Abstract
References
Addicott, F. T., Lyon, J. L. (1969) Physiology of abscisic acid and related substances. Annu. Rev. Plant Physiol 20: 139-164. Allen, G. J., Kuchitsu, K., Chu, S. P., Murata, Y., Schroeder, J. I. (1999) Arabidopsis abi1-1 and abi2-1 phosphatase mutations reduce abscisic acid-induced cytoplasmic calcium rises in guard cells. Plant Cell 11:1785-1798. Alvarez, M. E., Pennell, R. I., Meijer, P. J., Ishikawa, A., Dixon, R. A., Lamb, C. (1998) Reactive oxygen intermediates mediate a systemic signal network in the establishment of plant immunity. Cell 92:773-784. Anderberg, R. J., Walker-Simmons, M. K. (1992) Isolation of a wheat cDNA clone for an abscisic acid-inducible transcript with homology to protein kinases. Proc Natl Acad Sci USA 89:10183-10187. Anderson, J. P., Badruzsaufari, E., Schenk, P. M., Manners, J. M., Desmond, O. J., Ehlert, C., Maclean, D. J., Ebert, P. R., 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. Asselbergh, B., De Vleesschauwer, D., Hofte, M. (2008) Global switches and fine-tuning-ABA modulates plant pathogen defense. Mol Plant Microbe Interact 2:709-719. Assmann, S. M. (2003) OPEN STOMATA1 opens the door to ABA signaling in Arabidopsis guard cells. Trends Plant Sci 8:151-153. Becker, D., Hoth, S., Ache, P., Wenkel, S., Roelfsema, M. R., Meyerhoff, O., Hartung, W., Hedrich, R. (2003) Regulation of the ABA-sensitive Arabidopsis potassium channel gene GORK in response to water stress. FEBS Lett 554:119-126. Blatt, M. R., Thiel, G. (1994) K+channels of stomatal guard cells: bimodal control of the K+ inward-rectifier evoked by auxin. Plant J 5:55-68. Boudsocq, M., Barbier-Brygoo, H., Lauriere, C. (2004) Identification of nine sucrose nonfermenting 1-related protein kinases 2 activated by hyperosmotic and saline stresses in Arabidopsis thaliana. J Biol Chem 279:41758-41766. Bright, J., Desikan, R., Hancock, J. T., Weir, I. S., Neill, S. J. (2006) ABA-induced NO generation and stomatal closure in Arabidopsis are dependent on H2O2 synthesis. Plant J 45:113-122. Cheng, W.-H., Endo, A., Zhou, L., Penney, J., Chen, H.-C., Arroyo, A., Nambara, E., Asami, T., Seo, M., Koshiba, T., Sheen, J. (2002) A unique short-chain dehydrogenase/reductase in Arabidopsis glucose signaling and abscisic acid biosynthesis and functions. Plant Cell 14:2723-1743. Chinnusamy, V., Gong, Z., Zhu, J. K. (2008) Abscisic acid-mediated epigenetic processes in plant development and stress responses. J. Integr. Plant Biol 50:1187-1195. Cornforth, J. W., Milborrow, B. V., Ryback, G. (1965) Synthesis of (+/‒)-abscisin II. Nature 206:715. Cornforth, J. W., Milborrow, B. V., Ryback, G., Wareing, P. F. (1965) Chemistry and physiology of dormins in sycamore: identity of sycamore dormin with Abscisin II. Nature 205:1269-1270. Cutler, S. R., Rodriguez, P. L., Finkelstein, R. R., Abrams, S. R. (2010) Abscisic acid: emergence of a core signaling network. Annu Rev Plant Biol 61:651-679. Delaney, T. P., Uknes, S., Vernooij, B., Friedrich, L., Weymann, K., Negrotto, D., Gaffney, T., Gut-Rella, M., Kessmann, H., Ward, E., Ryals, J. (1994) A central role of salicylic acid in plant disease resistance. Science 266: 1247-1250. Desikan, R., Griffiths, R., Hancock, J., Neill, S. (2002) A new role for an old enzyme: nitrate reductase-mediated nitric oxide generation is required for abscisic acid-induced stomatal closure in Arabidopsis thaliana. Proc Natl Acad Sci USA 99:16314-16318. Fan, J., Hill, L., Crooks, C., Doerner, P., Lamb, C. (2009) Abscisic acid has a key role in modulating diverse plant-pathogen interactions. Plant Physiol 150:1750-1761. Finkelstein, R. R., Somerville, C. R. (1990) Three classes of abscisic acid (ABA)-insensitive mutations of Arabidopsis define genes that control overlapping subsets of ABA responses. Plant Physiol 94:1172-1179. Finkelstein, R. R., Gampala, S. S., Rock, C. D. (2002) Abscisic acid signaling in seeds and seedlings. Plant Cell 14: S15-45. Fujii, H., Zhu, J. K. (2009) Arabidopsis mutant deficient in 3 abscisic acid-activated protein kinases