-
1
-
-
33750597877
-
Insights from the genome of the biotrophic fungal plant pathogen Ustilago maydis
-
Kämper J, Kahmann R, Bölker M, Ma LJ, Brefort T, Saville BJ, Banuett F, Kronstad JW, Gold SE, Müller O, et al. Insights from the genome of the biotrophic fungal plant pathogen Ustilago maydis. Nature 2006; 444:97-101; http://dx.doi.org/10.1038/nature05248
-
(2006)
Nature
, vol.444
, pp. 97-101
-
-
Kämper, J.1
Kahmann, R.2
Bölker, M.3
Ma, L.J.4
Brefort, T.5
Saville, B.J.6
Banuett, F.7
Kronstad, J.W.8
Gold, S.E.9
Müller, O.10
-
2
-
-
70350223650
-
Ustilago maydis as a pathogen
-
PMID:19400641
-
Brefort T, Doehlemann G, Mendoza-Mendoza A, Reissmann S, Djamei A, Kahmann R. Ustilago maydis as a pathogen. Annu Rev Phytopathol 2009; 47:423-45; PMID:19400641; http://dx.doi.org/10.1146/annurev-phyto-080508-081923
-
(2009)
Annu Rev Phytopathol
, vol.47
, pp. 423-445
-
-
Brefort, T.1
Doehlemann, G.2
Mendoza-Mendoza, A.3
Reissmann, S.4
Djamei, A.5
Kahmann, R.6
-
3
-
-
84870825637
-
Ustilago maydis: Dissecting the molecular interface between pathogen and plant
-
PMID:23133380
-
Djamei A, Kahmann R. Ustilago maydis: dissecting the molecular interface between pathogen and plant. PLoS Pathog 2012; 8:e1002955; PMID:23133380; http://dx.doi.org/10.1371/journal.ppat.1002955
-
(2012)
Plos Pathog
, vol.8
-
-
Djamei, A.1
Kahmann, R.2
-
4
-
-
53549113354
-
Reprogramming a maize plant: Transcriptional and metabolic changes induced by the fungal biotroph Ustilago maydis
-
PMID:18564380
-
Doehlemann G, Wahl R, Horst RJ, Voll LM, Usadel B, Poree F, Stitt M, Pons-Kühnemann J, Sonnewald U, Kahmann R, et al. Reprogramming a maize plant: transcriptional and metabolic changes induced by the fungal biotroph Ustilago maydis. Plant J 2008; 56:181-95; PMID:18564380; http://dx.doi.org/10.1111/j.1365- 313X.2008.03590.x
-
(2008)
Plant J
, vol.56
, pp. 181-195
-
-
Doehlemann, G.1
Wahl, R.2
Horst, R.J.3
Voll, L.M.4
Usadel, B.5
Poree, F.6
Stitt, M.7
Pons-Kühnemann, J.8
Sonnewald, U.9
Kahmann, R.10
-
5
-
-
47249105555
-
The secretome of the maize pathogen Ustilago maydis
-
PMID:18456523
-
Mueller O, Kahmann R, Aguilar G, Trejo-Aguilar B, Wu A, de Vries RP. The secretome of the maize pathogen Ustilago maydis. Fungal Genet Biol 2008; 45:S63-70; PMID:18456523; http://dx.doi.org/10.1016/j.fgb.2008.03.012
-
(2008)
Fungal Genet Biol
, vol.45
, pp. S63-S70
-
-
Mueller, O.1
Kahmann, R.2
Aguilar, G.3
Trejo-Aguilar, B.4
Wu, A.5
De Vries, R.P.6
-
6
-
-
84900829496
-
Characterization of the largest effector gene cluster of Ustilago maydis
-
PMID:24992561
-
Brefort T, Tanaka S, Neidig N, Doehlemann G, Vincon V, Kahmann R. Characterization of the largest effector gene cluster of Ustilago maydis. PLoS Pathog 2014; 10:e1003866; PMID:24992561; http://dx.doi.org/10.1371/journal.ppat.1003866
-
(2014)
Plos Pathog
, vol.10
-
-
Brefort, T.1
Tanaka, S.2
Neidig, N.3
Doehlemann, G.4
Vincon, V.5
Kahmann, R.6
-
7
-
-
61449127365
-
Pep1, a secreted effector protein of Ustilago maydis, is required for successful invasion of plant cells
-
PMID:19197359
-
