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PMID: 23717320 Published · epublish English Journal Article

Open or close the gate - stomata action under the control of phytohormones in drought stress conditions.

Frontiers in plant science ·Vol. 4 ·2013-00-00 ·Pages 138

Daszkowska-Golec A, Szarejko I

Abstract

Two highly specialized cells, the guard cells that surround the stomatal pore, are able to integrate environmental and endogenous signals in order to control the stomatal aperture and thereby the gas exchange. The uptake of CO2 is associated with a loss of water by leaves. Control of the size of the stomatal aperture optimizes the efficiency of water use through dynamic changes in the turgor of the guard cells. The opening and closing of stomata is regulated by the integration of environmental signals and endogenous hormonal stimuli. The various different factors to which the guard cells respond translates into the complexity of the network of signaling pathways that control stomatal movements. The perception of an abiotic stress triggers the activation of signal transduction cascades that interact with or are activated by phytohormones. Among these, abscisic acid (ABA), is the best-known stress hormone that closes the stomata, although other phytohormones, such as jasmonic acid, brassinosteroids, cytokinins, or ethylene are also involved in the stomatal response to stresses. As a part of the drought response, ABA may interact with jasmonic acid and nitric oxide in order to stimulate stomatal closure. In addition, the regulation of gene expression in response to ABA involves genes that are related to ethylene, cytokinins, and auxin signaling. In this paper, recent findings on phytohormone crosstalk, changes in signaling pathways including the expression of specific genes and their impact on modulating stress response through the closing or opening of stomata, together with the highlights of gaps that need to be elucidated in the signaling network of stomatal regulation, are reviewed.

Keywords
ABA abiotic stress crosstalk guard cells jasmonic acid phytohormones stomata
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Daszkowska-Golec Agata
Department of Genetics, Faculty of Biology and Environmental Protection, University of Silesia Katowice, Poland.
Szarejko Iwona
References (135)
135 references, click to expand
  1. Involvement of endogenous abscisic acid in methyl jasmonate-induced stomatal closure in Arabidopsis.
    Plant Physiol. 2011 May;156(1):430-8 PMID: 21402795
  2. Abscisic acid biosynthesis in tomato: regulation of zeaxanthin epoxidase and 9-cis-epoxycarotenoid dioxygenase mRNAs by light/dark cycles, water stress and abscisic acid.
    Plant Mol Biol. 2000 Apr;42(6):833-45 PMID: 10890531
  3. Are diurnal patterns of stomatal movement the result of alternating metabolism of endogenous guard cell ABA and accumulation of ABA delivered to the apoplast around guard cells by transpiration?
    J Exp Bot. 2004 Sep;55(405):1963-76 PMID: 15310824
  4. Type 2C protein phosphatases directly regulate abscisic acid-activated protein kinases in Arabidopsis.
    Proc Natl Acad Sci U S A. 2009 Oct 13;106(41):17588-93 PMID: 19805022
  5. Roles of four Arabidopsis U-box E3 ubiquitin ligases in negative regulation of abscisic acid-mediated drought stress responses.
    Plant Physiol. 2012 Sep;160(1):556-68 PMID: 22829319
  6. The Arabidopsis NFYA5 transcription factor is regulated transcriptionally and posttranscriptionally to promote drought resistance.