reveals critical roles in growth, reproduction, and stress. Proc Natl Acad Sci USA 106:8380-8385. Fujii, H., Chinnusamy, V., Rodrigues, A., Rubio, S., Antoni, R., Park, S. Y., Cutler, S. R., Sheen, J., Rodriguez, P. L., Zhu, J. K. (2009) In vitro reconstitution of an abscisic acid signalling pathway. Nature 462:660-664. Fujii, H., Verslues, P. E., Zhu, J. K. (2007) Identification of two protein kinases required for abscisic acid regulation of seed germination, root growth, and gene expression in Arabidopsis. Plant Cell 19:485-494. Fujita, Y., Nakashima, K., Yoshida, T., Katagiri, T., Kidokoro, S., Kanamori, N., Umezawa, T., Fujita, M., Maruyama, K., Ishiyama, K., Kobayashi, M., Nakasone, S., Yamada, K., Ito, T., Shinozaki, K., Yamaguchi- Shinozaki, K. (2009) Three SnRK2 protein kinases are the main positive regulators of abscisic acid signaling in response to water stress in Arabidopsis. Plant Cell Physiol 50:2123-2132. Furihata, T., Maruyama, K., Fujita, Y., Umezawa, T., Yoshida, R., Shinozaki, K., Yamaguchi-Shinozaki, K. (2006) Abscisic acid-dependent multisite phosphorylation regulates the activity of a transcription activator AREB1. Proc Natl Acad Sci USA 103:1988-1993. Gaffney, T., Friedrich, L., Vernooij, B., Negrotto, D., Nye, G., Uknes, S., Ward, E., Kessmann, H., Ryals, J. (1993) Requirement of salicylic Acid for the induction of systemic acquired resistance. Science 261:754-756. Garcia-Mata, C., Gay, R., Sokolovski, S., Hills, A., Lamattina, L., Blatt, M. R. (2003) Nitric oxide regulates K+ and Cl- channels in guard cells through a subset of abscisic acid-evoked signaling pathways. Proc Natl Acad Sci USA 100:11116-11121. Geiger, D., Scherzer, S., Mumm, P., Marten, I., Ache, P., Matschi, S., Liese, A., Wellmann, C., Al-Rasheid, K. A., Grill, E., Romeis, T., Hedrich, R. (2010) Guard cell anion channel SLAC1 is regulated by CDPK protein kinases with distinct Ca2+affinities. Proc Natl Acad Sci USA 107:8023-8028. Geiger, D., Scherzer, S., Mumm, P., Stange, A., Marten, I., Bauer, H., Ache, P., Matschi, S., Liese, A., Al-Rasheid, K. A., Romeis, T., Hedrich, R. (2009) Activity of guard cell anion channel SLAC1 is controlled by drought-stress signaling kinase-phosphatase pair. Proc Natl Acad Sci USA 106:21425-21430. Glazebrook, J. (2005) Contrasting mechanisms of defense against biotrophic and necrotrophic pathogens. Annu Rev Phytopathol 43:205-227. Gomez-Cadenas, A., Verhey, S. D., Holappa, L. D., Shen, Q., Ho, T. H., Walker-Simmons, M. K. (1999) An abscisic acid-induced protein kinase, PKABA1, mediates abscisic acid-suppressed gene expression in barley aleurone layers. Proc Natl Acad Sci USA 96:1767-1772. Gosti, F., Beaudoin, N., Serizet, C., Webb, A. A., Vartanian, N., Giraudat, J. (1999) ABI1 protein phosphatase 2C is a negative regulator of abscisic acid signaling. Plant Cell 11:1897-1910. Guo, Y., Xiong, L., Song, C. P., Gong, D., Halfter, U., Zhu, J. K. (2002) A calcium sensor and its interacting protein kinase are global regulators of abscisic acid signaling in Arabidopsis. Dev Cell 3:233-244. Himmelbach, A., Hoffmann, T., Leube, M., Hohener, B., Grill, E. (2002) Homeodomain protein ATHB6 is a target of the protein phosphatase ABI1 and regulates hormone responses in Arabidopsis. EMBO J 21:3029-3038. Hrabak, E. M., Chan, C. W., Gribskov, M., Harper, J. F., Choi, J. H., Halford, N., Kudla, J., Luan, S., Nimmo, H. G., Sussman, M. R., Thomas, M., Walker-Simmons, K., Zhu, J. K., Harmon, A. C. (2003) The Arabidopsis CDPK-SnRK superfamily of protein kinases. Plant Physiol 132:666-680. Huang, D., Jaradat, M. R., Wu, W., Ambrose, S. J., Ross, A. R., Abrama, S. R., Cutler, A. J. (2007) Structural analogs of ABA reveal novel features of ABA perception and signaling in Arabidopsis. Plant J 50:414-428. Hubbard, K. E., Nishimura, N., Hitomi, K., Getzoff, E. D., Schroeder, J. I. (2010) Early abscisic acid signal transduction mechanisms: newly discovered components and newly emerging questions. Genes Dev 24:1695- 1708. Illingworth, C. J. R., Parkes, K. E., Snell, C. R., Mullineaux, P. M., Reynolds, C. A. (2008) Criteria