Doehlemann G, van der Linde K, Assmann D, Schwammbach D, Hof A, Mohanty A, Jackson D, Kahmann R. Pep1, a secreted effector protein of Ustilago maydis, is required for successful invasion of plant cells. PLoS Pathog 2009; 5:e1000290; PMID:19197359; http://dx.doi.org/10.1371/journal.ppat.1000290
-
(2009)
Plos Pathog
, pp. 5
-
-
Doehlemann, G.1
Van Der Linde, K.2
Assmann, D.3
Schwammbach, D.4
Hof, A.5
Mohanty, A.6
Jackson, D.7
Kahmann, R.8
-
8
-
-
84862497259
-
The Ustilago maydis effector Pep1 suppresses plant immunity by inhibition of host peroxidase activity
-
PMID:22589719
-
Hemetsberger C, Herrberger C, Zechmann B, Hillmer M, Doehlemann G. The Ustilago maydis effector Pep1 suppresses plant immunity by inhibition of host peroxidase activity. PLoS Pathog 2012; 8:e1002684; PMID:22589719; http://dx.doi.org/10.1371/journal. ppat.1002684
-
(2012)
Plos Pathog
, pp. 8
-
-
Hemetsberger, C.1
Herrberger, C.2
Zechmann, B.3
Hillmer, M.4
Doehlemann, G.5
-
9
-
-
80055018408
-
Metabolic priming by a secreted fungal effector
-
PMID:21976020
-
Djamei A, Schipper K, Rabe F, Ghosh A, Vincon V, Kahnt J, Osorio S, Tohge T, Fernie AR, Feussner I, et al. Metabolic priming by a secreted fungal effector. Nature 2011; 478:395-8; PMID:21976020; http://dx. doi.org/10.1038/nature10454
-
(2011)
Nature
, vol.478
, pp. 395-398
-
-
Djamei, A.1
Schipper, K.2
Rabe, F.3
Ghosh, A.4
Vincon, V.5
Kahnt, J.6
Osorio, S.7
Tohge, T.8
Fernie, A.R.9
Feussner, I.10
-
10
-
-
79960731542
-
Two linked genes encoding a secreted effector and a membrane protein are essential for Ustilago maydis-induced tumour formation
-
PMID:21692877
-
Doehlemann G, Reissmann S, Assmann D, Fleckenstein M, Kahmann R. Two linked genes encoding a secreted effector and a membrane protein are essential for Ustilago maydis-induced tumour formation. Mol Microbiol 2011; 81:751-66; PMID:21692877; http://dx.doi.org/10.1111/j.1365-2958.2011.07728.x
-
(2011)
Mol Microbiol
, vol.81
, pp. 751-766
-
-
Doehlemann, G.1
Reissmann, S.2
Assmann, D.3
Fleckenstein, M.4
Kahmann, R.5
-
11
-
-
84874787430
-
Compatibility in the Ustilago maydismaize interaction requires inhibition of host cysteine proteases by the fungal effector Pit2
-
PMID:23459172
-
Mueller AN, Ziemann S, Treitschke S, Assmann D, Doehlemann G. Compatibility in the Ustilago maydismaize interaction requires inhibition of host cysteine proteases by the fungal effector Pit2. PLoS Pathog 2013; 9:e1003177; PMID:23459172; http://dx.doi. org/10.1371/journal.ppat.1003177
-
(2013)
Plos Pathog
, vol.9
-
-
Mueller, A.N.1
Ziemann, S.2
Treitschke, S.3
Assmann, D.4
Doehlemann, G.5
-
12
-
-
84898766977
-
A secreted Ustilago maydis effector promotes virulence by targeting anthocyanin biosynthesis in maize
-
Tanaka S, Brefort T, Neidig N, Djamei A, Kahnt J, Vermerris W, Koenig S, Feussner K, Feussner I, Kahmann R. A secreted Ustilago maydis effector promotes virulence by targeting anthocyanin biosynthesis in maize. Elife 2014; 3:e01355; http://dx.doi.org/10.7554/eLife.01355
-
(2014)
Elife
, vol.3
-
-
Tanaka, S.1
Brefort, T.2
Neidig, N.3