    Plant Cell. 2008 Aug;20(8):2238-51 PMID: 18682547
  7. Guard-cell signalling for hydrogen peroxide and abscisic acid.
    New Phytol. 2008;178(4):703-718 PMID: 18373649
  8. Mechanisms of stomatal development: an evolutionary view.
    Evodevo. 2012 Jul 06;3(1):11 PMID: 22691547
  9. Abscisic acid inhibits type 2C protein phosphatases via the PYR/PYL family of START proteins.
    Science. 2009 May 22;324(5930):1068-71 PMID: 19407142
  10. ABC transporter AtABCG25 is involved in abscisic acid transport and responses.
    Proc Natl Acad Sci U S A. 2010 Feb 2;107(5):2361-6 PMID: 20133881
  11. Elucidation of the indirect pathway of abscisic acid biosynthesis by mutants, genes, and enzymes.
    Plant Physiol. 2003 Apr;131(4):1591-601 PMID: 12692318
  12. Ethylene-induced stomatal closure in Arabidopsis occurs via AtrbohF-mediated hydrogen peroxide synthesis.
    Plant J. 2006 Sep;47(6):907-16 PMID: 16961732
  13. Jasmonate perception by inositol-phosphate-potentiated COI1-JAZ co-receptor.
    Nature. 2010 Nov 18;468(7322):400-5 PMID: 20927106
  14. Plant morphogenesis: long-distance coordination and local patterning.
    Curr Opin Plant Biol. 2001 Feb;4(1):57-62 PMID: 11163169
  15. Calcium-Activated K+ Channels and Calcium-Induced Calcium Release by Slow Vacuolar Ion Channels in Guard Cell Vacuoles Implicated in the Control of Stomatal Closure.
    Plant Cell. 1994 May;6(5):669-683 PMID: 12244253
  16. The 9-cis-epoxycarotenoid cleavage reaction is the key regulatory step of abscisic acid biosynthesis in water-stressed bean.
    Proc Natl Acad Sci U S A. 1999 Dec 21;96(26):15354-61 PMID: 10611388
  17. Ethylene inhibits abscisic acid-induced stomatal closure in Arabidopsis.
    Plant Physiol. 2005 Aug;138(4):2337-43 PMID: 16024687
  18. The Arabidopsis bHLH transcription factors MYC3 and MYC4 are targets of JAZ repressors and act additively with MYC2 in the activation of jasmonate responses.
    Plant Cell. 2011 Feb;23(2):701-15 PMID: 21335373
  19. The slow and the quick anion conductance in whole guard cells: their voltage-dependent alternation, and the modulation of their activities by abscisic acid and CO2.
    Planta. 2003 Aug;217(4):639-50 PMID: 12712336
  20. Role of farnesyltransferase in ABA regulation of guard cell anion channels and plant water loss.
    Science. 1998 Oct 9;282(5387):287-90 PMID: 9765153
  21. Brassinosteroid confers tolerance in Arabidopsis thaliana and Brassica napus to a range of abiotic stresses.
    Planta. 2007 Jan;225(2):353-64 PMID: 16906434
  22. Use of confocal laser as light source reveals stomata-autonomous function.
    PLoS One. 2006 Dec 20;1:e36 PMID: 17183664
  23. Overexpression of AtMYB44 enhances stomatal closure to confer abiotic stress tolerance in transgenic Arabidopsis.
    Plant Physiol. 2008 Feb;146(2):623-35 PMID: 18162593
  24. A unique short-chain dehydrogenase/reductase in Arabidopsis glucose signaling and abscisic acid biosynthesis and functions.
    Plant Cell. 2002 Nov;14(11):2723-43 PMID: 12417697
  25. ATP binding cassette modulators control abscisic acid-regulated slow anion channels in guard cells
    Plant Cell. 1999 Jun;11(6):1141-52 PMID: 10368184
  26. The Arabidopsis calcium-dependent protein kinase, CPK6, functions as a positive regulator of methyl jasmonate signaling in guard cells.
    Plant Physiol. 2011 Jan;155(1):553-61 PMID: 20978156
  27. Inositol trisphosphate receptor in higher plants: is it real?
    J Exp Bot. 2007;58(3):361-76 PMID: 17150991
  28. Activation of glucosidase via stress-induced polymerization rapidly increases active pools of abscisic acid.
    Cell. 2006 Sep 22;126(6):1109-20 PMID: 16990135
  29. Jasmonate signaling: a conserved mechanism of hormone sensing.
    Curr Opin Plant Biol. 2008 Aug;11(4):428-35 PMID: 18583180
  30. The short-chain alcohol dehydrogenase ABA2 catalyzes the conversion of xanthoxin to abscisic aldehyde.
    Plant Cell. 2002 Aug;14(8):1833-46 PMID: 12172025
  31. Phosphorylation of the Arabidopsis AtrbohF NADPH oxidase by OST1 protein kinase.
    FEBS Lett. 2009 Sep 17;583(18):2982-6 PMID: 19716822
  32. Grapes on steroids. Brassinosteroids are involved in grape berry ripening.
    Plant Physiol. 2006 Jan;140(1):150-8 PMID: 16361521
  33. Repetitive increases in cytosolic Ca2+ of guard cells by abscisic acid activation of nonselective Ca2+ permeable channels.