for confirming sequence periodicity identified by Fourier transform analysis: Application to GCR2, a candidate plant GPCR? Biophys Chem 133:28-35. Iuchi, S., Kobayashi, M., Taji, T., Naramoto, M., Seki, M., Kato, T., Tabata, S., Kakubari, Y., Yamaguchi-Shinozaki, K., Shinozaki, K. (2001) Regulation of drought tolerance by gene manipulation of 9-cis-epoxycarotenoid dioxygenase, a key enzyme in abscisic acid biosynthesis in Arabidopsis. Plant J 27:325-333. Iyer, L. M., Koonin, E. V., Aravind, L. (2001) Adaptations of the helix-grip fold for ligand binding and catalysis in the START domain superfamily. Proteins 4:134-144. Johnson, R. R., Shin, M., Shen, J. Q. (2008) The wheat PKABA1-interacting factor TaABF1 mediates both abscisic acid-suppressed and abscisic acid-induced gene expression in bombarded aleurone cells. Plant Mol Biol 68: 93-103. Johnson, R. R., Wagner, R. L., Verhey, S. D., Walker-Simmons, M. K. (2002) The abscisic acid-responsive kinase PKABA1 interacts with a seed-specific abscisic acid response element-binding factor, TaABF, and phosphor-ylates TaABF peptide sequences. Plant Physiol 130:837-846. Kitahata, N., Nakano, T., Kuchitsu, K., Yoshida, S., Asami, T. (2005) Biotin-labeled abscisic acid as a probe for investigating abscisic acid binding sites on plasma membranes of barley aleurone protoplasts. Bioorgan Med Chem 13:3351-3358. Kobayashi, Y., Murata, M., Minami, H., Yamamoto, S., Kagaya, Y., Hobo, T., Yamamoto, A., Hattori, T. (2005) Abscisic acid-activated SNRK2 protein kinases function in the gene-regulation pathway of ABA signal transduction by phosphorylating ABA response element-binding factors. Plant J 44:939-949. Kobayashi, Y., Yamamoto, S., Minami, H., Kagaya, Y., Hattori, T. (2004) Differential activation of the rice sucrose nonfermenting1-related protein kinase2 family by hyperosmotic stress and abscisic acid. Plant Cell 16:1163- 1177. Koornneef, M., Reuling, G., Karssen, C. M. (1984) The isolation and characterization of abscisic acid-insensitive mutants of Arabidopsis thaliana. Physiol Plant 61:377-383. Kuhn, J. M., Boisson-Dernier, A., Dizon, M. B., Maktabi, M. H., Schroeder, J. I. (2006) The protein phosphatase AtPP2CA negatively regulates abscisic acid signal transduction in Arabidopsis, and effects of abh1 on AtPP2CA mRNA. Plant Physiol 140:127-139. Kushiro, T., Okamoto, M., Nakabayashi, K., Yamagishi, K., Kitamura, S., Asami, T., Hirai, N., Koshiba, T., Kamiya, Y., Nambara, E. (2004) The Arabidopsis cytochrome P450 CYP707A encodes ABA 8'-hydroxylases: key enzymes in ABA catabolism. EMBO J 23:1647-1656. Kwak, J. M., Mori, I. C., Pei, Z. M., Leonhardt, N., Torres, M. A., Dangl, J. L., Bloom, R. E., Bodde, S., Jones, J. D., Schroeder, J. I. (2003) NADPH oxidase AtrbohD and AtrbohF genes function in ROS-dependent ABA signaling in Arabidopsis. EMBO J 22:2623-2633. Lee, S. C., Lan, W., Buchanan, B. B., Luan, S. (2009) A protein kinase-phosphatase pair interacts with an ion channel to regulate ABA signaling in plant guard cells. Proc Natl Acad Sci USA 106:21419-21424. Lee, S. C., Luan, S. (2012) ABA signal transduction at the crossroads of biotic and abiotic stress responses. Plant Cell Environ 35:53-60. Lemtiri-Chlieh, F., MacRobbie, E. A. (1994) Role of calcium in the modulation of Vicia guard cell potassium channels by abscisic acid: a patch-clamp study. J Membr Biol 137:99-107. Leung, J., Merlot, S., Giraudat, J. (1997) The Arabidopsis ABSCISIC ACID-INSENSITIVE2 (ABI2) and ABI1 genes encode homologous protein phosphatases 2C involved in abscisic acid signal transduction. Plant Cell 9:759-771. Leung, J., Orfanidi, S., Chefdor, F., Mezaros, T., Bolte, S., Mizoguchi, T., Shinozaki, K., Giraudat, J., Bogre, L. (2006) Antagonistic interaction between MAP kinase and protein phosphatase 2C in stress recovery. Plant Sci 171:596-606. Levchenko, V., Konrad, K. R., Dietrich, P., Roelfsema, M. R., Hedrich, R. (2005) Cytosolic abscisic acid activates guard cell anion channels without preceding Ca2+signals. Proc Natl Acad Sci USA 102:4203-4208. Li, J., Wang, X. Q., Watson, M. B., Assmann, S. M. (2000) Regulation of abscisic acid-induced stomatal closure and anion channels by guard cell AAPK kinase. Science 287:300-303. Lim, C. W., Baek, W., Lee, S. C. (2017) The pepper RING type E3 ligase, CaAIRF1, regulates the ABA- and drought-signaling via CaADIP1 protein phosphatase degradation. Plant Physiol DOI:10.1104/pp.16.01817. Lim, C. W., Baek, W., Jung, J., Kim J.