[1] Yau C P, et al. Differential expression of three genes encoding an ethylene receptor in rice during development, and in response to indole-3-acetic acid and silver ions[J]. J Exp Bot., 2004,55(397): 547-556.[2] Kendrick M D, et al. Ethylene signaling: new levels of complexity and regulation[J]. Curr Opin Plant Biol., 2008,11(5): 479-485.[3] Itoh J, et al. Rice plant development: from zygote to spikelet[J]. Plant Cell Physiol., 2005,46(1): 23-47.[4] Jun S H, et al. OsEIN2 is a positive component in ethylene signaling in rice[J]. Plant Cell Physiol., 2004,45(3): 281-289.[5] Mao C, et al. OsEIL1, a rice homolog of the Arabidopsis EIN3 regulates the ethylene response as a positive component[J]. Plant Mol Biol., 2006,61(1-2): 141-152.[6] Rzewuski G, et al. Ethylene biosynthesis and signaling in rice[J]. Plant Science, 2008, 175(12):32-42.[7] Watanabe H, et al. Cloning of a cDNA encoding an ETR2-like protein (Os-ERL1) from deep water rice (Oryza sativa L.) and increase in its mRNA level by submergence, ethylene, and gibberellin treatments[J]. J Exp Bot., 2004,55(399): 1 145-1 148.[8] Stock J B, et al. Signal transduction in bacteria[J]. Nature, 1990,344(6 265): 395-400.[9] Wuriyanghan H, et al. The ethylene receptor ETR2 delays floral transition and affects starch accumulation in rice[J]. Plant Cell, 2009,21(5): 1 473-1 494.[10] Kanacher T, et al. A GAF-domain-regulated adenylyl cyclase from Anabaena is a self-activating cAMP switch[J]. EMBO J, 2002,21(14): 3 672-3 680.[11] Alonso J M, et al. Genome-wide insertional mutagenesis of Arabidopsis thaliana[J]. Science, 2003,301(5633): 653-657.[12] Resnick J S, et al. REVERSION-TO-ETHYLENE SENSITIVITY1, a conserved gene that regulates ethylene receptor function in Arabidopsis[J]. Proc Natl Acad Sci USA, 2006,103(20): 7 917-7 922.[13] Adams-Phillips L, et al. Evidence that CTR1-mediated ethylene signal transduction in tomato is encoded by a multigene family whose members display distinct regulatory features[J]. Plant Mol Biol., 2004,54(3): 387-404.[14] Olmedo G, et al. ETHYLENE-INSENSITIVE5 encodes a 5'-->3' exoribonuclease required for regulation of the EIN3-targeting F-box proteins EBF1/2[J]. Proc Natl Acad Sci USA, 2006,103(36): 13 286-13 293.[15] Gagne J M, et al. Arabidopsis EIN3-binding F-box 1 and 2 form ubiquitin-protein ligases that repress ethylene action and promote growth by directing EIN3 degradation[J]. Proc Natl Acad Sci USA, 2004, 101(17): 6803-6808.[16] Potuschak T, et al. EIN3-dependent regulation of plant ethylene hormone signaling by two arabidopsis F box proteins: EBF1 and EBF2[J]. Cell, 2003,115(6): 679-689.[17] Chao Q, et al. Activation of the ethylene gas response pathway in Arabidopsis by the nuclear protein ETHYLENE- INSENSITIVE3 and related proteins[J]. Cell, 1997,89(7): 1 133-1 144.[18] Hiraga S, et al. Involvement of two rice ETHYLENE INSENSITIVE3-LIKE genes in wound signaling[J]. Mol Genet Genomics, 2009,282(5): 517-529.[19] Riechmann J L, et al. The AP2/EREBP family of plant transcription factors[J]. Biol Chem., 1998,379(6): 633-646.[20] Nakano T, et al. Genome-wide analysis of the ERF gene family in Arabidopsis and rice[J]. Plant Physiol., 2006,140(2): 411-432.[21] Ohme-Takagi M, et al. Ethylene-inducible DNA binding proteins that interact with an ethylene-responsive element[J]. Plant Cell, 1995,7(2): 173-182.[22] Solano R, et al. Nuclear events in ethylene signaling: a transcriptional cascade mediated by ETHYLENE-INSENSITIVE3 and ETHYLENE-RESPONSE-FACTOR1[J]. Genes Dev., 1998,12(23): 3 703-3 714.[23] Cheong Y H, et al. BWMK1, a rice mitogen-activated protein kinase, locates in the nucleus and mediates pathogenesis- related gene expression by activation of a transcription factor[J]. Plant Physiol., 2003,132(4): 1961-1972.[24] Hu Y, et al. Overexpression of OsERF1, a novel rice ERF gene, up-regulates ethylene-responsive genes expression besides affects growth and development in Arabidopsis[J]. J Plant Physiol., 2008,165(16):1 717-1 725.[25] Hattori Y, et al. The ethylene response factors SNORKEL1 and SNORKEL2 allow rice to adapt to deep water[J]. Nature, 2009,460(7258): 1 026-1 030.[26] Perata P, et al. Submergence tolerance in rice requires Sub1A, an ethylene-response-factor-like gene[J]. Trends Plant Sci., 2007,12(2): 43-46.[27] Kende H, et al. Deepwater rice: A model plant to study stem elongation[J]. Plant Physiol., 1998,118(4): 1 105-1 110.[28] Jackson M B, et al. Physiological and molecular basis of susceptibility and tolerance of rice plants to complete submergence[J]. Ann Bot., 2003,91 Spec No.: 227-241.[29] Alonso J M, et al. EIN2, a bifunctional transducer of ethylene and stress responses in Arabidopsis[J]. Science, 1999,284(5 423): 2 148-2 152.[30] Pareek A, et al. Whole-genome analysis of Oryza sativa reveals similar architecture of two-component signaling machinery with Arabidopsis[J]. Plant Physiol., 2006,142(2): 380-397.[31] Hoffmann-Benning S, et al. On the role of abscisic Acid and gibberellin in the regulation of growth in rice[J]. Plant Physiol., 1992,99(3): 1 156-1 161.[32] Yang S H, et al. Characterization of genes encoding ABA 8'-hydroxylase in ethylene-induced stem growth of deepwater rice (Oryza sativa L.)[J]. Biochem Biophys Res Commun., 2006,350(3): 685-690.[33] Steffens B, et al. Epidermal cell death in rice is regulated by ethylene, gibberellin, and abscisic acid[J]. Plant Physiol., 2005,139(2): 713-721.[34] Steffens B, et al. Interactions between ethylene, gibberellin and abscisic acid regulate emergence and growth rate of adventitious roots in deepwater rice[J]. Planta, 2006,223(3): 604-612.[35] Ikeda A, et al. The slender rice mutant, with constitutively activated gibberellin signal transduction, has enhanced capacity for abscisic acid level[J]. Plant Cell Physiol., 2002,43(9): 974-979.[36] Mergemann H, et al. Ethylene induces epidermal cell death at the site of adventitious root emergence in rice[J]. Plant Physiol., 2000,124(2): 609-614.[37] Lorbiecke R, et al. Adventitious root growth and cell-cycle induction in deepwater rice[J]. Plant Physiol., 1999,119(1): 21-30. |