    Proc Natl Acad Sci U S A. 1990 Dec;87(23):9305-9 PMID: 2174559
  34. Stomatal development in Arabidopsis.
    Arabidopsis Book. 2002;1:e0066 PMID: 22303215
  35. CDPKs CPK6 and CPK3 function in ABA regulation of guard cell S-type anion- and Ca(2+)-permeable channels and stomatal closure.
    PLoS Biol. 2006 Oct;4(10):e327 PMID: 17032064
  36. KAT1 is not essential for stomatal opening.
    Proc Natl Acad Sci U S A. 2001 Feb 27;98(5):2917-21 PMID: 11226341
  37. A nuclear factor regulates abscisic acid responses in Arabidopsis.
    Plant Physiol. 2009 Nov;151(3):1433-45 PMID: 19759343
  38. The vacuolar Ca2+-activated channel TPC1 regulates germination and stomatal movement.
    Nature. 2005 Mar 17;434(7031):404-8 PMID: 15772667
  39. Differential abscisic acid regulation of guard cell slow anion channels in Arabidopsis wild-type and abi1 and abi2 mutants.
    Plant Cell. 1997 Mar;9(3):409-23 PMID: 9090884
  40. Hydrogen peroxide is involved in abscisic acid-induced stomatal closure in Vicia faba.
    Plant Physiol. 2001 Aug;126(4):1438-48 PMID: 11500543
  41. CO2 regulator SLAC1 and its homologues are essential for anion homeostasis in plant cells.
    Nature. 2008 Mar 27;452(7186):483-6 PMID: 18305482
  42. The Arabidopsis outward K+ channel GORK is involved in regulation of stomatal movements and plant transpiration.
    Proc Natl Acad Sci U S A. 2003 Apr 29;100(9):5549-54 PMID: 12671068
  43. In the light of stomatal opening: new insights into 'the Watergate'.
    New Phytol. 2005 Sep;167(3):665-91 PMID: 16101906
  44. Three SnRK2 protein kinases are the main positive regulators of abscisic acid signaling in response to water stress in Arabidopsis.
    Plant Cell Physiol. 2009 Dec;50(12):2123-32 PMID: 19880399
  45. ABA depolarizes guard cells in intact plants, through a transient activation of R- and S-type anion channels.
    Plant J. 2004 Feb;37(4):578-88 PMID: 14756768
  46. Transgenic expression of MYB15 confers enhanced sensitivity to abscisic acid and improved drought tolerance in Arabidopsis thaliana.
    J Genet Genomics. 2009 Jan;36(1):17-29 PMID: 19161942
  47. Expression of an inward-rectifying potassium channel by the Arabidopsis KAT1 cDNA.
    Science. 1992 Dec 4;258(5088):1654-8 PMID: 8966547
  48. JAZ repressor proteins are targets of the SCF(COI1) complex during jasmonate signalling.
    Nature. 2007 Aug 9;448(7154):661-5 PMID: 17637677
  49. Calcium channels activated by hydrogen peroxide mediate abscisic acid signalling in guard cells.
    Nature. 2000 Aug 17;406(6797):731-4 PMID: 10963598
  50. The identity of plant glutamate receptors.
    Science. 2001 May 25;292(5521):1486-7 PMID: 11379626
  51. Nitric oxide is a novel component of abscisic acid signaling in stomatal guard cells.
    Plant Physiol. 2002 Jan;128(1):13-6 PMID: 11788747
  52. The mechanical diversity of stomata and its significance in gas-exchange control.
    Plant Physiol. 2007 Jan;143(1):78-87 PMID: 17114276
  53. The jasmonate pathway: the ligand, the receptor and the core signalling module.
    Curr Opin Plant Biol. 2009 Oct;12(5):539-47 PMID: 19716757
  54. The coronatine-insensitive 1 mutation reveals the hormonal signaling interaction between abscisic acid and methyl jasmonate in Arabidopsis guard cells. Specific impairment of ion channel activation and second messenger production.