-H., Lee, S. C. (2015) Function of ABA in stomatal defense against biotic and drought stresses. Int J Mol Sci 16:15251-15270. Lim, C. W., Lee, S. C. (2016) Pepper protein phosphatase type 2C, CaADIP1 and its interacting partner CaRLP1 antagonistically regulate ABA signalling and drought response. Plant Cell Environ 39:1559-1575. Lim, C. W., Luan, S., Lee, S. C. (2014) A prominent role for RCAR3-mediated ABA signaling in response to Pseudomonas syringae pv. tomato DC3000 infection in Arabidopsis. Plant Cell Physiol 55:1691-1703. Lin, B.-L., Wang, H.-J., Wang, J.-S., Zaharia, L. I., Abrams, S. R. (2005) Abscisic acid regulation of heterophylly in Marsilea quadrifolia L.: effects of R-(‒) and S-(+) isomers. J Exp Bot 56:2935-2948. Liu, X., Yue, Y., Li, B., Nie, Y., Li, W., Wu, W. H., Ma, L. (2007) A G protein-coupled receptor is a plasma membrane receptor for the plant hormone abscisic acid. Science 315:1712-1716. Lytle, B. L., Song, J., de la Cruz, N. B., Peterson, F. C., Johnson, K. A., Bingman, C. A., Phillips, G. N., Jr., Volkman, B. F. (2009) Structures of two Arabidopsis thaliana major latex proteins represent novel helix-grip folds. Proteins 76:237-243. 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. McConnell, J. R., Emery, J., Eshed, Y., Bao, N., Bowman, J., Barton, M. K. (2001) Role of PHABULOSA and PHAVOLUTA in determining radial patterning in shoots. Nature 411:709-713. Melcher, K., Ng, L. M., Zhou, X. E., Soon, F. F., Xu, Y., Suino-Powell, K. M., Park, S. Y., Weiner, J. J., Fujii, H., Chinnusamy, V., Kovach, A., Li, J., Wang, Y., Peterson, F.C., Jensen, D. R., Yong, E. L., Volkman, B. F., Cutler, S. R., Zhu, J. K., Xu, H. E. (2009) A gate-latch-lock mechanism for hormone signalling by abscisic acid receptors. Nature 462:602-608. Melotto, M., Underwood, W., He, S. Y. (2008) Role of stomata in plant innate immunity and foliar bacterial diseases. Annu Rev Phytopathol 46:101-122. Melotto, M., Underwood, W., Koczan, J., Nomura, K., He, S. Y. (2006) Plant stomata function in innate immunity against bacterial invasion. Cell 126:969-980. 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. Plant J 2:295-303. Miedema, H., Assmann, S. M. (1996) A membrane-delimited effect of internal pH on the K+outward rectifier ofVicia faba guard cells. J Membr Biol 154:227-237. Milborrow, B. V. (1974) The chemistry and physiology of abscisic acid. Annu Rev Plant Physiol 25:259-307. Miyazono, K., Miyakawa, T., Sawano, Y., Kubota, K., Kang, H. J., Asano, A., Miyauchi, Y., Takahashi, M., Zhi, Y., Fujita, Y., Yoshida, T., Kodaira, K. S., Yamaguchi-Shinozaki, K., Tanokura, M. (2009) Structural basis of abscisic acid signalling. Nature 462:609-614. Moes, D., Himmelbach, A., Korte, A., Haberer, G., Grill, E. (2008) Nuclear localization of the mutant protein phosphatase abi1 is required for insensitivity towards ABA responses in Arabidopsis. Plant J. 54:806-819. Morgan, P. W., Drew, M. C. (1997). Ethylene and plant responses to stress. Physiol Plant 100:620-630. Mosher, S., Moeder, W., Nishimura, N., Jikumaru, Y., Joo, S. H., Urquhart, W., Klessig, D. F., Kim, S. K., Nambara, E., Yoshioka, K. (2010) The lesion-mimic mutant cpr22 shows alterations in abscisic acid signaling and abscisic acid insensitivity in a salicylic acid-dependent manner. Plant Physiol 152:1901-1913. Murata, Y., Pei, Z. M., Mori, I. C., Schroeder, J. (2001) Abscisic acid activation of plasma membrane Ca2+channels in guard cells requires 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. Mustilli, A. C., Merlot, S., Vavasseur, A., Fenzi, F., Giraudat, J. (2002) Arabidopsis