Djamei, A.4
Kahnt, J.5
Vermerris, W.6
Koenig, S.7
Feussner, K.8
Feussner, I.9
Kahmann, R.10
-
13
-
-
84928940364
-
A secreted effector protein of Ustilago maydis guides maize leaf cells to form tumors
-
PMID:25888589
-
Redkar A, Hoser R, Schilling L, Zechmann B, Krzymowska M, Walbot V, Doehlemann G. A secreted effector protein of Ustilago maydis guides maize leaf cells to form tumors. Plant Cell 2015; 27:1332-51; PMID:25888589; http://dx.doi.org/10.1105/tpc.114.131086
-
(2015)
Plant Cell
, vol.27
, pp. 1332-1351
-
-
Redkar, A.1
Hoser, R.2
Schilling, L.3
Zechmann, B.4
Krzymowska, M.5
Walbot, V.6
Doehlemann, G.7
-
14
-
-
0342757941
-
Zizania latifolia and Ustilago esculenta, a grass-ungus association
-
Terrell EE, Batra LR. Zizania latifolia and Ustilago esculenta, a grass-ungus association. Econ Bot 1982; 36:274-85; http://dx.doi.org/10.1007/BF02858549
-
(1982)
Econ Bot
, vol.36
, pp. 274-285
-
-
Terrell, E.E.1
Batra, L.R.2
-
15
-
-
77349088271
-
Maize host requirements for Ustilago maydis tumor induction
-
PMID:20165959
-
Walbot V, Skibbe D.S. Maize host requirements for Ustilago maydis tumor induction. Sex Plant Reprod 2010; 23:1-13; PMID:20165959; http://dx.doi.org/10.1007/s00497-009-0109-0
-
(2010)
Sex Plant Reprod
, vol.23
, pp. 1-13
-
-
Walbot, V.1
Skibbe, D.S.2
-
16
-
-
84908137667
-
Virulence of the maize smut Ustilago maydis is shaped by organ specific effectors
-
PMID:25346968
-
Schilling L, Matei A, Redkar A, Walbot V, Doehlemann G. Virulence of the maize smut Ustilago maydis is shaped by organ specific effectors. Mol Plant Pathol 2014; 15:780-9; PMID:25346968; http://dx.doi.org/10.1111/mpp.12133
-
(2014)
Mol Plant Pathol
, vol.15
, pp. 780-789
-
-
Schilling, L.1
Matei, A.2
Redkar, A.3
Walbot, V.4
Doehlemann, G.5
-
17
-
-
77950490159
-
Maize tumors caused by Ustilago maydis require organ-specific genes in host and pathogen
-
PMID:20360107
-
Skibbe DS, Doehlemann G, Fernandes J, Walbot V. Maize tumors caused by Ustilago maydis require organ-specific genes in host and pathogen. Science 2010; 328:89-92; PMID:20360107; http://dx.doi.org/10.1126/science.1185775
-
(2010)
Science
, vol.328
, pp. 89-92
-
-
Skibbe, D.S.1
Doehlemann, G.2
Fernandes, J.3
Walbot, V.4
-
18
-
-
84883055777
-
Nucleocytoplasmic partitioning of tobacco
-
PMID:23731343
-
Hoser R, Zurczak M, Lichocka M, Zuzga S, Dadlez M, Samuel MA, Ellis BE, Stuttmann J, Parker JE, Hennig J, et al. Nucleocytoplasmic partitioning of tobacco N receptor is modulated by SGT1. New Phytol 2013; 200:158-71; PMID:23731343; http://dx.doi.org/10.1111/nph.12347
-
(2013)
N Receptor is Modulated by SGT1. New Phytol
, vol.200
, pp. 158-171
-
-
Hoser, R.1
Zurczak, M.2
Lichocka, M.3
Zuzga, S.4
Dadlez, M.5
Samuel, M.A.6
Ellis, B.E.7
Stuttmann, J.8
Parker, J.E.9
Hennig, J.10
-
19
-
-
0033166694
-
SGT1 encodes an essential component of the yeast kinetochore assembly pathway and a novel subunit of the SCF ubiquitin ligase complex
-
PMID:10445024
-