    Plant Physiol. 2007 Mar;143(3):1398-407 PMID: 17220365
  55. Cytoplasmic alkalization precedes reactive oxygen species production during methyl jasmonate- and abscisic acid-induced stomatal closure.
    Plant Physiol. 2004 Apr;134(4):1536-45 PMID: 15064385
  56. Comparative studies on the Arabidopsis aldehyde oxidase (AAO) gene family revealed a major role of AAO3 in ABA biosynthesis in seeds.
    Plant Cell Physiol. 2004 Nov;45(11):1694-703 PMID: 15574845
  57. The ATP binding cassette transporter AtMRP5 modulates anion and calcium channel activities in Arabidopsis guard cells.
    J Biol Chem. 2007 Jan 19;282(3):1916-24 PMID: 17098742
  58. Heteromerization of Arabidopsis Kv channel alpha-subunits: Data and prospects.
    Plant Signal Behav. 2008 Sep;3(9):622-5 PMID: 19513252
  59. GUARD CELL SIGNAL TRANSDUCTION.
    Annu Rev Plant Physiol Plant Mol Biol. 2001 Jun;52:627-658 PMID: 11337411
  60. A role for brassinosteroids in germination in Arabidopsis.
    Plant Physiol. 2001 Feb;125(2):763-9 PMID: 11161033
  61. Central Roles for Potassium and Sucrose in Guard-Cell Osmoregulation.
    Plant Physiol. 1996 Aug;111(4):1051-1057 PMID: 12226347
  62. ABSCISIC ACID SIGNAL TRANSDUCTION.
    Annu Rev Plant Physiol Plant Mol Biol. 1998 Jun;49:199-222 PMID: 15012233
  63. Guard cell inward K+ channel activity in arabidopsis involves expression of the twin channel subunits KAT1 and KAT2.
    J Biol Chem. 2001 Feb 2;276(5):3215-21 PMID: 11042178
  64. Constitutive activation of a plasma membrane H(+)-ATPase prevents abscisic acid-mediated stomatal closure.
    EMBO J. 2007 Jul 11;26(13):3216-26 PMID: 17557075
  65. K+ channels of stomatal guard cells: bimodal control of the K+ inward-rectifier evoked by auxin.
    Plant J. 1994 Jan;5(1):55-68 PMID: 8130798
  66. Arabidopsis mutant deficient in 3 abscisic acid-activated protein kinases reveals critical roles in growth, reproduction, and stress.
    Proc Natl Acad Sci U S A. 2009 May 19;106(20):8380-5 PMID: 19420218
  67. Drought induction of Arabidopsis 9-cis-epoxycarotenoid dioxygenase occurs in vascular parenchyma cells.
    Plant Physiol. 2008 Aug;147(4):1984-93 PMID: 18550687
  68. Isolation and Quantitation of beta-d-Glucopyranosyl Abscisate from Leaves of Xanthium and Spinach.
    Plant Physiol. 1982 Jul;70(1):227-31 PMID: 16662451
  69. The nitrate transporter AtNRT1.1 (CHL1) functions in stomatal opening and contributes to drought susceptibility in Arabidopsis.