OST1 protein kinase mediates the regulation of stomatal aperture by abscisic acid and acts upstream of reactive oxygen species production. Plant Cell 14:3089-3099. Nakashima, K., Fujita, Y., Kanamori, N., Katagiri, T., Umezawa, T., Kidokoro, S., Maruyama, K., Yoshida, T., Ishiyama, K., Kobayashi, M., Shinozaki, K., Yamaguchi-Shinozaki, K. (2009) Three Arabidopsis SnRK2 protein kinases, SRK2D/SnRK2.2, SRK2E/SnRK2.6/OST1 and SRK2I/SnRK2.3, involved in ABA signaling are essential for the control of seed development and dormancy. Plant Cell Physiol 50:1345-1363. Nambara, E., Marion-Poll, A. (2005) Abscisic acid biosynthesis and catabolism. Annu Rev Plant Biol 5:165-185. Nambara, E., Suzuki, M., Abrams, S., McCarty, D. R., Kamiya, Y., McCourt, P. (2002) A screen for genes that function in abscisic acid signaling in Arabidopsis thaliana. Genetics 161:1247-1255. Negi, J., Matsuda, O., Nagasawa, T., Oba, Y., Takahashi, H., Kawai-Yamada, M., Uchimiya, H., Hashimoto, M., Iba, K. (2008) CO2 regulator SLAC1 and its homologues are essential for anion homeostasis in plant cells. Nature 45:483-486. Neill, S. J., Desikan, R., Clarke, A., Hancock, J. T. (2002) Nitric oxide is a novel component of abscisic acid signaling in stomatal guard cells. Plant Physiol 128:13-16. Neill, S., Barros, R., Bright, J., Desikan, R., Hancock, J., Harrison, J., Morris, P., Ribeiro, D., Wilson, I. (2008) Nitric oxide, stomatal closure, and abiotic stress. J Exp Bot 59:165-176. Nilson, S. E., Assmann, S. M. (2007) The control of transpiration. Insights from Arabidopsis. Plant Physiol 143: 19-27. Nishimura, N., Hitomi, K., Arvai, A. S., Rambo, R. P., Hitomi, C., Cutler, S. R., Schroeder, J. I., Getzoff, E. D. (2009) Structural mechanism of abscisic acid binding and signaling by dimeric PYR1. Science 326:1373-1379. Nishimura, N., Sarkeshik, A., Nito, K., Park, S. Y., Wang, A., Carvalho, P. C., Lee, S., Caddell, D. F., Cutler, S. R., Chory, J., Yates, J. R., Schroeder, J. I. (2010) PYR/PYL/RCAR family members are major in-vivo ABI1 protein phosphatase 2C-interacting proteins in Arabidopsis. Plant J 61:290-299. Nishimura, N., Yoshida, T., Kitahata, N., Asami, T., Shinozaki, K., Hirayama, T. (2007) ABA-Hypersensitive Germination1 encodes a protein phosphatase 2C, an essential component of abscisic acid signaling in Arabidopsis seed. Plant J 50:935-949. Nishimura, N., Yoshida, T., Murayama, M., Asami, T., Shinozaki, K., Hirayama, T. (2004) Isolation and characterization of novel mutants affecting the abscisic acid sensitivity of Arabidopsis germination and seedling growth. Plant Cell Physiol 45:1485-1499. Ohkuma, K., Addicott, F. T., Smith, O. E., Thiessen, W. E. (1965) The structure of abscisin II. Tetrahedron Lett 6:2529-2535. Ohkuma, K., Lyon, J. L., Addicott, F. T., Smith, O. E. (1963) Abscisin II, an abscission-accelerating substance from young cotton fruit. Science 142:1592-1593. Ohta, M., Guo, Y., Halfter, U., Zhu, J. K. (2003) A novel domain in the protein kinase SOS2 mediates interaction with the protein phosphatase 2C ABI2. Proc Natl Acad Sci USA 100:11771-11776. Pandey, S., Nelson, D. C., Assmann, S. M. (2009) Two novel GPCR-type G proteins are abscisic acid receptors in Arabidopsis. Cell 136:136-148. Park, S. Y., Fung, P., Nishimura, N., Jensen, D. R., Fujii, H., Zhao, Y., Lumba, S., Santiago, J., Rodrigues, A., Chow, T. F., Alfred, S. E., Bonetta, D., Finkelstein, R., Provart, N. J., Desveaux, D., Rodriguez, P. L., McCourt, P., Zhu, J. K., Schroeder, J. I., Volkman, B. F., Cutler, S. R. (2009) Abscisic acid inhibits type 2C protein phosphatases via the PYR/PYL family of START proteins. Science 324:1068-1071. Pedron, J., Brault, M., Nake, C., Miginiac, E. (1998) Detection of abscisic-acid-binding proteins in the microsomal protein fraction of Arabidopsis thaliana with abscisic-acid-protein conjugates used as affinity probes. Eur J Biochem 252:385-390. Pei, Z. M., Kuchitsu, K., Ward, J. M., Schwarz, M., Schroeder, J. I. (1997) Differential abscisic acid regulation of