-
1
-
-
0037256419
-
Arabidopsis AtMYC2 (bHLH) and AtMYB2 (MYB) function as transcriptional activators in abscisic acid signaling
-
Abe H, Urao T, Ito T, Seki M, Shinozaki K, Yamaguchi-Shinozaki K. 2003. Arabidopsis AtMYC2 (bHLH) and AtMYB2 (MYB) function as transcriptional activators in abscisic acid signaling. Plant Cell 15, 63-78.
-
(2003)
Plant Cell
, vol.15
, pp. 63-78
-
-
Abe, H.1
Urao, T.2
Ito, T.3
Seki, M.4
Shinozaki, K.5
Yamaguchi-Shinozaki, K.6
-
2
-
-
77954926589
-
Antioxidative defense under salt stress
-
Abogadallah GM. 2010. Antioxidative defense under salt stress. Plant Signaling & Behavior 5, 369-374.
-
(2010)
Plant Signaling & Behavior
, vol.5
, pp. 369-374
-
-
Abogadallah, G.M.1
-
3
-
-
14644420609
-
Antagonistic interaction between abscisic acid and jasmonate-ethylene signaling pathways modulates defense gene expression and disease resistance in Arabidopsis
-
Anderson JP, Badruzsaufari E, Schenk PM, Manners JM, Desmond OJ, Ehlert C, Maclean DJ, Ebert PR, Kazan K. 2004. Antagonistic interaction between abscisic acid and jasmonate-ethylene signaling pathways modulates defense gene expression and disease resistance in Arabidopsis. Plant Cell 16, 3460-3479.
-
(2004)
Plant Cell
, vol.16
, pp. 3460-3479
-
-
Anderson, J.P.1
Badruzsaufari, E.2
Schenk, P.M.3
Manners, J.M.4
Desmond, O.J.5
Ehlert, C.6
Maclean, D.J.7
Ebert, P.R.8
Kazan, K.9
-
4
-
-
3242715114
-
Reactive oxygen species: Metabolism, oxidative stress, and signal transduction
-
Apel K, Hirt H. 2004. Reactive oxygen species: metabolism, oxidative stress, and signal transduction. Annual Review of Plant Biology 55, 373-399.
-
(2004)
Annual Review of Plant Biology
, vol.55
, pp. 373-399
-
-
Apel, K.1
Hirt, H.2
-
5
-
-
0033588033
-
+ antiport in Arabidopsis
-
Apse MP, Aharon GS, Snedden WA, Blumwald E. 1999. Salt tolerance conferred by overexpression of a vacuolar Na+/H+ antiport in Arabidopsis. Science 285, 1256-1258.
-
(1999)
Science
, vol.285
, pp. 1256-1258
-
-
Apse, M.P.1
Aharon, G.S.2
Snedden, W.A.3
Blumwald, E.4
-
7
-
-
80054975423
-
+ homeostasis to regulate growth, flower development, and reproduction
-
Bassil E, Tajima H, Liang YC, Ohto MA, Ushijima K, Nakano R, Esumi T, Coku A, Belmonte M, Blumwald E. 2011. The Arabidopsis Na+/H+ antiporters NHX1 and NHX2 control vacuolar pH and K+ homeostasis to regulate growth, flower development, and reproduction. Plant Cell 23, 3482-3497.
-
(2011)
Plant Cell
, vol.23
, pp. 3482-3497
-
-
Bassil, E.1
Tajima, H.2
Liang, Y.C.3
Ohto, M.A.4
Ushijima, K.5
Nakano, R.6
Esumi, T.7
Coku, A.8
Belmonte, M.9
Blumwald, E.10
-
8
-
-
0038125598
-
Calcium signaling: Dynamics, homeostasis and remodeling
-
Berridge MJ, Bootman MD, Roderick HL. 2003. Calcium signaling: dynamics, homeostasis and remodeling. Nature Reviews Molecular Cell Biology 4, 517-529.
-
(2003)
Nature Reviews Molecular Cell Biology
, vol.4
, pp. 517-529
-
-
Berridge, M.J.1
Bootman, M.D.2
Roderick, H.L.3
-
10
-
-
84878446658
-
Reduced tonoplast fast-activating and slow-activating channel activity is essential for conferring salinity tolerance in a facultative halophyte, quinoa
-
Bonales-Alatorre E, Shabala S, Chen ZH, Pottosin I. 2013. Reduced tonoplast fast-activating and slow-activating channel activity is essential for conferring salinity tolerance in a facultative halophyte, quinoa. Plant Physiology 162, 940-952.
-
(2013)
Plant Physiology
, vol.162
, pp. 940-952
-
-
Bonales-Alatorre, E.1
Shabala, S.2
Chen, Z.H.3
Pottosin, I.4
-
11
-
-
33847122121
-
A gain-of-function allele of TPC1 activates oxylipin biogenesis after leaf wounding in Arabidopsis
-
Bonaventure G, Gfeller A, Proebsting WM, Hortensteiner S, Chetelat A, Martinoia E, Farmer EE. 2007. A gain-of-function allele of TPC1 activates oxylipin biogenesis after leaf wounding in Arabidopsis. The Plant Journal 49, 889-898.
-
(2007)
The Plant Journal
, vol.49
, pp. 889-898
-
-
Bonaventure, G.1
Gfeller, A.2
Proebsting, W.M.3
Hortensteiner, S.4
Chetelat, A.5
Martinoia, E.6
Farmer, E.E.7
-
12
-
-
84865501556
-
Calcium efflux systems in stress signaling and adaptation in plants
-
Bose J, Pottosin II, Shabala SS, Palmgren MG, Shabala S. 2011. Calcium efflux systems in stress signaling and adaptation in plants. Frontiers in Plant Science 2, 85.
-
(2011)
Frontiers in Plant Science
, vol.2
, pp. 85
-
-
Bose, J.1
Pottosin, I.I.2
Shabala, S.S.3
Palmgren, M.G.4
Shabala, S.5
-
13
-
-
20444376563
-
Plant-specific calmodulin-binding proteins
-
Bouché N, Yellin A, Snedden WA, Fromm H. 2005. Plant-specific calmodulin-binding proteins. Annual Review of Plant Biology 56, 435-466.
-
(2005)
Annual Review of Plant Biology
, vol.56
, pp. 435-466
-
-
Bouché, N.1
Yellin, A.2
Snedden, W.A.3
Fromm, H.4
-
14
-
-
33746517317
-
Arabidopsis MAP kinase 4 regulates salicylic acid-and jasmonic acid/ethylene-dependent responses via EDS1 and PAD4
-
Brodersen P, Petersen M, Nielsen HB, Zhu S, Newman MA, Shokat KM, Rietz S, Parker J, Mundy J. 2006. Arabidopsis MAP kinase 4 regulates salicylic acid-and jasmonic acid/ethylene-dependent responses via EDS1 and PAD4. The Plant Journal 47, 532-546.
-
(2006)
The Plant Journal
, vol.47
, pp. 532-546
-
-
Brodersen, P.1
Petersen, M.2
Nielsen, H.B.3
Zhu, S.4
Newman, M.A.5
Shokat, K.M.6
Rietz, S.7
Parker, J.8
Mundy, J.9
-
17
-
-
34547941644
-
Evolution of calcium homeostasis: From birth of the first cell to an omnipresent signalling system
-
Case RM, Eisner D, Gurney A, Jones O, Muallem S, Verkhratsky A. 2007. Evolution of calcium homeostasis: from birth of the first cell to an omnipresent signalling system. Cell Calcium 42, 345-350.
-
(2007)
Cell Calcium
, vol.42
, pp. 345-350
-
-
Case, R.M.1
Eisner, D.2
Gurney, A.3
Jones, O.4
Muallem, S.5
Verkhratsky, A.6
-
18
-
-
0346120018
-
+H transporter CAX1 increase CBF/DREB1 expression and the cold-acclimation response in Arabidopsis
-
Catalá R, Santos E, Alonso JM, Ecker JR, Martínez-Zapater JM, Salinas J. 2003. Mutations in the Ca2+/+H transporter CAX1 increase CBF/DREB1 expression and the cold-acclimation response in Arabidopsis. Plant Cell 15, 2940-2951.
-
(2003)
Plant Cell
, vol.15
, pp. 2940-2951
-
-
Catalá, R.1
Santos, E.2
Alonso, J.M.3
Ecker, J.R.4
Martínez-Zapater, J.M.5
Salinas, J.6
-
19
-
-
84863682060
-
Defence signalling triggered by Flg22 and Harpin is integrated into a different stilbene output in Vitis cells
-
Chang X, Nick P. 2012. Defence signalling triggered by Flg22 and Harpin is integrated into a different stilbene output in Vitis cells. PLoS ONE 7: e40446.
-
(2012)
PLoS ONE
, vol.7
-
-
Chang, X.1
Nick, P.2
-
20
-
-
0442321060
-
2+antiporter/CAX1 to integrate calcium transport and salt tolerance
-
Cheng NH, Pittman JK, Zhu JK, Hirschi KD. 2004 Theprotein kinase SOS2 activates the Arabidopsis H+/Ca2+antiporter/CAX1 to integrate calcium transport and salt tolerance. Journal of Biological Chemistry 279, 2922-2926.
