ELF3-PIF4 Interaction Regulates Plant Growth Independently of the Evening Complex
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Salomé Prat | S. Prat | J. Davière | Jean-Michel Davière | Cristina Nieto | Vadir López-Salmerón | Vadir López-Salmerón | C. Nieto
[1] Francis J Doyle,et al. A novel computational model of the circadian clock in Arabidopsis that incorporates PRR7 and PRR9 , 2006, Molecular systems biology.
[2] J. Chory,et al. Regulation of Phytochrome B Nuclear Localization through Light-Dependent Unmasking of Nuclear-Localization Signals , 2005, Current Biology.
[3] E. Schäfer,et al. Nucleocytoplasmic Partitioning of the Plant Photoreceptors Phytochrome A, B, C, D, and E Is Regulated Differentially by Light and Exhibits a Diurnal Rhythm Article, publication date, and citation information can be found at www.plantcell.org/cgi/doi/10.1105/tpc.001156. , 2002, The Plant Cell Online.
[4] Jorge Gonçalves,et al. EARLY FLOWERING4 Recruitment of EARLY FLOWERING3 in the Nucleus Sustains the Arabidopsis Circadian Clock[W][OA] , 2012, Plant Cell.
[5] Anthony Hall,et al. Disruption of Hepatic Leptin Signaling Protects Mice From Age- and Diet-Related Glucose Intolerance , 2010, Diabetes.
[6] X. Deng,et al. Light inactivation of arabidopsis photomorphogenic repressor COP1 involves a cell-specific regulation of its nucleocytoplasmic partitioning , 1994, Cell.
[7] E. Huq,et al. Multiple Phytochrome-Interacting bHLH Transcription Factors Repress Premature Seedling Photomorphogenesis in Darkness , 2008, Current Biology.
[8] T. Mizuno,et al. Ambient temperature signal feeds into the circadian clock transcriptional circuitry through the EC night-time repressor in Arabidopsis thaliana. , 2014, Plant & cell physiology.
[9] F. Harmon,et al. The time of day effects of warm temperature on flowering time involve PIF4 and PIF5 , 2014, Journal of experimental botany.
[10] R. Tóth,et al. A Reduced-Function Allele Reveals That EARLY FLOWERING3 Repressive Action on the Circadian Clock Is Modulated by Phytochrome Signals in Arabidopsis[C][W] , 2011, Plant Cell.
[11] R. Martienssen,et al. Dependence of Heterochromatic Histone H3 Methylation Patterns on the Arabidopsis Gene DDM1 , 2002, Science.
[12] X. Deng,et al. Coordinated regulation of Arabidopsis thaliana development by light and gibberellins , 2008, Nature.
[13] C. Fankhauser,et al. Verification at the protein level of the PIF4-mediated external coincidence model for the temperature-adaptive photoperiodic control of plant growth in Arabidopsis thaliana , 2013, Plant signaling & behavior.
[14] C. Fankhauser. Faculty Opinions recommendation of Transcription factor PIF4 controls the thermosensory activation of flowering. , 2012 .
[15] T. Mizuno,et al. The circadian clock regulates the photoperiodic response of hypocotyl elongation through a coincidence mechanism in Arabidopsis thaliana. , 2009, Plant & cell physiology.
[16] C. Fankhauser,et al. A molecular framework for light and gibberellin control of cell elongation , 2008, Nature.
[17] T. Mizuno,et al. Circadian clock- and PIF4-controlled plant growth: a coincidence mechanism directly integrates a hormone signaling network into the photoperiodic control of plant architectures in Arabidopsis thaliana. , 2012, Plant & cell physiology.
[18] Michael F. Covington,et al. ELF3 Modulates Resetting of the Circadian Clock in Arabidopsis , 2001, The Plant Cell Online.
[19] K. Halliday,et al. Phytochrome control of flowering is temperature sensitive and correlates with expression of the floral integrator FT. , 2003, The Plant journal : for cell and molecular biology.
[20] Stacey L. Harmer,et al. Rhythmic growth explained by coincidence between internal and external cues , 2007, Nature.
[21] K. Hicks,et al. The Arabidopsis ELF3 gene regulates vegetative photomorphogenesis and the photoperiodic induction of flowering. , 1996, The Plant journal : for cell and molecular biology.
[22] D. Alabadí,et al. Hormonal regulation of temperature-induced growth in Arabidopsis. , 2009, The Plant journal : for cell and molecular biology.
[23] James C. W. Locke,et al. ELF3 Controls Thermoresponsive Growth in Arabidopsis , 2015, Current Biology.
[24] Martha L. Bulyk,et al. LUX ARRHYTHMO Encodes a Nighttime Repressor of Circadian Gene Expression in the Arabidopsis Core Clock , 2011, Current Biology.
[25] N. Harberd,et al. High Temperature-Mediated Adaptations in Plant Architecture Require the bHLH Transcription Factor PIF4 , 2009, Current Biology.
[26] A. Burlingame,et al. A mutually assured destruction mechanism attenuates light signaling in Arabidopsis , 2014, Science.
[27] F. Nagy,et al. Natural variation reveals that intracellular distribution of ELF3 protein is associated with function in the circadian clock , 2014, eLife.