guard cell slow anion channels in Arabidopsis wild-type and abi1 and abi2 mutants. Plant Cell 9:4 09-423. Pei, Z. M., Murata, Y., Benning, G., Thomine, S., Klusener, B., Allen, G. J., Grill, E., Schroeder, J. I. (2000) Calcium channels activated by hydrogen peroxide mediate abscisic acid signalling in guard cells. Nature 406:731-734. Pieterse, C. M., Leon-Reyes, A., Van der Ent, S., Van Wees, S. C. (2009) Networking by small-molecule hormones in plant immunity. Nat Chem Biol 5:308-316. Popko, J., Hansch, R., Mendel, R. R., Polle, A., Teichmann, T. (2010) The role of abscisic acid and auxin in the response of poplar to abiotic stress. Plant Biol 12:242-258. Razem, F. A., El-Kereamy, A., Abrams, S. R., Hill, R. D. (2006) The RNA-binding protein FCA is an abscisic acid receptor. Nature 439:290-294. Razem, F. A., Luo, M., Liu, J.-H., Abrams, S. R., Hill, R. D. (2004) Purification and characterization of a barley aleurone abscisic acid-binding protein. J Biol Chem 279:9922-9929. Robert-Seilaniantz, A., Navarro, L., Bari, R., Jones, J. D. (2007) Pathological hormone imbalances. Curr Opin Plant Biol 10:372-379. Robert, N., Merlot, S., N'Guyen, V., Boisson-Dernier, A., Schroeder, J. I. (2006) A hypermorphic mutation in the protein phosphatase 2C HAB1 strongly affects ABA signaling in Arabidopsis. FEBS Lett 580:4691-4696. Rubio, S., Rodrigues, A., Saez, A., Dizon, M. B., Galle, A., Kim, T. H., Santiago, J., Flexas, J., Schroeder, J. I., Rodriguez, P. L. (2009) Triple loss of function of protein phosphatases type 2C leads to partial constitutive response to endogenous abscisic acid. Plant Physiol 15:1345-1355. Saez, A., Apostolova, N., Gonzalez-Guzman, M., Gonzalez-Garcia, M. P., Nicolas, C., Lorenzo, O., Rodriguez, P. L. (2004) Gain-of-function and loss-of-function phenotypes of the protein phosphatase 2C HAB1 reveal its role as a negative regulator of abscisic acid signalling. Plant J 37:354-369. Saez, A., Robert, N., Maktabi, M. H., Schroeder, J. I., Serrano, R., Rodriguez, P. L. (2006) Enhancement of abscisic acid sensitivity and reduction of water consumption in Arabidopsis by combined inactivation of the protein phosphatases type 2C ABI1 and HAB1. Plant Physiol 141:1389-1399. Saez, A., Rodrigues, A., Santiago, J., Rubio, S., Rodriguez, P. L. (2008) HAB1-SWI3B interaction reveals a link between abscisic acid signaling and putative SWI/SNF chromatin-remodeling complexes in Arabidopsis. Plant Cell 20:2972-2988. Santiago, J., Dupeux, F., Round, A., Antoni, R., Park, S. Y., Jamin, M., Cutler, S. R., Rodriguez, P. L., Marquez, J. A. (2009a). The abscisic acid receptor PYR1 in complex with abscisic acid. Nature 462:665-668. Santiago, J., Rodrigues, A., Saez, A., Rubio, S., Antoni, R., Dupeux, F., Park, S. Y., Marquez, J. A., Cutler, S. R., Rodriguez, P. L. (2009b) Modulation of drought resistance by the abscisic acid receptor PYL5 through inhibition of clade A PP2Cs. Plant J 60:575-588. Schrick, K., Nguyen, D., Karlowski, W. M., Mayer, K. F. (2004) START lipid/sterol-binding domains are amplified in plants and are predominantly associated with homeodomain transcription factors. Genome Biol 5:R41. Schroeder, J. I., Hagiwara, S. (1989) Cytosolic calcium regulates ion channels in the plasma membrane of Vicia faba guard cells. Nature 338:427-430. Schroeder, J. I., Keller, B. U. (1992) Two types of anion channel currents in guard cells with distinct voltage regulation. Proc Natl Acad Sci USA 89:5025-5029. Schroeder, J. I., Allen, G. J., Hugouvieux, V., Kwak, J. M., Waner, D. (2003) Guard cell signal transduction. Annu. Rev. Plant Physiol. Plant Mol Biol 52:627-658. Schroeder, J. I., Kwak, J. M., Allen, G .J. (2001) Guard cell abscisic acid signalling and engineering drought hardiness in plants. Nature 410:327-330. Schroeder, J. I., Raschke, K., Neher, E. (1987) Voltage dependence of K+channels in guard-cell protoplasts. Proc Natl Acad Sci USA 84:4108-4112. Schwartz, S. H., Qin, X., Zeevaart, J. A. (2003) Elucidation of the indirect pathway of abscisic acid biosynthesis by mutants, genes, and