-
(2004)
Journal of Biological Chemistry
, vol.279
, pp. 2922-2926
-
-
Cheng, N.H.1
Pittman, J.K.2
Zhu, J.K.3
Hirschi, K.D.4
-
21
-
-
34547743829
-
The JAZ family of repressors is the missing link in jasmonate signalling
-
Chini A, Fonseca S, Fernàndez G, et al. 2007. The JAZ family of repressors is the missing link in jasmonate signalling. Nature 448, 666-671.
-
(2007)
Nature
, vol.448
, pp. 666-671
-
-
Chini, A.1
Fonseca, S.2
Fernàndez, G.3
-
22
-
-
33644839617
-
Salt stress signalling and mechanisms of plant stress tolerance
-
Chinnusamy V, Zhu J, Zhu JK. 2006. Salt stress signalling and mechanisms of plant stress tolerance. Genetic Engineering 27, 141-177.
-
(2006)
Genetic Engineering
, vol.27
, pp. 141-177
-
-
Chinnusamy, V.1
Zhu, J.2
Zhu, J.K.3
-
23
-
-
0028831997
-
Calcium signaling
-
Clapham DE. 1995. Calcium signaling. Cell 80, 259-268.
-
(1995)
Cell
, vol.80
, pp. 259-268
-
-
Clapham, D.E.1
-
24
-
-
37149029370
-
Calcium signaling
-
Clapham DE. 2007. Calcium signaling. Cell 131, 1047-1058.
-
(2007)
Cell
, vol.131
, pp. 1047-1058
-
-
Clapham, D.E.1
-
26
-
-
0029807182
-
The octadecanoid signaling pathway in plants mediates a response to ultraviolet radiation
-
Conconi A, Smerdon MJ, Howe GA, Ryan CA. 1996. The octadecanoid signaling pathway in plants mediates a response to ultraviolet radiation. Nature 383, 826-829.
-
(1996)
Nature
, vol.383
, pp. 826-829
-
-
Conconi, A.1
Smerdon, M.J.2
Howe, G.A.3
Ryan, C.A.4
-
27
-
-
0029073123
-
Jasmonic acid distribution and action in plants: Regulation during development and response to biotic and abiotic stress
-
Creelman RA, Mullet JE. 1995. Jasmonic acid distribution and action in plants: regulation during development and response to biotic and abiotic stress. Proceedings of the National Academy of Sciences, USA 92, 4114-4119.
-
(1995)
Proceedings of the National Academy of Sciences, USA
, vol.92
, pp. 4114-4119
-
-
Creelman, R.A.1
Mullet, J.E.2
-
29
-
-
0031177884
-
Oligosaccharins, brassinolides, and jasmonates: Nontraditional regulators of plant growth, development, and gene expression
-
Creelman RA, Mullet JE. 1997b. Oligosaccharins, brassinolides, and jasmonates: nontraditional regulators of plant growth, development, and gene expression. Plant Cell 9, 1211-1223.
-
(1997)
Plant Cell
, vol.9
, pp. 1211-1223
-
-
Creelman, R.A.1
Mullet, J.E.2
-
31
-
-
77952511548
-
Abscisic acid: Emergence of a core signaling network
-
Cutler SR, Rodriguez PL, Finkelstein RR, Abrams SR. 2010. Abscisic acid: emergence of a core signaling network. Annual Review of Plant Biology 61, 651-679.
-
(2010)
Annual Review of Plant Biology
, vol.61
, pp. 651-679
-
-
Cutler, S.R.1
Rodriguez, P.L.2
Finkelstein, R.R.3
Abrams, S.R.4
-
32
-
-
0033759850
-
A weakly voltage-dependent, nonselective cation channel mediates toxic sodium influx in wheat
-
Davenport RJ, Tester M. 2000. A weakly voltage-dependent, nonselective cation channel mediates toxic sodium influx in wheat. Plant Physiology 122, 823-834.
-
(2000)
Plant Physiology
, vol.122
, pp. 823-834
-
-
Davenport, R.J.1
Tester, M.2
-
33
-
-
34548405212
-
Salt resistance is determined by osmotic adjustment and abscisic acid in newly developed maize hybrids in the first phase of salt stress
-
De Costa W, Zörb C, Hartung W, Schubert S. 2007. Salt resistance is determined by osmotic adjustment and abscisic acid in newly developed maize hybrids in the first phase of salt stress. Physiolgia Plantarum 131, 311-321.
-
(2007)
Physiolgia Plantarum
, vol.131
, pp. 311-321
-
-
De Costa, W.1
Zörb, C.2
Hartung, W.3
Schubert, S.4
-
35
-
-
34447515608
-
Physiological roles of nonselective cation channels in plants: From salt stress to signalling and development
-
Demidchik V, Maathuis FJM. 2007. Physiological roles of nonselective cation channels in plants: from salt stress to signalling and development. New Phytologist 175, 387-404.
-
(2007)
New Phytologist
, vol.175
, pp. 387-404
-
-
Demidchik, V.1
Maathuis, F.J.M.2
-
36
-
-
3042646705
-
Salt and osmotic stress cause rapid increases in Arabidopsis thaliana cGMP levels
-
Donaldson L, Ludidi N, Knight MR, Gehring C, Denby K. 2004. Salt and osmotic stress cause rapid increases in Arabidopsis thaliana cGMP levels. FEBS Letter 569, 317-320.
-
(2004)
FEBS Letter
, vol.569
, pp. 317-320
-
-
Donaldson, L.1
Ludidi, N.2
Knight, M.R.3
Gehring, C.4
Denby, K.5
-
37
-
-
84878149704
-
Calcium-dependent protein kinase/ NADPH oxidase activation circuit is required for rapid defense signal propagation
-
Dubiella U, Seybold H, Durian G, Komander E, Lassig R, Witte CP, Schulze WX, Romeis T. 2013. Calcium-dependent protein kinase/ NADPH oxidase activation circuit is required for rapid defense signal propagation. Proceedings of the National Academy of Sciences, USA 110, 8744-8749.
-
(2013)
Proceedings of the National Academy of Sciences, USA
, vol.110
, pp. 8744-8749
-
-
Dubiella, U.1
Seybold, H.2
Durian, G.3
Komander, E.4
Lassig, R.5
Witte, C.P.6
Schulze, W.X.7
Romeis, T.8
-
38
-
-
0037297787
-
OsDREB genes in rice, Oryza sativa L., encode transcription activators that function in drought-, high-, salt-and cold-responsive gene expression
-
Dubouzet JG, Sakuma Y, Ito Y, Dubouzet E, Miura S, Seki M, Shinozaki K, Yamaguchi-Shinozaki K. 2003. OsDREB genes in rice, Oryza sativa L., encode transcription activators that function in drought-, high-, salt-and cold-responsive gene expression. The Plant Journal 33, 751-763.
-
(2003)
The Plant Journal
, vol.33
, pp. 751-763
-
-
Dubouzet, J.G.1
Sakuma, Y.2
Ito, Y.3
Dubouzet, E.4
Miura, S.5
Seki, M.6
Shinozaki, K.7
Yamaguchi-Shinozaki, K.8
-
41
-
-
84877654728
-
ROS-mediated lipid peroxidation and RES-activated signaling
-
Farmer EE, Mueller MJ. 2013. ROS-mediated lipid peroxidation and RES-activated signaling. Annual Review of Plant Biology 64, 429-450.
-
(2013)
Annual Review of Plant Biology
, vol.64
, pp. 429-450
-
-
Farmer, E.E.1
Mueller, M.J.2
-
42
-
-
0035039531
-
Changes in root cap pH are required for the gravity response of the Arabidopsis root
-
Fasano JM, Swanson SJ, Blancaflor EB, Dowd PE, Kao T, Gilroy S. 2001. Changes in root cap pH are required for the gravity response of the Arabidopsis root. Plant Cell 13, 907-921.
-
(2001)
Plant Cell
, vol.13
, pp. 907-921
-
-
Fasano, J.M.1
Swanson, S.J.2
Blancaflor, E.B.3
Dowd, P.E.4
Kao, T.5
Gilroy, S.6
-
43
-
-
0033136465
-
Plants have a sensitive perception system for the most conserved domain of bacterial flagellin
-
Felix G, Duran J, Volko S, Boller T. 1999. Plants have a sensitive perception system for the most conserved domain of bacterial flagellin. The Plant Journal 18, 265-276.
-
(1999)
The Plant Journal
, vol.18
, pp. 265-276
-
-
Felix, G.1
Duran, J.2
Volko, S.3
Boller, T.4
-
44
-
-
0000538103
-
Specific perception of subnanomolar concentrations of chitin fragments by tomato cells: Induction of extracellular alkalinization, changes in protein phosphorylation, and establishment of a refractory state
-
Felix G, Regenass M, Boller T. 1993. Specific perception of subnanomolar concentrations of chitin fragments by tomato cells: induction of extracellular alkalinization, changes in protein phosphorylation, and establishment of a refractory state. The Plant Journal 4, 307-316.
