
Wirthmueller L, Maqbool A, Banfield MJ, (2013) On the front line: structural insights into plant-pathogen interactions. Nat Rev Microbiol 11: 761–776. doi: 10.1038/nrmicro3118 24100360
-
(2013)
Nat Rev Microbiol
, vol.11
, pp. 761-776
-
-
Wirthmueller, L.1
Maqbool, A.2
Banfield, M.J.3
-
37
-
-
39149138096
-
The downy mildew effector proteins ATR1 and ATR13 promote disease susceptibility in Arabidopsis thaliana
-
Sohn KH, Lei R, Nemri A, Jones JDG, (2007) The downy mildew effector proteins ATR1 and ATR13 promote disease susceptibility in Arabidopsis thaliana. Plant Cell 19: 4077–4090. doi: 10.1105/tpc.107.054262 18165328
-
(2007)
Plant Cell
, vol.19
, pp. 4077-4090
-
-
Sohn, K.H.1
Lei, R.2
Nemri, A.3
Jones, J.D.G.4
-
38
-
-
38949111492
-
Recognition of the Hyaloperonospora parasitica effector ATR13 triggers resistance against oomycete, bacterial, and viral pathogens
-
Rentel MC, Leonelli L, Dahlbeck D, Zhao B, Staskawicz BJ, (2008) Recognition of the Hyaloperonospora parasitica effector ATR13 triggers resistance against oomycete, bacterial, and viral pathogens. Proc Natl Acad Sci U S A 105: 1091–1096. doi: 10.1073/pnas.0711215105 18198274
-
(2008)
Proc Natl Acad Sci U S A
, vol.105
, pp. 1091-1096
-
-
Rentel, M.C.1
Leonelli, L.2
Dahlbeck, D.3
Zhao, B.4
Staskawicz, B.J.5
-
39
-
-
84859194053
-
Computational prediction and molecular characterization of an oomycete effector and the cognate Arabidopsis resistance gene
-
Goritschnig S, Krasileva K V, Dahlbeck D, Staskawicz BJ, (2012) Computational prediction and molecular characterization of an oomycete effector and the cognate Arabidopsis resistance gene. PLoS Genet 8: e1002502. doi: 10.1371/journal.pgen.1002502 22359513
-
(2012)
PLoS Genet
, vol.8
-
-
Goritschnig, S.1
Krasileva, K.V.2
Dahlbeck, D.3
Staskawicz, B.J.4
-
40
-
-
35348915452
-
Adaptive evolution has targeted the C-terminal domain of the RXLR effectors of plant pathogenic oomycetes
-
Win J, Morgan W, Bos J, Krasileva K V, Cano LM, et al. (2007) Adaptive evolution has targeted the C-terminal domain of the RXLR effectors of plant pathogenic oomycetes. Plant Cell 19: 2349–2369. 17675403
-
(2007)
Plant Cell
, vol.19
, pp. 2349-2369
-
-
Win, J.1
Morgan, W.2
Bos, J.3
Krasileva, K.V.4
Cano, L.M.5
-
41
-
-
78649723391
-
Co-evolutionary interactions between host resistance and pathogen effector genes in flax rust disease
-
Ravensdale M, Nemri A, Thrall PH, Ellis JG, Dodds PN, (2011) Co-evolutionary interactions between host resistance and pathogen effector genes in flax rust disease. Mol Plant Pathol 12: 93–102. doi: 10.1111/j.1364-3703.2010.00657.x 21118351
-
(2011)
Mol Plant Pathol
, vol.12
, pp. 93-102
-
-
Ravensdale, M.1
Nemri, A.2
Thrall, P.H.3
Ellis, J.G.4
Dodds, P.N.5
-
42
-
-
84920268654
-
Species-wide Genetic Incompatibility Analysis Identifies Immune Genes as Hot Spots of Deleterious Epistasis
-
Chae E, Bomblies K, Kim S-T, Karelina D, Zaidem M, et al. (2014) Species-wide Genetic Incompatibility Analysis Identifies Immune Genes as Hot Spots of Deleterious Epistasis. Cell 159: 1341–1351. doi: 10.1016/j.cell.2014.10.049 25467443
-
(2014)
Cell
, vol.159
, pp. 1341-1351
-
-
Chae, E.1
Bomblies, K.2
Kim, S.-T.3
Karelina, D.4
Zaidem, M.5
-
43
-
-
49249092223
-
The leucine-rich repeat structure
-
Bella J, Hindle KL, McEwan PA, Lovell SC, (2008) The leucine-rich repeat structure. Cell Mol Life Sci 65: 2307–2333. doi: 10.1007/s00018-008-8019-0 18408889
-
(2008)
Cell Mol Life Sci
, vol.65
, pp. 2307-2333
-
-
Bella, J.1
Hindle, K.L.2
McEwan, P.A.3
Lovell, S.C.4
-
44
-
-
80053379974
-
Innate immune recognition of bacterial ligands by NAIPs determines inflammasome specificity
-
Kofoed EM, Vance RE, (2011) Innate immune recognition of bacterial ligands by NAIPs determines inflammasome specificity. Nature 477: 592–595. doi: 10.1038/nature10394 21874021
-
(2011)
Nature
, vol.477
, pp. 592-595
-
-
Kofoed, E.M.1
Vance, R.E.2
-
45
-
-
84898031590
-
Molecular Basis for Specific Recognition of Bacterial Ligands by NAIP/NLRC4 Inflammasomes
-
Tenthorey JL, Kofoed EM, Daugherty MD, Malik HS, Vance RE, (2014) Molecular Basis for Specific Recognition of Bacterial Ligands by NAIP/NLRC4 Inflammasomes. Mol Cell 54: 17–29. doi: 10.1016/j.molcel.2014.02.018 24657167
-
(2014)
Mol Cell
, vol.54
, pp. 17-29
-
-
Tenthorey, J.L.1
Kofoed, E.M.2
Daugherty, M.D.3
Malik, H.S.4
Vance, R.E.5
-
46
-
-
84870849520
-
Intramolecular interaction influences binding of the Flax L5 and L6 resistance proteins to their AvrL567 ligands
-
Ravensdale M, Bernoux M, Ve T, Kobe B, Thrall PH, et al. (2012) Intramolecular interaction influences binding of the Flax L5 and L6 resistance proteins to their AvrL567 ligands. PLoS Pathog 8: e1003004. doi: 10.1371/journal.ppat.1003004 23209402
-
(2012)
PLoS Pathog
, vol.8
-
-
Ravensdale, M.1
Bernoux, M.2
Ve, T.3
Kobe, B.4
Thrall, P.H.5
-
47
-
-
84893712704
-
Substitutions of two amino acids in the nucleotide-binding site domain of a resistance protein enhance the hypersensitive response and enlarge the PM3F resistance spectrum in wheat
-
Stirnweis D, Milani SD, Jordan T, Keller B, Brunner S, (2013) Substitutions of two amino acids in the nucleotide-binding site domain of a resistance protein enhance the hypersensitive response and enlarge the PM3F resistance spectrum in wheat. Mol Plant Microbe Interact 27: 265–276.