enzymes. Plant Physiol 131:1591-1601. Schwartz, S. H., Tan, B. C., Gage, D. A., Zeevaart, J. A., McCarty, D. R. (1997) Specific oxidative cleavage of carotenoids by VP14 of maize. Science 276:1872-1874. Schweighofer, A., Hirt, H., Meskiene, I. (2004) Plant PP2C phosphatases:emerging functions in stress signaling. Trends Plant Sci 9:236-243. Sharp, R. E., Poroyko, V., Hejlek, L. G., Spollen, W. G., Springer, G. K., Bohnert, H. J., Nguyen, H. (2004) Root growth maintenance during water deficits: physiology to functional genomics. J Exp Bot 55:2343-51. Sheen, J. (1998). Mutational analysis of protein phosphatase 2C involved in abscisic acid signal transduction in higher plants. Proc Natl Acad Sci USA 95:975-980. Shen, Y. Y., Wang, X. F., Wu, F. Q., Du, S. Y., Cao, Z., Shang, Y., Wang, X. L., Peng, C. C., Yu, X. C., Zhu, S. Y., Fan, R. C., Xu, Y. H., Zhang, D. P. (2006) The Mg-chelatase H subunit is an abscisic acid receptor. Nature 443: 823-826. Sirichandra, C., Davanture, M., Turk, B. E., Zivy, M., Valot, B., Leung, J., Merlot, S. (2010) The Arabidopsis ABA-activated kinase OST1 phosphorylates the bZIP transcription factor ABF3 and creates a 14-3-3 binding site involved in its turnover. PLoS One 5:e13935. Sirichandra, C., Wasilewska, A., Vlad, F., Valon, C., Leung, J. (2009) The guard cell as a single-cell model towards understanding drought tolerance and abscisic acid action. J Exp Botany 60:1439-1463. Szostkiewicz, I., Richter, K., Kepka, M., Demmel, S., Ma, Y., Korte, A., Assaad, F. F., Christmann, A., Grill, E. (2010) Closely related receptor complexes differ in their ABA selectivity and sensitivity. Plant J 61:25-35. Tal, M., Imber, D., Itai, C. (1970) Abnormal stomatal behavior and hormonal imbalance in flacca, a wilty mutant of tomato: root effect and kinetin-like activity. Plant Physiol 46:367-372. Tan, B. C., Schwartz, S. H., Zeevaart, J. A., McCarty, D. R. (1997) Genetic control of abscisic acid biosynthesis in maize. Proc Natl Acad Sci USA 94:12235-12240. Tanaka, Y., Sano, T., Tamaoki, M., Nakajima, N., Kondo, N., Hasezawa, S. (2005) Ethylene inhibits abscisic acid-induced stomatal closure in Arabidopsis. Plant Physiol 138:2337-2343. Tanaka, Y., Sano, T., Tamaoki, M., Nakajima, N., Kondo, N., Hasezawa, S. (2006) Cytokinin and auxin inhibit abscisic acid-induced stomatal closure by enhancing ethylene production in Arabidopsis. J Exp Bot 57: 2259- 2266. Thomas, T. H., Wareing, P. F., Robinson, P. M. (1965) Chemistry and physiology of "edormins"f in sycamore: action of the sycamore "edormin"f as a gibberellin antagonist. Nature 205:1270-1272. Thompson, A. J., Jackson, A. C., Symonds, R. C., Mulholland, B. J., Dadswell, A. R., Blake, P. S., Burbidge, A., Taylor, I. B. (2000). Ectopic expression of a tomato 9-cis-epoxycarotenoid dioxygenase gene causes over-production of abscisic acid. Plant J 23:363-374. Ton, J., Flors, V., Mauch-Mani, B. (2009) The multifaceted role of ABA in disease resistance. Trends Plant Sci 14: 310-317. Umezawa, T., Okamoto, M., Kushiro, T., Nambara, E., Oono, Y., Seki, M., Kobayashi, M., Koshiba, T., Kamiya, Y., Shinozaki, K. (2006) CYP707A3, a major ABA 8'-hydroxylase involved in dehydration and rehydration response in Arabidopsis thaliana. Plant J 46:171-182. Umezawa, T., Sugiyama, N., Mizoguchi, M., Hayashi, S., Myouga, F., Yamaguchi-Shinozaki, K., Ishihama, Y., Hirayama, T., Shinozaki, K. (2009) Type 2C protein phosphatases directly regulate abscisic acid-activated protein kinases in Arabidopsis. Proc Natl Acad Sci USA 106:17588-17593. Vahisalu, T., Kollist, H., Wang, Y. F., Nishimura, N., Chan, W. Y., Valerio, G., Lamminmaki, A., Brosche, M., Moldau, H., Desikan, R., Schroeder, J. I., Kangasjarvi, J. (2008) SLAC1 is required for plant guard cell S-type anion channel function in stomatal signalling. Nature 452:487-491. Vahisalu, T., Puzorjova, I., Brosche, M., Valk, E., Lepiku, M., Moldau, H., Pechter, P., Wang, Y. S., Lindgren, O., Salojarvi, J., Loog, M., Kangasjarvi, J., Kollist, H. (2010) Ozone-triggered rapid stomatal