-
(1993)
The Plant Journal
, vol.4
, pp. 307-316
-
-
Felix, G.1
Regenass, M.2
Boller, T.3
-
47
-
-
70349589200
-
The jasmonate pathway: The ligand, the receptor and the core signalling module
-
Fonseca S, Chico JM, Solano R. 2009. The jasmonate pathway: the ligand, the receptor and the core signalling module. Current Opinion in Plant Biology 12, 539-547.
-
(2009)
Current Opinion in Plant Biology
, vol.12
, pp. 539-547
-
-
Fonseca, S.1
Chico, J.M.2
Solano, R.3
-
49
-
-
1642465548
-
2+] indicators unveil ion dynamics in the cytoplasm and in the apoplast under abiotic stress
-
Gao D, Knight MR, Trewavas AJ, Sattelmacher B, Plieth C. 2004a. Self-reporting Arabidopsis expressing pH and [Ca2+] indicators unveil ion dynamics in the cytoplasm and in the apoplast under abiotic stress. Plant Physiology 134, 898-908.
-
(2004)
Plant Physiology
, vol.134
, pp. 898-908
-
-
Gao, D.1
Knight, M.R.2
Trewavas, A.J.3
Sattelmacher, B.4
Plieth, C.5
-
50
-
-
3142611535
-
Abscisic acid is involved in the water stress-induced betaine accumulation in pear leaves
-
Gao XP, Pan QH, Li MJ, Zhang LY, Wang XF, Shen YY, Lu YF, Chen SW, Liang Z, Zhang DP. 2004b. Abscisic acid is involved in the water stress-induced betaine accumulation in pear leaves. Plant Cell Physiology 45, 742-750.
-
(2004)
Plant Cell Physiology
, vol.45
, pp. 742-750
-
-
Gao, X.P.1
Pan, Q.H.2
Li, M.J.3
Zhang, L.Y.4
Wang, X.F.5
Shen, Y.Y.6
Lu, Y.F.7
Chen, S.W.8
Liang, Z.9
Zhang, D.P.10
-
51
-
-
0033573896
-
The Arabidopsis thaliana proton transporters, AtNHX1 and Avp1, can function in cation detoxification in yeast
-
Gaxiola RA, Rao R, Sherman A, Grisafi P, Alper SL, Fink GR. 1999. The Arabidopsis thaliana proton transporters, AtNHX1 and Avp1, can function in cation detoxification in yeast. Proceedings of the National Academy of Sciences, USA 96, 1480-1485.
-
(1999)
Proceedings of the National Academy of Sciences, USA
, vol.96
, pp. 1480-1485
-
-
Gaxiola, R.A.1
Rao, R.2
Sherman, A.3
Grisafi, P.4
Alper, S.L.5
Fink, G.R.6
-
52
-
-
84873276367
-
Ratiometric monitoring of transient apoplastic alkalinizations in the leaf apoplast of living Vicia faba plants: Chloride primes and PM-H+-ATPase shapes NaCl-induced systemic alkalinizations
-
Geilfuß CM, Mühling KH. 2013. Ratiometric monitoring of transient apoplastic alkalinizations in the leaf apoplast of living Vicia faba plants: chloride primes and PM-H+-ATPase shapes NaCl-induced systemic alkalinizations. New Phytologist 197, 1117-1129.
-
(2013)
New Phytologist
, vol.197
, pp. 1117-1129
-
-
Geilfuß, C.M.1
Mühling, K.H.2
-
53
-
-
78049474352
-
Reactive oxygen species and antioxidant machinery in abiotic stress tolerance in crop plants
-
Gill SS, Tuteja N. 2010. Reactive oxygen species and antioxidant machinery in abiotic stress tolerance in crop plants. Plant Physiology and Biochemistry 48, 909-930.
-
(2010)
Plant Physiology and Biochemistry
, vol.48
, pp. 909-930
-
-
Gill, S.S.1
Tuteja, N.2
-
54
-
-
84866558302
-
Proteomic identification of MYC2-dependent jasmonate-regulated proteins in Arabidopsis thaliana
-
Guo J, Pang Q, Wang L, Yu P, Li N, Yan X. 2012. Proteomic identification of MYC2-dependent jasmonate-regulated proteins in Arabidopsis thaliana. Proteome Science 10, 57.
-
(2012)
Proteome Science
, vol.10
, pp. 57
-
-
Guo, J.1
Pang, Q.2
Wang, L.3
Yu, P.4
Li, N.5
Yan, X.6
-
55
-
-
1542351067
-
Phytochrome-mediated transcriptional up-regulation of allene oxide synthase in rice seedlings
-
Haga K, Iino M. 2004. Phytochrome-mediated transcriptional up-regulation of allene oxide synthase in rice seedlings. Plant and Cell Physiology 45, 119-128.
-
(2004)
Plant and Cell Physiology
, vol.45
, pp. 119-128
-
-
Haga, K.1
Iino, M.2
-
56
-
-
80052401289
-
Nitric oxide and ABA in the control of plant function
-
Hancock JT, Neill SJ, Wilson ID. 2011. Nitric oxide and ABA in the control of plant function. Plant Science 181, 555-559.
-
(2011)
Plant Science
, vol.181
, pp. 555-559
-
-
Hancock, J.T.1
Neill, S.J.2
Wilson, I.D.3
-
58
-
-
80053896950
-
Nitric oxide modulates antioxidant defense and the methylglyoxal detoxi fi cation system and reduces salinity-induced damage of wheat seedlings
-
Hasanuzzaman M, Hossain MA, Fujita M. 2011. Nitric oxide modulates antioxidant defense and the methylglyoxal detoxi fi cation system and reduces salinity-induced damage of wheat seedlings. Plant Biotechnology Reports 5, 353-365.
-
(2011)
Plant Biotechnology Reports
, vol.5
, pp. 353-365
-
-
Hasanuzzaman, M.1
Hossain, M.A.2
Fujita, M.3
-
59
-
-
0034489614
-
Plant cellular and molecular responses to high salinity
-
Hasegawa PM, Bressan RA, Zhu JK, Bohnert H. 2000. Plant cellular and molecular responses to high salinity. Annual Review of Plant Physiology and Plant Molecular Biology 51, 463-499.
-
(2000)
Annual Review of Plant Physiology and Plant Molecular Biology
, vol.51
, pp. 463-499
-
-
Hasegawa, P.M.1
Bressan, R.A.2
Zhu, J.K.3
Bohnert, H.4
-
60
-
-
79957445309
-
TPC1-SV channels gain shape
-
Hedrich R, Martena I. 2011. TPC1-SV channels gain shape. Molecular Plant 4, 428-441.
-
(2011)
Molecular Plant
, vol.4
, pp. 428-441
-
-
Hedrich, R.1
Martena, I.2
-
61
-
-
0034747345
-
2+ transport: Who's directing the traffic?
-
Hirschi K. 2001. Vacuolar H+/Ca2+ transport: who's directing the traffic? Trends in Plant Science 6, 100-104.
-
(2001)
Trends in Plant Science
, vol.6
, pp. 100-104
-
-
Hirschi, K.1
-
62
-
-
0037269020
-
Differential effect of sorbitol and polyethylene glycol on antioxidant enzymes in rice leaves
-
Hsu SY, Kao CH.2003. Differential effect of sorbitol and polyethylene glycol on antioxidant enzymes in rice leaves. Plant Growth Regulation 39, 83-90.
-
(2003)
Plant Growth Regulation
, vol.39
, pp. 83-90
-
-
Hsu, S.Y.1
Kao, C.H.2
-
63
-
-
70450193083
-
Early signal transduction linking the synthesis of jasmonic acid in plant
-
Hu XY, Li WS, Chen Q, Yang YP. 2009. Early signal transduction linking the synthesis of jasmonic acid in plant. Plant Signaling & Behaviour 4, 696-697.
-
(2009)
Plant Signaling & Behaviour
, vol.4
, pp. 696-697
-
-
Hu, X.Y.1
Li, W.S.2
Chen, Q.3
Yang, Y.P.4
-
64
-
-
77955885246
-
Early abscisic acid signal transduction mechanisms: Newly discovered components and newly emerging questions
-
Hubbard KE, Nishimura N, Hitomi K, Getzoff ED, Schroeder JI. 2010. Early abscisic acid signal transduction mechanisms: newly discovered components and newly emerging questions. Genes & Development 24, 1695-1708.
-
(2010)
Genes & Development
, vol.24
, pp. 1695-1708
-
-
Hubbard, K.E.1
Nishimura, N.2
Hitomi, K.3
Getzoff, E.D.4
Schroeder, J.I.5
-
65
-
-
84859298310
-
Reactive oxygen species are involved in gibberellin/abscisic acid signaling in barley aleurone cells
-
Ishibashi Y, Tawaratsumida T, Kondo K, Kasa S, Sakamoto M, Aoki N, Zheng SH, Yuasa T, Iwaya-Inoue M. 2012. Reactive oxygen species are involved in gibberellin/abscisic acid signaling in barley aleurone cells. Plant Physiology 158, 1705-1714.