[28] Steve A. Kay,et al. The ELF4-ELF3-LUX Complex Links the Circadian Clock to Diurnal Control of Hypocotyl Growth , 2011, Nature.
[29] I. Xenarios,et al. Phytochrome interacting factors 4 and 5 control seedling growth in changing light conditions by directly controlling auxin signaling. , 2012, The Plant journal : for cell and molecular biology.
[30] E. Tobin,et al. CCA1 and ELF3 Interact in the Control of Hypocotyl Length and Flowering Time in Arabidopsis1[W][OA] , 2011, Plant Physiology.
[31] Rossana Henriques,et al. Arabidopsis PHYTOCHROME INTERACTING FACTOR Proteins Promote Phytochrome B Polyubiquitination by COP1 E3 Ligase in the Nucleus[C][W] , 2010, Plant Cell.
[32] C. Schwechheimer,et al. LucTrap Vectors Are Tools to Generate Luciferase Fusions for the Quantification of Transcript and Protein Abundance in Vivo1 , 2006, Plant Physiology.
[33] D. R. Wagner,et al. EARLY FLOWERING3 Encodes a Novel Protein That Regulates Circadian Clock Function and Flowering in Arabidopsis , 2001, The Plant Cell Online.
[34] P. Quail,et al. Photoactivated phytochrome induces rapid PIF3 phosphorylation prior to proteasome-mediated degradation. , 2006, Molecular cell.
[35] C. Fankhauser,et al. Light receptor action is critical for maintaining plant biomass at warm ambient temperatures. , 2011, The Plant journal : for cell and molecular biology.
[36] P. Quail,et al. Phytochrome Induces Rapid PIF5 Phosphorylation and Degradation in Response to Red-Light Activation1[W][OA] , 2007, Plant Physiology.
[37] Dmitri A. Nusinow,et al. ELF3 recruitment to the PRR9 promoter requires other Evening Complex members in the Arabidopsis circadian clock , 2012, Plant signaling & behavior.
[38] D. E. Somers,et al. Independent Roles for EARLY FLOWERING 3 and ZEITLUPE in the Control of Circadian Timing, Hypocotyl Length, and Flowering Time1 , 2005, Plant Physiology.
[39] S. Prat,et al. PIFs get BRright: PHYTOCHROME INTERACTING FACTORs as integrators of light and hormonal signals. , 2014, The New phytologist.
[40] ELF3 Encodes a Circadian Clock–Regulated Nuclear Protein That Functions in an Arabidopsis PHYB Signal Transduction Pathway , 2001, The Plant Cell Online.
[41] W. Gray,et al. PHYTOCHROME-INTERACTING FACTOR 4 (PIF4) regulates auxin biosynthesis at high temperature , 2011, Proceedings of the National Academy of Sciences.
[42] Y. Niwa,et al. Development of series of gateway binary vectors, pGWBs, for realizing efficient construction of fusion genes for plant transformation. , 2007, Journal of bioscience and bioengineering.
[43] E. Schäfer,et al. Nucleo-cytoplasmic partitioning of the plant photoreceptors phytochromes. , 2000, Seminars in cell & developmental biology.
[44] P. Quail,et al. Phytochrome-imposed oscillations in PIF3 protein abundance regulate hypocotyl growth under diurnal light/dark conditions in Arabidopsis. , 2012, The Plant journal : for cell and molecular biology.
[45] Rossana Henriques,et al. Regulated proteolysis in light-related signaling pathways. , 2009, Current opinion in plant biology.
[46] Pedro Carrasco,et al. Aminopropyltransferases Involved in Polyamine Biosynthesis Localize Preferentially in the Nucleus of Plant Cells , 2012, PloS one.
[47] A. Millar,et al. Independent action of ELF3 and phyB to control hypocotyl elongation and flowering time. , 2000, Plant physiology.
[48] G. Coupland,et al. Possible role of early flowering 3 (ELF3) in clock-dependent floral regulation by short vegetative phase (SVP) in Arabidopsis thaliana. , 2009, The New phytologist.
[49] X. Deng,et al. The Photomorphogenic Repressors Cop1 and Det1: 20 Years Later , 2022 .
[50] F. Harmon,et al. Ambient temperature response establishes ELF3 as a required component of the core Arabidopsis circadian clock , 2010, Proceedings of the National Academy of Sciences.
[51] Olivier Michielin,et al. Inhibition of the shade avoidance response by formation of non‐DNA binding bHLH heterodimers , 2009, The EMBO journal.
[52] Laura E. Dixon,et al. Temporal Repression of Core Circadian Genes Is Mediated through EARLY FLOWERING 3 in Arabidopsis , 2011, Current Biology.
[53] P. Wigge,et al. Ambient temperature signalling in plants. , 2013, Current opinion in plant biology.
[54] R. Grima,et al. Arabidopsis cell expansion is controlled by a photothermal switch , 2014, Nature Communications.
[55] V. Rubio,et al. COP1 and ELF3 control circadian function and photoperiodic flowering by regulating GI stability. , 2008, Molecular cell.
[56] P. Quail,et al. PIFs: pivotal components in a cellular signaling hub. , 2011, Trends in plant science.
[57] S. Prat,et al. BR-dependent phosphorylation modulates PIF4 transcriptional activity and shapes diurnal hypocotyl growth , 2016 .