    Plant Cell. 2003 Jan;15(1):107-17 PMID: 12509525
  70. Different plant hormones regulate similar processes through largely nonoverlapping transcriptional responses.
    Cell. 2006 Aug 11;126(3):467-75 PMID: 16901781
  71. Carbonic anhydrases are upstream regulators of CO2-controlled stomatal movements in guard cells.
    Nat Cell Biol. 2010 Jan;12(1):87-93; sup pp 1-18 PMID: 20010812
  72. Guard cell anion channel SLAC1 is regulated by CDPK protein kinases with distinct Ca2+ affinities.
    Proc Natl Acad Sci U S A. 2010 Apr 27;107(17):8023-8 PMID: 20385816
  73. G protein regulation of ion channels and abscisic acid signaling in Arabidopsis guard cells.
    Science. 2001 Jun 15;292(5524):2070-2 PMID: 11408655
  74. Ca2+ channels at the plasma membrane of stomatal guard cells are activated by hyperpolarization and abscisic acid.
    Proc Natl Acad Sci U S A. 2000 Apr 25;97(9):4967-72 PMID: 10781106
  75. Mechanisms of stomatal development.
    Annu Rev Plant Biol. 2012;63:591-614 PMID: 22404473
  76. AtALMT12 represents an R-type anion channel required for stomatal movement in Arabidopsis guard cells.
    Plant J. 2010 Sep;63(6):1054-62 PMID: 20626656
  77. Nitric oxide, stomatal closure, and abiotic stress.
    J Exp Bot. 2008;59(2):165-76 PMID: 18332225
  78. Stomatal development: a plant's perspective on cell polarity, cell fate transitions and intercellular communication.
    Development. 2012 Oct;139(20):3683-92 PMID: 22991435
  79. Characterization of the plasma-membrane H(+)-ATPase from Vicia faba guard cells : Modulation by extracellular factors and seasonal changes.
    Planta. 1992 Sep;188(2):206-14 PMID: 24178256
  80. Cytokinin and auxin inhibit abscisic acid-induced stomatal closure by enhancing ethylene production in Arabidopsis.
    J Exp Bot. 2006;57(10):2259-66 PMID: 16798847
  81. Stomatal development: new signals and fate determinants.
    Curr Opin Plant Biol. 2009 Feb;12(1):29-35 PMID: 19042149
  82. Cloning and characterization of the abscisic acid-specific glucosyltransferase gene from adzuki bean seedlings.
    Plant Physiol. 2002 Jul;129(3):1285-95 PMID: 12114582
  83. Disruption of a guard cell-expressed protein phosphatase 2A regulatory subunit, RCN1, confers abscisic acid insensitivity in Arabidopsis.
    Plant Cell. 2002 Nov;14(11):2849-61 PMID: 12417706
  84. Arabidopsis mutants of AtABCG22, an ABC transporter gene, increase water transpiration and drought susceptibility.
    Plant J. 2011 Sep;67(5):885-94 PMID: 21575091
  85. Central functions of bicarbonate in S-type anion channel activation and OST1 protein kinase in CO2 signal transduction in guard cell.
    EMBO J. 2011 Apr 20;30(8):1645-58 PMID: 21423149
  86. Inhibition of photosynthesis by ethylene-a stomatal effect.
    Plant Physiol. 1982 Aug;70(2):598-601 PMID: 16662540
  87. Impaired sucrose-induction mutants reveal the modulation of sugar-induced starch biosynthetic gene expression by abscisic acid signalling.
    Plant J. 2001 May;26(4):421-33 PMID: 11439129
  88. Transient expression of AtNCED3 and AAO3 genes in guard cells causes stomatal closure in Vicia faba.
    J Plant Res. 2008 Jan;121(1):125-31 PMID: 18060348
  89. The relationship of drought-related gene expression in Arabidopsis thaliana to hormonal and environmental factors.
    J Exp Bot. 2008;59(11):2991-3007 PMID: 18552355
  90. Arabidopsis calcium-dependent protein kinase CPK10 functions in abscisic acid- and Ca2+-mediated stomatal regulation in response to drought stress.
    Plant Physiol. 2010 Nov;154(3):1232-43 PMID: 20805328
  91. PYR/PYL/RCAR family members are major in-vivo ABI1 protein phosphatase 2C-interacting proteins in Arabidopsis.
    Plant J. 2010 Jan;61(2):290-9 PMID: 19874541
  92. Arabidopsis protein kinase PKS5 inhibits the plasma membrane H+ -ATPase by preventing interaction with 14-3-3 protein.
    Plant Cell. 2007 May;19(5):1617-34 PMID: 17483306
  93. Control of abscisic acid synthesis.
    J Exp Bot. 2000 Sep;51(350):1563-74 PMID: 11006307
  94. Inhibitors of ethylene synthesis inhibit auxin-induced stomatal opening in epidermis detached from leaves of Vicia faba L.