-
(2012)
Plant Physiology
, vol.158
, pp. 1705-1714
-
-
Ishibashi, Y.1
Tawaratsumida, T.2
Kondo, K.3
Kasa, S.4
Sakamoto, M.5
Aoki, N.6
Zheng, S.H.7
Yuasa, T.8
Iwaya-Inoue, M.9
-
66
-
-
0031277694
-
Genetic analysis of osmotic and cold stress signal transduction in Arabidopsis: Interactions and convergence of abscisic acid-dependent and abscisic acidindependent pathways
-
Ishitani M, Xiong L, Stevenson B, Zhu JK. 1997. Genetic analysis of osmotic and cold stress signal transduction in Arabidopsis: interactions and convergence of abscisic acid-dependent and abscisic acidindependent pathways. Plant Cell 9, 1935-1949.
-
(1997)
Plant Cell
, vol.9
, pp. 1935-1949
-
-
Ishitani, M.1
Xiong, L.2
Stevenson, B.3
Zhu, J.K.4
-
67
-
-
84858030351
-
The jasmonate pathway mediates salt tolerance in grapevines
-
Ismail A, Riemann M, Nick P. 2012. The jasmonate pathway mediates salt tolerance in grapevines. Journal of Experimental Botany 63, 2127-2139.
-
(2012)
Journal of Experimental Botany
, vol.63
, pp. 2127-2139
-
-
Ismail, A.1
Riemann, M.2
Nick, P.3
-
68
-
-
84902768660
-
Salt adaptation requires suppression of jasmonate signaling
-
doi.10.1007/s00709-013-0591-y
-
Ismail A, Seo M, Takebayashi Y, Kamiya Y, Eiche E, Nick P. 2014. Salt adaptation requires suppression of jasmonate signaling. Protoplasma doi.10.1007/s00709-013-0591-y.
-
(2014)
Protoplasma
-
-
Ismail, A.1
Seo, M.2
Takebayashi, Y.3
Kamiya, Y.4
Eiche, E.5
Nick, P.6
-
69
-
-
84875580656
-
The Salt Overly Sensitive (SOS) pathway: Established and emerging roles
-
Ji H, Pardo JM, Batelli G, Van Oosten MJ, Bressan RA, Li X. 2013. The Salt Overly Sensitive (SOS) pathway: established and emerging roles. Molecular Plant 6, 275-286.
-
(2013)
Molecular Plant
, vol.6
, pp. 275-286
-
-
Ji, H.1
Pardo, J.M.2
Batelli, G.3
Van Oosten, M.J.4
Bressan, R.A.5
Li, X.6
-
71
-
-
48049100208
-
Jasmonate signaling: Toward an integrated view
-
Kazan K, Manners JM. 2008. Jasmonate signaling: toward an integrated view. Plant Physiology 146, 1459-1468.
-
(2008)
Plant Physiology
, vol.146
, pp. 1459-1468
-
-
Kazan, K.1
Manners, J.M.2
-
72
-
-
84855596136
-
JAZ repressors and the orchestration of phytohormone crosstalk
-
Kazan K, Manners JM. 2012. JAZ repressors and the orchestration of phytohormone crosstalk. Trends in Plant Science 17, 22-31.
-
(2012)
Trends in Plant Science
, vol.17
, pp. 22-31
-
-
Kazan, K.1
Manners, J.M.2
-
74
-
-
33748809546
-
Functional analysis of a calcium-binding transcription factor involved in plant salt stress signaling
-
Kim J, Kim HY. 2006. Functional analysis of a calcium-binding transcription factor involved in plant salt stress signaling. FEBS Letters 580, 5251-5256.
-
(2006)
FEBS Letters
, vol.580
, pp. 5251-5256
-
-
Kim, J.1
Kim, H.Y.2
-
75
-
-
84879697335
-
The Arabidopsis RING E3 ubiquitin ligase AtAIRP3/LOG2 participates in positive regulation of high salt and drought stress responses
-
Kim JH, Kim WT. 2013. The Arabidopsis RING E3 ubiquitin ligase AtAIRP3/LOG2 participates in positive regulation of high salt and drought stress responses. Plant Physiology 162, 1733-1749.
-
(2013)
Plant Physiology
, vol.162
, pp. 1733-1749
-
-
Kim, J.H.1
Kim, W.T.2
-
76
-
-
0037805637
-
Activation of the programmed cell death pathway by inhibition of proteasome function in plants
-
Kim M, Ahn JW, Jin UH, Choi D, Paek KH, Pai HS. 2003. Activation of the programmed cell death pathway by inhibition of proteasome function in plants. Journal of Biological Chemistry 278, 19406-19415.
-
(2003)
Journal of Biological Chemistry
, vol.278
, pp. 19406-19415
-
-
Kim, M.1
Ahn, J.W.2
Jin, U.H.3
Choi, D.4
Paek, K.H.5
Pai, H.S.6
-
77
-
-
2442439996
-
Modulation by cytosolic components of proton pump activities in plasma membrane and tonoplast from Cucumis sativus roots during salt stress
-
Klobus G, Janicka-Russak M. 2004. Modulation by cytosolic components of proton pump activities in plasma membrane and tonoplast from Cucumis sativus roots during salt stress. Physiologia Plantarum 121, 84-92.
-
(2004)
Physiologia Plantarum
, vol.121
, pp. 84-92
-
-
Klobus, G.1
Janicka-Russak, M.2
-
78
-
-
0031279985
-
Calcium signalling in Arabidopsis thaliana responding to drought and salinity
-
Knight H, Trewavas AJ, Knight MR. 1997. Calcium signalling in Arabidopsis thaliana responding to drought and salinity. The Plant Journal 12, 1067-1078.
-
(1997)
The Plant Journal
, vol.12
, pp. 1067-1078
-
-
Knight, H.1
Trewavas, A.J.2
Knight, M.R.3
-
79
-
-
78649747464
-
Sodium transport in plants: A critical review
-
Kronzucker HJ, Britto DT. 2011. Sodium transport in plants: a critical review. New Phytologist 189, 54-81.
-
(2011)
New Phytologist
, vol.189
, pp. 54-81
-
-
Kronzucker, H.J.1
Britto, D.T.2
-
80
-
-
77953184082
-
Calcium signals: The lead currency of plant information processing
-
Kudla J, Batistic O, Hashimoto K. 2010. Calcium signals: the lead currency of plant information processing. Plant Cell 22, 541-563.
-
(2010)
Plant Cell
, vol.22
, pp. 541-563
-
-
Kudla, J.1
Batistic, O.2
Hashimoto, K.3
-
82
-
-
0037507299
-
NADPH oxidase AtrbohD and AtrbohF genes function in ROS-dependent ABA signaling in Arabidopsis
-
Kwak JM, Mori IC, Pei ZM, Leonhardt N, Torres MA, Dangl JL, Bloom RE, Bodde S, Jones JDG, Schroeder I. 2003. NADPH oxidase AtrbohD and AtrbohF genes function in ROS-dependent ABA signaling in Arabidopsis. EMBO Journal 22, 2623-2633.
-
(2003)
EMBO Journal
, vol.22
, pp. 2623-2633
-
-
Kwak, J.M.1
Mori, I.C.2
Pei, Z.M.3
Leonhardt, N.4
Torres, M.A.5
Dangl, J.L.6
Bloom, R.E.7
Bodde, S.8
Jones, J.D.G.9
Schroeder, I.10
-
83
-
-
0141518650
-
Nitric oxide: The versatility of an extensive signal molecule
-
Lamattina L, Garc?a-Mata C, Graziano M, Pagnussat G. 2003. Nitric oxide: the versatility of an extensive signal molecule. Annual Review of Plant Biology 54, 109-136.
-
(2003)
Annual Review of Plant Biology
, vol.54
, pp. 109-136
-
-
Lamattina, L.1
Garca-Mata, C.2
Graziano, M.3
Pagnussat, G.4
-
85
-
-
75749099703
-
The AtNHX1 exchanger mediates potassium compartmentation in vacuoles of transgenic tomato
-
Leidi EO, Barragán V, Rubio L, et al. 2010. The AtNHX1 exchanger mediates potassium compartmentation in vacuoles of transgenic tomato. The Plant Journal 61, 495-506.
-
(2010)
The Plant Journal
, vol.61
, pp. 495-506
-
-
Leidi, E.O.1
Barragán, V.2
Rubio, L.3
-
86
-
-
0030113929
-
Calciummediated apoptosis in a plant hypersensitive disease resistance response
-
Levine A, Pennell RI, Alvarez ME, Palmer R, Lamb C. 1996. Calciummediated apoptosis in a plant hypersensitive disease resistance response. Current Biology 6, 427-437.
-
(1996)
Current Biology
, vol.6
, pp. 427-437
-
-
Levine, A.1
Pennell, R.I.2
Alvarez, M.E.3
Palmer, R.4
Lamb, C.5
-
87
-
-
77957824005
-
Redox regulation of the NPR1-TGA1 system of Arabidopsis thaliana by nitric oxide
-
Lindermayr C, Sell S, Müller B, Leister D, Durner J. 2010. Redox regulation of the NPR1-TGA1 system of Arabidopsis thaliana by nitric oxide. Plant Cell 22, 2894-2907.