response involves the production of reactive oxygen species, and is controlled by SLAC1 and OST1. Plant J 62:442-453. Vlad, F., Rubio, S., Rodrigues, A., Sirichandra, C., Belin, C., Robert, N., Leung, J., Rodriguez, P. L., Lauriere, C., Merlot, S. (2009) Protein phosphatases 2C regulate the activation of the Snf1-related kinase OST1 by abscisic acid in Arabidopsis. Plant Cell 21:3170-3184. Walker-Simmons, M. K., Anderberg, R. J., Rose, P. A., Abramss S. R. 1992. Optically pure abscisic acid analogs-tools for relating germination inhibition and gene expression in wheat embryos. Plant Physiol 99:501- 507. Ward, J. M., Maser, P., Schroeder, J. I. (2008) Plant Ion Channels:Gene Families, Physiology, and Functional Genomics Analysis. Annu. Rev. Physiol 71:59-82. Ward, J. M., Pei, Z. M., Schroeder, J. I. (1995) Roles of ion channels in initiation of signal transduction in higher plants. Plant Cell 7:833-844. Wasilewska, A., Vlad, F., Sirichandra, C., Redko, Y., Jammes, F., Valon, C., Frey, N. F. D., Leung, J. (2008) An update on abscisic acid signaling in plants and more. Mol Plant 1:198-217. Wilkinson, S., Davies, W. J. (2010) Drought, ozone, ABA and ethylene: new insights from cell to plant to community. Plant Cell Environ 33:510-525. Xiong, L., Yang, Y. (2003) Disease resistance and abiotic stress tolerance in rice are inversely modulated by an abscisic acid-inducible mitogen-activated protein kinase. Plant Cell 15:745-759. Yasuda, M., Ishikawa, A., Jikumaru, Y., Seki, M., Umezawa, T., Asami, T., Maruyama-Nakashita, A., Kudo, T., Shinozaki, K., Yoshida, S., Nakashita, H. (2008) Antagonistic interaction between systemic acquired resistance and the abscisic acid-mediated abiotic stress response in Arabidopsis. Plant Cell 20:1678-1692. Yin, P., Fan, H., Hao, Q., Yuan, X., Wu, D., Pang, Y., Yan, C., Li, W., Wang, J., Yan, N. (2009) Structural insights into the mechanism of abscisic acid signaling by PYL proteins. Nat Struct Mol Biol 16:1230-1236. Yoshida, R., Hobo, T., Ichimura, K., Mizoguchi, T., Takahashi, F., Aronso, J., Ecker, J. R., Shinozaki, K. (2002) ABA-activated SnRK2 protein kinase is required for dehydration stress signaling in Arabidopsis. Plant Cell Physiol 43:1473-1483. Yoshida, R., Umezawa, T., Mizoguchi, T., Takahashi, S., Takahashi, F., Shinozaki, K. (2006a) 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 281:5310-5318. Yoshida, T., Nishimura, N., Kitahata, N., Kuromori, T., Ito, T., Asami, T., Shinozaki, K., Hirayama, T. (2006b). ABA-hypersensitive germination3 encodes a protein phosphatase 2C (AtPP2CA) that strongly regulates abscisic acid signaling during germination among Arabidopsis protein phosphatase 2Cs. Plant Physiol 140:115-126. Zaharia, L., Walker-Simmon, M., Rodriguez, C., Abrams, S. (2005) Chemistry of abscisic acid, abscisic acid catabolites and analogs. J Plant Growth Regul 24:274-284. Zhang, D. P., Chen, S. W., Peng, Y. B., Shen, Y. Y. (2001a) Abscisic acid-specific binding sites in the flesh of developing apple fruit. J Exp Bot 52:2097-2103. Zhang, X., Zhang, L., Dong, F., Gao, J., Galbraith, D. W., Song, C. P. (2001b) Hydrogen peroxide is involved in abscisic acid-induced stomatal closure in Vicia faba. Plant Physiol 126:1438-1448. Zheng, Z., Xu, X., Crosley, R. A., Greenwalt, S. A., Sun, Y., Blakeslee, B., Wang, L., Ni, W., Sopko, M. S., Yao, C., Yau, K., Burton, S., Zhuang, M., McCaskill, D. G., Gachotte, D., Thompson, M., Greene, T. W. (2010) The protein kinase SnRK2.6 mediates the regulation of sucrose metabolism and plant growth in Arabidopsis. Plant Physiol 153:99-113.
Information
- Publisher :Agriculture and Life Sciences Research Institute, Kangwon National University
- Publisher(Ko) :None
- Journal Title :Journal of Agricultural, Life and Environmental Sciences
- Journal Title(Ko) :농업생명환경연구
- Volume : 29
- No :1
- Pages :18-34
- Received Date : 2017-02-28
- Revised Date : 2017-03-10
- Accepted Date : 2017-03-10
- DOI :https://doi.org/10.12972/jales.20170002


Journal of Agricultural, Life and Environmental Sciences