Kitagawa K, Skowyra D, Elledge SJ, Harper JW, Hieter P. SGT1 encodes an essential component of the yeast kinetochore assembly pathway and a novel subunit of the SCF ubiquitin ligase complex. Mol Cell 1999; 4:21-33; PMID:10445024; http://dx.doi.org/10.1016/S1097-2765(00)80184-7
-
(1999)
Mol Cell
, vol.4
, pp. 21-33
-
-
Kitagawa, K.1
Skowyra, D.2
Elledge, S.J.3
Harper, J.W.4
Hieter, P.5
-
20
-
-
66449115640
-
The HSP90-SGT1 chaperone complex for NLR immune sensors
-
PMID:19014346
-
Shirasu K. The HSP90-SGT1 chaperone complex for NLR immune sensors. Annu Rev Plant Biol 2009; 60:139-64; PMID:19014346; http://dx.doi.org/10.1146/annurev.arplant.59.032607.092906
-
(2009)
Annu Rev Plant Biol
, vol.60
, pp. 139-164
-
-
Shirasu, K.1
-
21
-
-
76249117850
-
Pseudomonas syringae effector protein AvrB perturbs Arabidopsis hormone signaling by activating MAP kinase 4
-
PMID:20159621
-
Cui H, Wang Y, Xue L, Chu J, Yan C, Fu J, Chen M, Innes RW, Zhou JM. Pseudomonas syringae effector protein AvrB perturbs Arabidopsis hormone signaling by activating MAP kinase 4. Cell Host Microbe 2010; 7:164-75; PMID:20159621; http://dx.doi.org/10.1016/j.chom.2010.01.009
-
(2010)
Cell Host Microbe
, vol.7
, pp. 164-175
-
-
Cui, H.1
Wang, Y.2
Xue, L.3
Chu, J.4
Yan, C.5
Fu, J.6
Chen, M.7
Innes, R.W.8
Zhou, J.M.9
-
22
-
-
84884781065
-
The Salmonella type III effector SspH2 specifically exploits the NLR co-chaperone activity of SGT1 to subvert immunity
-
PMID:23935490
-
Bhavsar AP, Brown NF, Stoepel J, Wiermer M, Martin DD, Hsu KJ, Imami K, Ross CJ, Hayden MR, Foster LJ, et al. The Salmonella type III effector SspH2 specifically exploits the NLR co-chaperone activity of SGT1 to subvert immunity. PLoS Pathog 2013; 9:e1003518; PMID:23935490; http://dx.doi.org/10.1371/journal.ppat.1003518
-
(2013)
Plos Pathog
, vol.9
-
-
Bhavsar, A.P.1
Brown, N.F.2
Stoepel, J.3
Wiermer, M.4
Martin, D.D.5
Hsu, K.J.6
Imami, K.7
Ross, C.J.8
Hayden, M.R.9
Foster, L.J.10
-
23
-
-
84899890391
-
Pepper suppressor of the G2 allele of skp1 interacts with the receptor-like cytoplasmic kinase1 and type III effector AvrBsT and promotes the hypersensitive cell death response in a phosphorylation-dependent manner
-
PMID:24686111
-
Kim NH, Kim DS, Chung EH, Hwang BK. Pepper suppressor of the G2 allele of skp1 interacts with the receptor-like cytoplasmic kinase1 and type III effector AvrBsT and promotes the hypersensitive cell death response in a phosphorylation-dependent manner. Plant Physiol 2014; 165:76-91; PMID:24686111; http://dx.doi.org/10.1104/pp.114.238840
-
(2014)
Plant Physiol
, vol.165
, pp. 76-91
-
-
Kim, N.H.1
Kim, D.S.2
Chung, E.H.3
Hwang, B.K.4
-
24
-
-
0029616733
-
Genetics of Ustilago maydis, a fungal pathogen that induces tumors in maize
-
PMID:8825473
-
Banuett F. Genetics of Ustilago maydis, a fungal pathogen that induces tumors in maize. Annu Rev Genet 1995; 29:179-208; PMID:8825473; http://dx.doi.org/10.1146/annurev.ge.29.120195.001143
-
(1995)
Annu Rev Genet
, vol.29
, pp. 179-208
-
-
Banuett, F.1
-
25
-
-
8844219772
-
Regulation of mating and pathogenic development in Ustilago maydis
-
PMID:15556041
-