-
(2010)
Plant Cell
, vol.22
, pp. 2894-2907
-
-
Lindermayr, C.1
Sell, S.2
Müller, B.3
Leister, D.4
Durner, J.5
-
88
-
-
84881311475
-
Hydrogen sulfide: Environmental factor or signalling molecule?
-
Lisjak M, Teklic T, Wilson ID, Whiteman M, Hancock JT. 2013. Hydrogen sulfide: environmental factor or signalling molecule? Plant, Cell & Environnement 36, 1607-1616.
-
(2013)
Plant, Cell & Environnement
, vol.36
, pp. 1607-1616
-
-
Lisjak, M.1
Teklic, T.2
Wilson, I.D.3
Whiteman, M.4
Hancock, J.T.5
-
89
-
-
84878891130
-
Zmlea3, a multifunctional group 3 LEA protein from maize (Zea mays L.), is involved in biotic and abiotic stresses
-
Liu Y, Wang L, Xing X, Sun L, Pan J, Kong X, Zhang M, Li D. 2013. ZmLEA3, a multifunctional group 3 LEA protein from maize (Zea mays L.), is involved in biotic and abiotic stresses. Plant Cell Physiology 54, 944-959.
-
(2013)
Plant Cell Physiology
, vol.54
, pp. 944-959
-
-
Liu, Y.1
Wang, L.2
Xing, X.3
Sun, L.4
Pan, J.5
Kong, X.6
Zhang, M.7
Li, D.8
-
91
-
-
66249133969
-
Regulators of PP2C phosphatase activity function as abscisic acid sensors
-
Ma Y, Szostkiewicz I, Korte A, Moes D, Yang Y, Christmann A,Grill E. 2009. Regulators of PP2C phosphatase activity function as abscisic acid sensors. Science 324, 1064-1068.
-
(2009)
Science
, vol.324
, pp. 1064-1068
-
-
Ma, Y.1
Szostkiewicz, I.2
Korte, A.3
Moes, D.4
Yang, Y.5
Christmann Agrill, E.6
-
92
-
-
85047686199
-
Sodium uptake in Arabidopsis roots is regulated by cyclic Nucleotides
-
Maathuis FJM, Sanders D. 2001. Sodium uptake in Arabidopsis roots is regulated by cyclic Nucleotides. Plant Physiology 127, 1617-1625.
-
(2001)
Plant Physiology
, vol.127
, pp. 1617-1625
-
-
Maathuis, F.J.M.1
Sanders, D.2
-
94
-
-
84872255180
-
Vacolar transporters in their physiological context
-
Martinoia E, Meyer S, DeAngeli A, Nagy R. 2012. Vacolar transporters in their physiological context. Annual Review of Plant Biology 63, 183-214.
-
(2012)
Annual Review of Plant Biology
, vol.63
, pp. 183-214
-
-
Martinoia, E.1
Meyer, S.2
Deangeli, A.3
Nagy, R.4
-
95
-
-
0035115228
-
The ABI1 and ABI2 protein phosphatases 2C act in a negative feedback regulatory loop of the abscisic acid signalling pathway
-
Merlot S, Gosti F, Guerrier D, Vavasseur A, Giraudat J. 2001. The ABI1 and ABI2 protein phosphatases 2C act in a negative feedback regulatory loop of the abscisic acid signalling pathway. The Plant Journal 25, 295-303.
-
(2001)
The Plant Journal
, vol.25
, pp. 295-303
-
-
Merlot, S.1
Gosti, F.2
Guerrier, D.3
Vavasseur, A.4
Giraudat, J.5
-
96
-
-
77951013891
-
Reactive oxygen species homeostasis and signaling during drought and salinity stresses
-
Miller G, Suzuki N, Ciftci-Yilmaz S, Mittler R. 2010. Reactive oxygen species homeostasis and signaling during drought and salinity stresses. Plant, Cell & Environment 33, 453-467.
-
(2010)
Plant, Cell & Environment
, vol.33
, pp. 453-467
-
-
Miller, G.1
Suzuki, N.2
Ciftci-Yilmaz, S.3
Mittler, R.4
-
97
-
-
0036728244
-
Oxidative stress, antioxidants and stress tolerance
-
Mittler R. 2002. Oxidative stress, antioxidants and stress tolerance. Trends in Plant Science 7, 405-10.
-
(2002)
Trends in Plant Science
, vol.7
, pp. 405-410
-
-
Mittler, R.1
-
98
-
-
0027811507
-
Physiological processes limiting plant growth in saline soil: Some dogmas and hypotheses
-
Munns R. 1993. Physiological processes limiting plant growth in saline soil: some dogmas and hypotheses. Plant Cell and Environment 16, 15-24.
-
(1993)
Plant Cell and Environment
, vol.16
, pp. 15-24
-
-
Munns, R.1
-
99
-
-
0036179253
-
Comparative physiology of salt and water stress
-
Munns R. 2002. Comparative physiology of salt and water stress. Plant Cell, & Environment 25, 239-250.
-
(2002)
Plant Cell, & Environment
, vol.25
, pp. 239-250
-
-
Munns, R.1
-
100
-
-
25444461374
-
Genes and salt tolerance: Bringing them together
-
Munns R. 2005. Genes and salt tolerance: bringing them together. New Phytologist 167, 645-663.
-
(2005)
New Phytologist
, vol.167
, pp. 645-663
-
-
Munns, R.1
-
102
-
-
0035209746
-
Abscisic acid activation of plasma membrane Ca2+ channels in guard cells require cytosolic NAD(P) H and is differentially disrupted upstream and downstream of reactive oxygen species production in abi1-1 and abi2-1 protein phosphatase 2C mutants
-
Murata Y, Pei ZM, Mori IC, Schroeder JI. 2001. Abscisic acid activation of plasma membrane Ca2+ channels in guard cells require cytosolic NAD(P) H and is differentially disrupted upstream and downstream of reactive oxygen species production in abi1-1 and abi2-1 protein phosphatase 2C mutants. Plant Cell 13, 2513-2523.
-
(2001)
Plant Cell
, vol.13
, pp. 2513-2523
-
-
Murata, Y.1
Pei, Z.M.2
Mori, I.C.3
Schroeder, J.I.4
-
104
-
-
71449098436
-
Structural mechanism of abscisic acid binding and signaling by dimeric PYR1
-
Nishimura N, Hitomi K, Arvai AS, Rambo RP, Hitomi C, Cutler SR, Schroeder JI, Getzoff ED. 2009. Structural mechanism of abscisic acid binding and signaling by dimeric PYR1. Science 326, 1373-1379.
-
(2009)
Science
, vol.326
, pp. 1373-1379
-
-
Nishimura, N.1
Hitomi, K.2
Arvai, A.S.3
Rambo, R.P.4
Hitomi, C.5
Cutler, S.R.6
Schroeder, J.I.7
Getzoff, E.D.8
-
105
-
-
73849128008
-
PYR/PYL/RCAR family members are major in-vivo ABI1 protein phosphatase 2C-interacting proteins in Arabidopsis
-
Nishimura N, Sarkeshik A, Nito K, et al. 2010. PYR/PYL/RCAR family members are major in-vivo ABI1 protein phosphatase 2C-interacting proteins in Arabidopsis. The Plant Journal 61, 290-299.
-
(2010)
The Plant Journal
, vol.61
, pp. 290-299
-
-
Nishimura, N.1
Sarkeshik, A.2
Nito, K.3
-
106
-
-
77649246192
-
Intracellular consequences of SOS1 deficiency during salt stress
-
Oh DH, Lee SY, Bressan RA, Yun DJ, Bohnert HJ. 2010. Intracellular consequences of SOS1 deficiency during salt stress. Journal of Experimental Botany 61, 1205-1213.
-
(2010)
Journal of Experimental Botany
, vol.61
, pp. 1205-1213
-
-
Oh, D.H.1
Lee, S.Y.2
Bressan, R.A.3
Yun, D.J.4
Bohnert, H.J.5
-
107
-
-
66349119273
-
+ between plant organs
-
Olías R, Eljakaoui Z, Li J, De Morales PA, Marín-Manzano MC, Pardo JM, Belver A. 2009. The plasma membrane Na+/H+ antiporter SOS1 is essential for salt tolerance in tomato and affects the partitioning of Na+ between plant organs. Plant, Cell & Environment 32, 904-916.
-
(2009)
Plant, Cell & Environment
, vol.32
, pp. 904-916
-
-
Olías, R.1
Eljakaoui, Z.2
Li, J.3
De Morales, P.A.4
Marín-Manzano, M.C.5
Pardo, J.M.6
Belver, A.7
-
108
-
-
0035342618
-
+antiporters
-
Padan E, Venturi M, Gerchman Y, Dover N. 2001. Na+/H+antiporters. Biochimica et Biophysica Acta 1505, 144-157.