-
(2013)
Mol Plant Microbe Interact
, vol.27
, pp. 265-276
-
-
Stirnweis, D.1
Milani, S.D.2
Jordan, T.3
Keller, B.4
Brunner, S.5
-
48
-
-
45549084403
-
Structure-function analysis of the NB-ARC domain of plant disease resistance proteins
-
Van Ooijen G, Mayr G, Kasiem MMA, Albrecht M, Cornelissen BJC, et al. (2008) Structure-function analysis of the NB-ARC domain of plant disease resistance proteins. J Exp Bot 59: 1383–1397. doi: 10.1093/jxb/ern045 18390848
-
(2008)
J Exp Bot
, vol.59
, pp. 1383-1397
-
-
Van Ooijen, G.1
Mayr, G.2
Kasiem, M.M.A.3
Albrecht, M.4
Cornelissen, B.J.C.5
-
49
-
-
84891349762
-
Stepwise artificial evolution of a plant disease resistance gene
-
Harris CJ, Slootweg EJ, Goverse A, Baulcombe DC, (2013) Stepwise artificial evolution of a plant disease resistance gene. Proc Natl Acad Sci U S A 110: 21189–21194. doi: 10.1073/pnas.1311134110 24324167
-
(2013)
Proc Natl Acad Sci U S A
, vol.110
, pp. 21189-21194
-
-
Harris, C.J.1
Slootweg, E.J.2
Goverse, A.3
Baulcombe, D.C.4
-
50
-
-
33847769886
-
Indirect activation of a plant nucleotide binding site-leucine-rich repeat protein by a bacterial protease
-
Ade J, DeYoung BJ, Golstein C, Innes RW, (2007) Indirect activation of a plant nucleotide binding site-leucine-rich repeat protein by a bacterial protease. Proc Natl Acad Sci U S A 104: 2531–2536. 17277084
-
(2007)
Proc Natl Acad Sci U S A
, vol.104
, pp. 2531-2536
-
-
Ade, J.1
DeYoung, B.J.2
Golstein, C.3
Innes, R.W.4
-
51
-
-
0001200134
-
The promoter of TL-DNA gene 5 controls the tissue-specific expression of chimaeric genes carried by a novel type of Agrobacterium binary vector
-
Koncz C, Schell J, (1986) The promoter of TL-DNA gene 5 controls the tissue-specific expression of chimaeric genes carried by a novel type of Agrobacterium binary vector. MGG Mol Gen Genet 204: 383–396.
-
(1986)
MGG Mol Gen Genet
, vol.204
, pp. 383-396
-
-
Koncz, C.1
Schell, J.2
-
52
-
-
33644872218
-
Gateway-compatible vectors for plant functional genomics and proteomics
-
Earley KW, Haag JR, Pontes O, Opper K, Juehne T, et al. (2006) Gateway-compatible vectors for plant functional genomics and proteomics. Plant J 45: 616–629. 16441352
-
(2006)
Plant J
, vol.45
, pp. 616-629
-
-
Earley, K.W.1
Haag, J.R.2
Pontes, O.3
Opper, K.4
Juehne, T.5
-
53
-
-
63849246525
-
Protein structure prediction on the Web: a case study using the Phyre server
-
Kelley LA, Sternberg MJE, (2009) Protein structure prediction on the Web: a case study using the Phyre server. Nat Protoc 4: 363–371. doi: 10.1038/nprot.2009.2 19247286
-
(2009)
Nat Protoc
, vol.4
, pp. 363-371
-
-
Kelley, L.A.1
Sternberg, M.J.E.2
-
54
-
-
4444221565
-
UCSF Chimera—a visualization system for exploratory research and analysis
-
Pettersen EF, Goddard TD, Huang CC, Couch GS, Greenblatt DM, et al. (2004) UCSF Chimera—a visualization system for exploratory research and analysis. J Comput Chem 25: 1605–1612. 15264254
-
(2004)
J Comput Chem
, vol.25
, pp. 1605-1612
-
-
Pettersen, E.F.1
Goddard, T.D.2
Huang, C.C.3
Couch, G.S.4
Greenblatt, D.M.5
|