    Plant Cell Physiol. 2001 Feb;42(2):223-30 PMID: 11230577
  95. Hormonal changes induced by partial rootzone drying of irrigated grapevine.
    J Exp Bot. 2000 Sep;51(350):1627-34 PMID: 11006312
  96. ABA controls H₂O₂ accumulation through the induction of OsCATB in rice leaves under water stress.
    Plant Cell Physiol. 2011 Apr;52(4):689-98 PMID: 21398647
  97. SLAC1 is required for plant guard cell S-type anion channel function in stomatal signalling.
    Nature. 2008 Mar 27;452(7186):487-91 PMID: 18305484
  98. Extracellular beta-glucosidase activity in barley involved in the hydrolysis of ABA glucose conjugate in leaves.
    J Exp Bot. 2000 May;51(346):937-44 PMID: 10948220
  99. Specific oxidative cleavage of carotenoids by VP14 of maize.
    Science. 1997 Jun 20;276(5320):1872-4 PMID: 9188535
  100. Regulators of PP2C phosphatase activity function as abscisic acid sensors.
    Science. 2009 May 22;324(5930):1064-8 PMID: 19407143
  101. Biochemical characterization of plasma membrane H+-ATPase activation in guard cell protoplasts of Arabidopsis thaliana in response to blue light.
    Plant Cell Physiol. 2005 Jun;46(6):955-63 PMID: 15821287
  102. The Arabidopsis ABA-deficient mutant aba4 demonstrates that the major route for stress-induced ABA accumulation is via neoxanthin isomers.
    Plant J. 2007 Jun;50(5):810-24 PMID: 17470058
  103. The regulatory domain of SRK2E/OST1/SnRK2.6 interacts with ABI1 and integrates abscisic acid (ABA) and osmotic stress signals controlling stomatal closure in Arabidopsis.
    J Biol Chem. 2006 Feb 24;281(8):5310-8 PMID: 16365038
  104. Interaction with ethylene: changing views on the role of abscisic acid in root and shoot growth responses to water stress.
    Plant Cell Environ. 2002 Feb;25(2):211-222 PMID: 11841664
  105. Calcium-dependent protein kinase CPK21 functions in abiotic stress response in Arabidopsis thaliana.
    Mol Plant. 2011 Jan;4(1):83-96 PMID: 20978086
  106. The Clickable Guard Cell, Version II: Interactive Model of Guard Cell Signal Transduction Mechanisms and Pathways.
    Arabidopsis Book. 2008;6:e0114 PMID: 22303239
  107. Role of an Arabidopsis AP2/EREBP-type transcriptional repressor in abscisic acid and drought stress responses.
    Plant Cell. 2005 Aug;17(8):2384-96 PMID: 15994908
  108. The JAZ family of repressors is the missing link in jasmonate signalling.
    Nature. 2007 Aug 9;448(7154):666-71 PMID: 17637675
  109. Molecular identification of zeaxanthin epoxidase of Nicotiana plumbaginifolia, a gene involved in abscisic acid biosynthesis and corresponding to the ABA locus of Arabidopsis thaliana.
    EMBO J. 1996 May 15;15(10):2331-42 PMID: 8665840
  110. Abscisic acid and stomatal closure: a hydraulic conductance conundrum?
    New Phytol. 2013 Jan;197(1):6-8 PMID: 23181678
  111. The Arabidopsis cytochrome P450 CYP707A encodes ABA 8'-hydroxylases: key enzymes in ABA catabolism.
    EMBO J. 2004 Apr 7;23(7):1647-56 PMID: 15044947
  112. Stomatal opening quantitatively related to potassium transport: evidence from electron probe analysis.
    Plant Physiol. 1971 Oct;48(4):447-53 PMID: 16657817
  113. Jasmonates: an update on biosynthesis, signal transduction and action in plant stress response, growth and development.
    Ann Bot. 2007 Oct;100(4):681-97 PMID: 17513307
  114. ABA biosynthesis and degradation contributing to ABA homeostasis during barley seed development under control and terminal drought-stress conditions.
    J Exp Bot. 2011 May;62(8):2615-32 PMID: 21289079
  115. Control of volume and turgor in stomatal guard cells.
    J Membr Biol. 2006 Mar;210(2):131-42 PMID: 16868673
  116. Localization, ion channel regulation, and genetic interactions during abscisic acid signaling of the nuclear mRNA cap-binding protein, ABH1.