-
(2001)
Biochimica et Biophysica Acta
, vol.1505
, pp. 144-157
-
-
Padan, E.1
Venturi, M.2
Gerchman, Y.3
Dover, N.4
-
109
-
-
3142763888
-
The calcium sensor calcineurin B-Like 9 modulates abscisic acid sensitivity and biosynthesis in Arabidopsis
-
Pandey GK, Cheong YK, Kim KN, Grant JJ, Li LG, Hung W, D'Angelo C, Weinl S, Kudla J, Luan S. 2004. The calcium sensor calcineurin B-Like 9 modulates abscisic acid sensitivity and biosynthesis in Arabidopsis. Plant Cell 16, 1912-1924.
-
(2004)
Plant Cell
, vol.16
, pp. 1912-1924
-
-
Pandey, G.K.1
Cheong, Y.K.2
Kim, K.N.3
Grant, J.J.4
Li, L.G.5
Hung, W.6
D'angelo, C.7
Weinl, S.8
Kudla, J.9
Luan, S.10
-
110
-
-
66249110335
-
Abscisic acid inhibits type 2C protein phosphatases via the PYR/PYL family of START proteins
-
Park SY, Fung P, Nishimura N, et al. 2009. Abscisic acid inhibits type 2C protein phosphatases via the PYR/PYL family of START proteins. Science 324, 1068-1071.
-
(2009)
Science
, vol.324
, pp. 1068-1071
-
-
Park, S.Y.1
Fung, P.2
Nishimura, N.3
-
112
-
-
77950439369
-
NINJA connects the co-repressor TOPLESS to jasmonate signalling
-
Pauwels L, Barbero GF, Geerinck J, et al. 2010. NINJA connects the co-repressor TOPLESS to jasmonate signalling. Nature 464, 788-791.
-
(2010)
Nature
, vol.464
, pp. 788-791
-
-
Pauwels, L.1
Barbero, G.F.2
Geerinck, J.3
-
113
-
-
79958826531
-
The plant vacuole: Emitter and receiver of calcium signals
-
Peiter E. 2011. The plant vacuole: emitter and receiver of calcium signals. Cell Calcium 50, 120-128.
-
(2011)
Cell Calcium
, vol.50
, pp. 120-128
-
-
Peiter, E.1
-
114
-
-
17744396451
-
Arabidopsis map kinase 4 negatively regulates systemic acquired resistance
-
Petersen M, Brodersen P, Naested H, et al. 2000. Arabidopsis map kinase 4 negatively regulates systemic acquired resistance. Cell 103, 1111-1120.
-
(2000)
Cell
, vol.103
, pp. 1111-1120
-
-
Petersen, M.1
Brodersen, P.2
Naested, H.3
-
115
-
-
79958804498
-
2+ uptake
-
Pittman JK. 2011. Vacuolar Ca2+ uptake. Cell Calcium 50, 139-146.
-
(2011)
Cell Calcium
, vol.50
, pp. 139-146
-
-
Pittman, J.K.1
-
116
-
-
18144406551
-
+ antiporters CAX1 and CAX2
-
Pittman JK, Shigaki T, Hirschi KD. 2005. Evidence of differential pH regulation of the Arabidopsis vacuolar Ca2+/H+ antiporters CAX1 and CAX2. FEBS Letter 579, 2648-2656.
-
(2005)
FEBS Letter
, vol.579
, pp. 2648-2656
-
-
Pittman, J.K.1
Shigaki, T.2
Hirschi, K.D.3
-
117
-
-
60749132988
-
SV channels dominate the vacuolar Ca2+ release during intracellular signaling
-
Pottosin I, Wherrett T, Shabala S. 2009. SV channels dominate the vacuolar Ca2+ release during intracellular signaling. FEBS Letter 583, 921-926.
-
(2009)
FEBS Letter
, vol.583
, pp. 921-926
-
-
Pottosin, I.1
Wherrett, T.2
Shabala, S.3
-
118
-
-
16544361855
-
+H+ antiporter during salinity stress
-
+H+ antiporter during salinity stress. Plant Physiology, 136, 2548-2555
-
(2004)
Plant Physiology
, vol.136
, pp. 2548-2555
-
-
Qi, Z.1
Spalding, E.P.2
-
119
-
-
57749089790
-
Arabidopsis DREB2A-interacting proteins function as RING E3 ligases and negatively regulate plant drought stress-responsive gene expression
-
Qin F, Sakuma Y, Tran LS, et al. 2008. Arabidopsis DREB2A-interacting proteins function as RING E3 ligases and negatively regulate plant drought stress-responsive gene expression. Plant Cell 20, 1693-1707.
-
(2008)
Plant Cell
, pp. 1693-1707
-
-
Qin, F.1
Sakuma, Y.2
Tran, L.S.3
-
120
-
-
85047683597
-
Overexpression of a 9-cis-epoxycarotenoid dioxygenase gene in Nicotiana plumbaginifolia increases abscisic acid and phaseic acid levels and enhances drought tolerance
-
Qin X, Zeevaart JAD. 2002. Overexpression of a 9-cis-epoxycarotenoid dioxygenase gene in Nicotiana plumbaginifolia increases abscisic acid and phaseic acid levels and enhances drought tolerance. Plant Physiology 128, 544-551.
-
(2002)
Plant Physiology
, vol.128
, pp. 544-551
-
-
Qin, X.1
Zeevaart, J.A.D.2
-
121
-
-
0347052888
-
+ exchange in Arabidopsis thaliana by the salt-overly-sensitive (SOS) pathway
-
Qiu QS, Guo Y, Quintero FJ, Pardo JM, Schumaker KS, Zhu JK. 2004. Regulation of vacuolar Na+/H+ exchange in Arabidopsis thaliana by the salt-overly-sensitive (SOS) pathway. Journal of Biological Chemistry 279, 207-215.
-
(2004)
Journal of Biological Chemistry
, vol.279
, pp. 207-215
-
-
Qiu, Q.S.1
Guo, Y.2
Quintero, F.J.3
Pardo, J.M.4
Schumaker, K.S.5
Zhu, J.K.6
-
122
-
-
77955268028
-
ABA perception and signaling
-
Raghavendra AS, Gonugunta VK, Christmann A, Grill E. 2010. ABA perception and signaling. Trends in Plant Science 15, 395-401.
-
(2010)
Trends in Plant Science
, vol.15
, pp. 395-401
-
-
Raghavendra, A.S.1
Gonugunta, V.K.2
Christmann, A.3
Grill, E.4
-
123
-
-
0033785074
-
Jasmonic acid signaling modulates ozone-induced hypersensitive cell death
-
Rao MV, Lee H, Creelman RA, Mullet JE, Davis KR. 2000. Jasmonic acid signaling modulates ozone-induced hypersensitive cell death. Plant Cell 12, 1633-1646.
-
(2000)
Plant Cell
, vol.12
, pp. 1633-1646
-
-
Rao, M.V.1
Lee, H.2
Creelman, R.A.3
Mullet, J.E.4
Davis, K.R.5
-
124
-
-
79960859588
-
Coping with stresses: Roles of calcium-and calcium/calmodulin-regulated gene expression
-
Reddy ASN, Ali GS, Celesnik H, Day IS. 2011. Coping with stresses: roles of calcium-and calcium/calmodulin-regulated gene expression. Plant Cell 23, 2010-2032.
-
(2011)
Plant Cell
, vol.23
, pp. 2010-2032
-
-
Reddy, A.S.N.1
Ali, G.S.2
Celesnik, H.3
Day, I.S.4
-
125
-
-
3142710874
-
Methyl jasmonate is a potent elicitor of multiple defense responses in grapevine leaves and cellsuspension cultures
-
Repka V, Fischerová I, Šilhárová K. 2004. Methyl jasmonate is a potent elicitor of multiple defense responses in grapevine leaves and cellsuspension cultures. Biologia Plantarum 48, 273-283.
-
(2004)
Biologia Plantarum
, vol.48
, pp. 273-283
-
-
Repka, V.1
Fischerová, I.2
Šilhárová, K.3
-
126
-
-
84876280480
-
Isolation of rice allene oxide cyclase mutants and the function of jasmonate for defence against magnaporthe oryzae
-
Riemann M, Haga K, Shimizu T, et al. 2013. Isolation of rice ALLENE OXIDE CYCLASE mutants and the function of jasmonate for defence against Magnaporthe oryzae. The Plant Journal 74, 226-238.
-
(2013)
The Plant Journal
, vol.74
, pp. 226-238
-
-
Riemann, M.1
Haga, K.2
Shimizu, T.3
-
127
-
-
0347228966
-
Impaired induction of the jasmonate pathway in the rice mutant hebiba
-
Riemann M, Muller A, Korte A, Furuya M, Weiler EW, Nick P. 2003. Impaired induction of the jasmonate pathway in the rice mutant hebiba. Plant Physiology 133, 1820-1830.
-
(2003)
Plant Physiology
, vol.133
, pp. 1820-1830
-
-
Riemann, M.1
Muller, A.2
Korte, A.3
Furuya, M.4
Weiler, E.W.5
Nick, P.6
-
128
-
-
0000810426
-
Estimation of cytoplasmic and vacuolar pH in higher plant cells by 31P NMR
-
Roberts JKM, Ray PM, Wade-Jardetzky N, Jardetzky O. 1980. Estimation of cytoplasmic and vacuolar pH in higher plant cells by 31P NMR. Nature 283, 870-872.