Feldbrügge M, Kämper J, Steinberg G, Kahmann R. Regulation of mating and pathogenic development in Ustilago maydis. Curr Opin Microbiol 2004; 7:666-72; PMID:15556041; http://dx.doi.org/10.1016/j.mib.2004.10.006
-
(2004)
Curr Opin Microbiol
, vol.7
, pp. 666-672
-
-
Feldbrügge, M.1
Kämper, J.2
Steinberg, G.3
Kahmann, R.4
-
26
-
-
80053345905
-
SignalP 4.0: Discriminating signal peptides from transmembrane regions
-
PMID:21959131
-
Petersen TN, Brunek S, von Heijne G, Neilsen H. SignalP 4.0: Discriminating signal peptides from transmembrane regions. Nature Methods 2011; 8:785-6; PMID:21959131; http://dx.doi.org/10.1038/nmeth.1701
-
(2011)
Nature Methods
, vol.8
, pp. 785-786
-
-
Petersen, T.N.1
Brunek, S.2
Von Heijne, G.3
Neilsen, H.4
-
27
-
-
0031046294
-
A superfamily of conserved domains in DNA damage responsive cell cycle checkpoint proteins
-
PMID:9034168
-
Bork P, Hofmann K, Bucher P, Neuwald AF, Altschul SF, Koonin EV. A superfamily of conserved domains in DNA damage responsive cell cycle checkpoint proteins. FASEB J 1997; 11:68-76; PMID:9034168
-
(1997)
FASEB J
, vol.11
, pp. 68-76
-
-
Bork, P.1
Hofmann, K.2
Bucher, P.3
Neuwald, A.F.4
Altschul, S.F.5
Koonin, E.V.6
-
28
-
-
67649845784
-
Systematic identification of yeast cell cycle-dependent nucleocytoplasmic shuttling proteins by prediction of composite motifs
-
Kosugi S, Hasebe M, Tomita M, Yanagawa H. Systematic identification of yeast cell cycle-dependent nucleocytoplasmic shuttling proteins by prediction of composite motifs. Proc Natl Acad Sci USA 2009; 106:10171-6
-
(2009)
Proc Natl Acad Sci USA
, vol.106
, pp. 10171-10176
-
-
Kosugi, S.1
Hasebe, M.2
Tomita, M.3
Yanagawa, H.4
-
29
-
-
84895476812
-
How do filamentous pathogens deliver effector proteins into plant cells?
-
PMID:24586116
-
Petre B, Kamoun S. How do filamentous pathogens deliver effector proteins into plant cells? PLoS Biol 2014; 12:e1001801; PMID:24586116; http://dx.doi.org/10.1371/journal.pbio.1001801
-
(2014)
Plos Biol
, vol.12
-
-
Petre, B.1
Kamoun, S.2
-
30
-
-
35348915452
-
Adaptive evolution has targeted the C-terminal domain of the RXLR effectors of plant pathogenic oomycetes
-
PMID:17675403
-
Win J, Morgan W, Bos J, Krasileva KV, Cano LM, ChaparroGarcia A, Ammar R, Staskawicz BJ, Kamoun S. Adaptive evolution has targeted the C-terminal domain of the RXLR effectors of plant pathogenic oomycetes. Plant Cell 2007; 19:2349-69; PMID:17675403; http://dx.doi.org/10.1105/tpc.107.051037
-
(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
Chaparrogarcia, A.6
Ammar, R.7
Staskawicz, B.J.8
Kamoun, S.9
-
31
-
-
84926528832
-
Gene loss rather than gene gain is associated with a host jump from monocots to dicots in the smut fungus Melanopsichium pennsylvanicum
-
Sharma R, Mishra B, Runge F, Thines M. Gene loss rather than gene gain is associated with a host jump from monocots to dicots in the smut fungus Melanopsichium pennsylvanicum. Genome Biol and Evol 2014; 6:2034-49; http://dx.doi.org/10.1093/gbe/evu148
-
(2014)
Genome Biol and Evol
, vol.6
, pp. 2034-2049
-
-
Sharma, R.1
Mishra, B.2
Runge, F.3
Thines, M.4
|