    Plant Physiol. 2002 Nov;130(3):1276-87 PMID: 12427994
  117. BRASSINOSTEROIDS: Essential Regulators of Plant Growth and Development.
    Annu Rev Plant Physiol Plant Mol Biol. 1998 Jun;49:427-451 PMID: 15012241
  118. The abscisic acid receptor PYR1 in complex with abscisic acid.
    Nature. 2009 Dec 3;462(7273):665-8 PMID: 19898494
  119. Early abscisic acid signal transduction mechanisms: newly discovered components and newly emerging questions.
    Genes Dev. 2010 Aug 15;24(16):1695-708 PMID: 20713515
  120. Arabidopsis OST1 protein kinase mediates the regulation of stomatal aperture by abscisic acid and acts upstream of reactive oxygen species production.
    Plant Cell. 2002 Dec;14(12):3089-99 PMID: 12468729
  121. ABA-induced NO generation and stomatal closure in Arabidopsis are dependent on H2O2 synthesis.
    Plant J. 2006 Jan;45(1):113-22 PMID: 16367958
  122. Strong regulation of slow anion channels and abscisic acid signaling in guard cells by phosphorylation and dephosphorylation events.
    Proc Natl Acad Sci U S A. 1995 Oct 10;92(21):9535-9 PMID: 11607582
  123. A guard-cell-specific MYB transcription factor regulates stomatal movements and plant drought tolerance.
    Curr Biol. 2005 Jul 12;15(13):1196-200 PMID: 16005291
  124. Cyclic nucleotide-gated ion channels: an extended family with diverse functions.
    Annu Rev Physiol. 1996;58:395-426 PMID: 8815801
  125. Control of guard cell ion channels by hydrogen peroxide and abscisic acid indicates their action through alternate signaling pathways.
    Plant Physiol. 2003 Feb;131(2):385-8 PMID: 12586862
  126. NADPH oxidase AtrbohD and AtrbohF genes function in ROS-dependent ABA signaling in Arabidopsis.
    EMBO J. 2003 Jun 2;22(11):2623-33 PMID: 12773379
  127. Does water deficit stress promote ethylene synthesis by intact plants?
    Plant Physiol. 1990 Dec;94(4):1616-24 PMID: 16667895
  128. Guard cell abscisic acid signalling and engineering drought hardiness in plants.
    Nature. 2001 Mar 15;410(6826):327-30 PMID: 11268200
  129. Guard cell signal transduction network: advances in understanding abscisic acid, CO2, and Ca2+ signaling.
    Annu Rev Plant Biol. 2010;61:561-91 PMID: 20192751
  130. AtMYB61, an R2R3-MYB transcription factor controlling stomatal aperture in Arabidopsis thaliana.
    Curr Biol. 2005 Jul 12;15(13):1201-6 PMID: 16005292
  131. Interactions between the ABI1 and the ectopically expressed ABI3 genes in controlling abscisic acid responses in Arabidopsis vegetative tissues.
    Plant J. 1997 Apr;11(4):693-702 PMID: 9161030
  132. Promotion of Stomatal Opening by Indoleacetic Acid and Ethrel in Epidermal Strips of Vicia faba L.
    Plant Physiol. 1987 Oct;85(2):318-21 PMID: 16665694
  133. Ethylene: a gaseous signal molecule in plants.
    Annu Rev Cell Dev Biol. 2000;16:1-18 PMID: 11031228
  134. AtPUB19, a U-box E3 ubiquitin ligase, negatively regulates abscisic acid and drought responses in Arabidopsis thaliana.
    Mol Plant. 2011 Nov;4(6):938-46 PMID: 21502661
  135. A steep dependence of inward-rectifying potassium channels on cytosolic free calcium concentration increase evoked by hyperpolarization in guard cells
    Plant Physiol. 1999 Jan;119(1):277-88 PMID: 9880370
Article Info
Journal
Frontiers in plant science
Abbr.
Front Plant Sci
ISSN
1664-462X
Published
2013-00-00
Epub
2013-00-13
Pages
138
Language
English
Region
Switzerland
NLM ID
101568200
PMCID
PMC3652521
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