-
(1980)
Nature
, vol.283
, pp. 870-872
-
-
Roberts, J.K.M.1
Ray, P.M.2
Wade-Jardetzky, N.3
Jardetzky, O.4
-
129
-
-
77953205300
-
Jasmonate and phytochrome A signaling in Arabidopsis wound and shade responses are integrated through JAZ1 stability
-
Robson F, Okamoto H, Patrick E, Harris S-R, Wasternack C, Brearley C, Turner JG. 2010. Jasmonate and phytochrome A signaling in Arabidopsis wound and shade responses are integrated through JAZ1 stability. Plant Cell 22, 1143-1160.
-
(2010)
Plant Cell
, vol.22
, pp. 1143-1160
-
-
Robson, F.1
Okamoto, H.2
Patrick, E.3
Harris, S.-R.4
Wasternack, C.5
Brearley, C.6
Turner, J.G.7
-
130
-
-
47249111677
-
Overexpression of the tomato K+/H+ antiporter LeNHX2 confers salt tolerance by improving potassium compartmentalization
-
Rodriguez-Rosales MP, Jiang X, Gálvez FJ, Aranda MN, Cubero B, Venema K. 2008. Overexpression of the tomato K+/H+ antiporter LeNHX2 confers salt tolerance by improving potassium compartmentalization. New Phytologist 179, 366-377.
-
(2008)
New Phytologist
, vol.179
, pp. 366-377
-
-
Rodriguez-Rosales, M.P.1
Jiang, X.2
Gálvez, F.J.3
Aranda, M.N.4
Cubero, B.5
Venema, K.6
-
131
-
-
0035923686
-
+ entry into plant roots
-
Rus A, Yokoi S, Sharkhuu A, Reddy M, Lee BH, Matsumoto TK, Koiwa H, Zhu JK, Bressan RA, Hasegawa PM. 2001. AtHKT1 is a salt tolerance determinant that controls Na+ entry into plant roots. Proceedings of the National Academy of Sciences, USA 98, 14150-14155.
-
(2001)
Proceedings of the National Academy of Sciences, USA
, vol.98
, pp. 14150-14155
-
-
Rus, A.1
Yokoi, S.2
Sharkhuu, A.3
Reddy, M.4
Lee, B.H.5
Matsumoto, T.K.6
Koiwa, H.7
Zhu, J.K.8
Bressan, R.A.9
Hasegawa, P.M.10
-
133
-
-
77950401024
-
The ubiquitin-proteasome system regulates plant hormone signaling
-
Santner A, Estelle M. 2010. The ubiquitin-proteasome system regulates plant hormone signaling. The Plant Journal 61, 1029-1040.
-
(2010)
The Plant Journal
, vol.61
, pp. 1029-1040
-
-
Santner, A.1
Estelle, M.2
-
134
-
-
84877260540
-
Using membrane transporters to improve crops for sustainable food production
-
Schroeder JI, Delhaize E, Frommer WB, et al. 2013. Using membrane transporters to improve crops for sustainable food production. Nature 497, 60-66.
-
(2013)
Nature
, vol.497
, pp. 60-66
-
-
Schroeder, J.I.1
Delhaize, E.2
Frommer, W.B.3
-
135
-
-
79953020987
-
OsbHLH148, a basic helix-loop-helix protein, interacts with OsJAZ proteins in a jasmonate signaling pathway leading to drought tolerance in rice
-
Seo JS, Joo J, Kim MJ, Kim YK, Nahm BH, Song SI, Cheong JJ, Lee JS, Kim JK, Choi YD. 2011. OsbHLH148, a basic helix-loop-helix protein, interacts with OsJAZ proteins in a jasmonate signaling pathway leading to drought tolerance in rice. The Plant Journal 65, 907-921.
-
(2011)
The Plant Journal
, vol.65
, pp. 907-921
-
-
Seo, J.S.1
Joo, J.2
Kim, M.J.3
Kim, Y.K.4
Nahm, B.H.5
Song, S.I.6
Cheong, J.J.7
Lee, J.S.8
Kim, J.K.9
Choi, Y.D.10
-
136
-
-
28244441020
-
Salinity-induced ion flux patterns from the excised roots of Arabidopsis sos mutants
-
Shabala L, Cuin TA, Newman IA, Shabala S. 2005. Salinity-induced ion flux patterns from the excised roots of Arabidopsis sos mutants. Planta 222, 1041-1050.
-
(2005)
Planta
, vol.222
, pp. 1041-1050
-
-
Shabala, L.1
Cuin, T.A.2
Newman, I.A.3
Shabala, S.4
-
137
-
-
33747135885
-
+-permeable channels
-
Shabala S, Demidchik V, Shabala L, Cuin TA, Smith SJ, Miller AJ, Davies JM, Newman IA. 2006. Extracellular Ca2+ ameliorates NaClinduced K+ loss from Arabidopsis root and leaf cells by controlling plasma membrane K+-permeable channels. Plant Physiology 141, 1653-1665.
-
(2006)
Plant Physiology
, vol.141
, pp. 1653-1665
-
-
Shabala, S.1
Demidchik, V.2
Shabala, L.3
Cuin, T.A.4
Smith, S.J.5
Miller, A.J.6
Davies, J.M.7
Newman, I.A.8
-
138
-
-
84871726076
-
Salt stress or salt shock: Which genes are we studying?
-
Shavrukov Y. 2013. Salt stress or salt shock: which genes are we studying? Journal of Experimental Botany 64, 119-127.
-
(2013)
Journal of Experimental Botany
, vol.64
, pp. 119-127
-
-
Shavrukov, Y.1
-
141
-
-
79960260496
-
Role of nitric oxide in tolerance of plants to abiotic stress
-
Siddiqui MH, Al-Whaibi MH, Basalah MO. 2011. Role of nitric oxide in tolerance of plants to abiotic stress. Protoplasma 248, 447-455.
-
(2011)
Protoplasma
, pp. 447-455
-
-
Siddiqui, M.H.1
Al-Whaibi, M.H.2
Basalah, M.O.3
-
143
-
-
0031239057
-
Differential expression of two P5CS genes controlling proline accumulation during salt-stress requires ABA and is regulated by ABA1, ABI1 and AXR2 in Arabidopsis
-
Strizhov N, Abrahám E, Okrész L, Blickling S, Zilberstein A, Schell J, Koncz C, Szabados L. 1997. Differential expression of two P5CS genes controlling proline accumulation during salt-stress requires ABA and is regulated by ABA1, ABI1 and AXR2 in Arabidopsis. The Plant Journal 12, 557-569.
-
(1997)
The Plant Journal
, vol.12
, pp. 557-569
-
-
Strizhov, N.1
Abrahám, E.2
Okrész, L.3
Blickling, S.4
Zilberstein, A.5
Schell, J.6
Koncz, C.7
Szabados, L.8
-
144
-
-
1942437624
-
Cytoplasmic alkalization precedes reactive oxygen species production during methyl jasmonate-and abscisic acid-induced stomatal closure
-
Suhita D, Raghavendra AS, Kwak JM, Vavasseur A. 2004. Cytoplasmic alkalization precedes reactive oxygen species production during methyl jasmonate-and abscisic acid-induced stomatal closure. Plant Physiology 134, 1536-1545.
-
(2004)
Plant Physiology
, vol.134
, pp. 1536-1545
-
-
Suhita, D.1
Raghavendra, A.S.2
Kwak, J.M.3
Vavasseur, A.4
-
145
-
-
0344441434
-
The diverse roles of ubiquitin and the 26S proteasome in the life of plants
-
Sullivan JA, Shirasu K, Deng XW. 2003. The diverse roles of ubiquitin and the 26S proteasome in the life of plants. Nature Reviews Genetics 4, 948-958.
-
(2003)
Nature Reviews Genetics
, vol.4
, pp. 948-958
-
-
Sullivan, J.A.1
Shirasu, K.2
Deng, X.W.3
-
147
-
-
84904282258
-
Chemiosmotic potential drives polar transport
-
5th edn. Sunderland, MA: Sinauer Associates
-
Taiz L, Zeiger E. 2010. Chemiosmotic potential drives polar transport. In: Plant Physiology, 5th edn. Sunderland, MA: Sinauer Associates, 553-555.
-
(2010)
Plant Physiology
, pp. 553-555
-
-
Taiz, L.1
Zeiger, E.2
-
148
-
-
78650154390
-
MAPK machinery in plants: Recognition and response to different stresses through multiple signal transduction pathways
-
Taj G, Agarwal P, Grant M, Kumar A. 2010. MAPK machinery in plants: Recognition and response to different stresses through multiple signal transduction pathways. Plant Signaling & Behavior 5, 1370-1378.
-
(2010)
Plant Signaling & Behavior
, vol.5
, pp. 1370-1378
-
-
Taj, G.1
Agarwal, P.2
Grant, M.3
Kumar, A.4
-
149
-
-
3042801230
-
The MKK2 pathway mediates cold and salt stress signaling in Arabidopsis
-
Teige M, Scheikl E, Eulgem T, Dóczi R, Ichimura K, Shinozaki K, Dangl JL, Hirt H. 2004. The MKK2 pathway mediates cold and salt stress signaling in Arabidopsis. Molecular Cell 15, 141-52.
-
(2004)
Molecular Cell
, vol.15
, pp. 141-152
-
-
Teige, M.1
Scheikl, E.2
Eulgem, T.3
Dóczi, R.4
Ichimura, K.5
Shinozaki, K.6
Dangl, J.L.7
Hirt, H.8
-
151
-
-
34547727206
-
JAZ repressor proteins are targets of the SCFCOI1 complex during jasmonate signaling
-
Thines B, Katsir L, Melotto M, Niu Y, Mandaokar A, Liu G, Nomura K, He SY, Howe GA, Browse J. 2007. JAZ repressor proteins are targets of the SCFCOI1 complex during jasmonate signalling. Nature 448, 661-665.
-
(2007)
Nature
, pp. 661-665
-
-
Thines, B.1
Katsir, L.2
Melotto, M.3
Niu, Y.4
Mandaokar, A.5
Liu, G.6
Nomura, K.7
He, S.Y.8
Howe, G.A.9
Browse, J.10
-
152
-
-
84879482568
-
RICE SALT SENSITIVE3 forms a ternary complex with JAZ and class-C bHLH factors and regulates jasmonate-induced gene expression and root cell elongation
-
Toda Y, Tanaka M, Ogawa D, et al. 2013. RICE SALT SENSITIVE3 forms a ternary complex with JAZ and class-C bHLH factors and regulates jasmonate-induced gene expression and root cell elongation. Plant Cell 25, 1709-1725.
-
(2013)
Plant Cell
, vol.25
, pp. 1709-1725
-
-
Toda, Y.1
Tanaka, M.2
Ogawa, D.3
-
154
-
-
35748933857
-
Mechanisms of high salinity tolerance in plants
-
Tuteja N. 2007. Mechanisms of high salinity tolerance in plants. Methods in Enzymology 428, 419-438.
-
(2007)
Methods in Enzymology
, vol.428
, pp. 419-438
-
-
Tuteja, N.1
-
155
-
-
78349276098
-
Molecular basis of the core regulatory network in ABA responses: Sensing, signaling and transport
-
Umezawa T, Nakashima K, Miyakawa T, Kuromori T, Tanokura M, Shinozaki K, Yamaguchi-Shinozaki K. 2010. Molecular basis of the core regulatory network in ABA responses: sensing, signaling and transport. Plant Cell Physiology 51, 1821-1839.
-
(2010)
Plant Cell Physiology
, vol.51
, pp. 1821-1839
-
-
Umezawa, T.1
Nakashima, K.2
Miyakawa, T.3
Kuromori, T.4
Tanokura, M.5
Shinozaki, K.6
Yamaguchi-Shinozaki, K.7
-
156
-
-
67349254570
-
The ubiquitin-26S proteasome system at the nexus of plant biology
-
Vierstra RD. 2009. The ubiquitin-26S proteasome system at the nexus of plant biology. Nature Reviews Molecular Cell Biology 10, 385-397.
-
(2009)
Nature Reviews Molecular Cell Biology
, vol.10
, pp. 385-397
-
-
Vierstra, R.D.1
-
157
-
-
84878996667
-
Social network: JAZ protein interactions expand our knowledge of jasmonate signaling
-
Wager A, Browse J. 2012. Social network: JAZ protein interactions expand our knowledge of jasmonate signaling. Frontiers in Plant Science 3, 1-11.
-
(2012)
Frontiers in Plant Science
, vol.3
, pp. 1-11
-
-
Wager, A.1
Browse, J.2
-
159
-
-
34848897179
-
Jasmonates: Biosynthesis, perception, signal transduction and action in plant stress response, growth and development
-
Wasternack C. 2007. Jasmonates: biosynthesis, perception, signal transduction and action in plant stress response, growth and development. Annals of Botany 100, 681-697.
-
(2007)
Annals of Botany
, vol.100
, pp. 681-697
-
-
Wasternack, C.1
-
160
-
-
84878308492
-
Jasmonates: Biosynthesis, perception, signal transduction and action in plant stress response, growth and development. An update to the 2007 review in Annals of Botany
-
Wasternack C, Hause B. 2013. Jasmonates: biosynthesis, perception, signal transduction and action in plant stress response, growth and development. An update to the 2007 review in Annals of Botany. Annals of Botany 111, 1021-1058.
-
(2013)
Annals of Botany
, vol.111
, pp. 1021-1058
-
-
Wasternack, C.1
Hause, B.2
-
161
-
-
0034194710
-
Calcium channels in higher plants
-
White PJ. 2000. Calcium channels in higher plants. Biochimica et Biophysica Acta 1465, 171-189.
-
(2000)
Biochimica et Biophysica Acta
, vol.1465
, pp. 171-189
-
-
White, P.J.1
-
163
-
-
0141787888
-
Regulation of abscisic acid biosynthesis
-
Xiong L, Zhu JK. 2003. Regulation of abscisic acid biosynthesis. Plant Physiology 133, 29-36.
-
(2003)
Plant Physiology
, vol.133
, pp. 29-36
-
-
Xiong, L.1
Zhu, J.K.2
-
164
-
-
0037160040
-
A calmodulin-binding/CGCG box DNAbinding protein family involved in multiple signaling pathways in plants
-
Yang T, Poovaiah BW. 2002. A calmodulin-binding/CGCG box DNAbinding protein family involved in multiple signaling pathways in plants. Journal of Biological Chemistry 277, 45049-45058.
-
(2002)
Journal of Biological Chemistry
, vol.277
, pp. 45049-45058
-
-
Yang, T.1
Poovaiah, B.W.2
-
165
-
-
0031810994
-
Molecular biology of salt tolerance in the context of wholeplant physiology
-
Yeo A. 1998. Molecular biology of salt tolerance in the context of wholeplant physiology. Journal of Experimental Botany 49, 915-929.
-
(1998)
Journal of Experimental Botany
, vol.49
, pp. 915-929
-
-
Yeo, A.1
-
166
-
-
13544256637
-
Direct interaction of a divergent CaM isoform and the transcription factor, MYB2, enhances salt tolerance in Arabidopsis
-
Yoo JH, Park CY, Kim JC, et al. 2005. Direct interaction of a divergent CaM isoform and the transcription factor, MYB2, enhances salt tolerance in Arabidopsis. Journal of Biological Chemistry 280, 3697-3706.
-
(2005)
Journal of Biological Chemistry
, vol.280
, pp. 3697-3706
-
-
Yoo, J.H.1
Park, C.Y.2
Kim, J.C.3
-
167
-
-
0034899261
-
Transgenic salt tolerant tomato plants accumulate salt in the foliage but not in the fruits
-
Zhang HX, Blumwald E. 2001. Transgenic salt tolerant tomato plants accumulate salt in the foliage but not in the fruits. Nature Biotechnology 19, 765-768.
-
(2001)
Nature Biotechnology
, vol.19
, pp. 765-768
-
-
Zhang, H.X.1
Blumwald, E.2
-
168
-
-
47249114779
-
Methyl jasmonate induces production of reactive oxygen species and alterations in mitochondrial dynamics that precede photosynthetic dysfunction and subsequent cell death
-
Zhang L, Xing D. 2008. Methyl jasmonate induces production of reactive oxygen species and alterations in mitochondrial dynamics that precede photosynthetic dysfunction and subsequent cell death. Plant Cell Physiology 49, 1092-1111.
-
(2008)
Plant Cell Physiology
, vol.49
, pp. 1092-1111
-
-
Zhang, L.1
Xing, D.2
-
169
-
-
38049072766
-
The Arabidopsis cax3 mutants display altered salt tolerance, pH sensitivity and reduced plasma membrane H+-ATPase activity
-
Zhao J., Barkla B., Marshall J., Pittman J., Hirschi K. 2008. The Arabidopsis cax3 mutants display altered salt tolerance, pH sensitivity and reduced plasma membrane H+-ATPase activity. Planta 227, 659-669.
-
(2008)
Planta
, vol.227
, pp. 659-669
-
-
Zhao, J.1
Barkla, B.2
Marshall, J.3
Pittman, J.4
Hirschi, K.5
-
170
-
-
84873046795
-
+ antiport activity and serine hydroxymethyltransferase stability
-
+ antiport activity and serine hydroxymethyltransferase stability. Plant Cell 24, 5106-5122.
-
(2012)
Plant Cell
, vol.24
, pp. 5106-5122
-
-
Zhou, H.1
Zhao, J.2
Yang, Y.3
-
172
-
-
69949107836
-
Short-term effects of salt exposure on the maize chloroplast protein pattern
-
Zörb C, Herbst R, Forreiter C, Schubert S. 2009. Short-term effects of salt exposure on the maize chloroplast protein pattern. Proteomics 17, 4209-4220.
-
(2009)
Proteomics
, vol.17
, pp. 4209-4220
-
-
Zörb, C.1
Herbst, R.2
Forreiter, C.3
Schubert, S.4
|