The genetic basis of flowering responses to seasonal cues
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[1] Christian Jung,et al. The Role of a Pseudo-Response Regulator Gene in Life Cycle Adaptation and Domestication of Beet , 2012, Current Biology.
[2] Andrew J. Millar,et al. FKF1 Conveys Timing Information for CONSTANS Stabilization in Photoperiodic Flowering , 2012, Science.
[3] C. Fankhauser. Faculty Opinions recommendation of Transcription factor PIF4 controls the thermosensory activation of flowering. , 2012 .
[4] Tien-Shin Yu,et al. Long-distance movement of Arabidopsis FLOWERING LOCUS T RNA participates in systemic floral regulation , 2012, RNA biology.
[5] Xingliang Hou,et al. FTIP1 Is an Essential Regulator Required for Florigen Transport , 2012, PLoS biology.
[6] J. A. Jarillo,et al. The Arabidopsis E3 Ubiquitin Ligase HOS1 Negatively Regulates CONSTANS Abundance in the Photoperiodic Control of Flowering[W] , 2012, Plant Cell.
[7] G. Coupland,et al. Functional characterisation of HvCO1, the barley (Hordeum vulgare) flowering time ortholog of CONSTANS. , 2012, The Plant journal : for cell and molecular biology.
[8] Jae-Hyung Lee,et al. The SOC1-SPL module integrates photoperiod and gibberellic acid signals to control flowering time in Arabidopsis. , 2012, The Plant journal : for cell and molecular biology.
[9] C. Vincent,et al. Analysis of the Arabidopsis Shoot Meristem Transcriptome during Floral Transition Identifies Distinct Regulatory Patterns and a Leucine-Rich Repeat Protein That Promotes Flowering[C][W][OA] , 2012, Plant Cell.
[10] T. Araki,et al. The TFL1 homologue KSN is a regulator of continuous flowering in rose and strawberry. , 2012, The Plant journal : for cell and molecular biology.
[11] Joy Bergelson,et al. References and Notes Supporting Online Material Adaptation to Climate across the Arabidopsis Thaliana Genome , 2022 .
[12] J. Abelenda,et al. Control of flowering and storage organ formation in potato by FLOWERING LOCUS T , 2011, Nature.
[13] F. Parcy,et al. Integrating long-day flowering signals: a LEAFY binding site is essential for proper photoperiodic activation of APETALA1. , 2011, The Plant journal : for cell and molecular biology.
[14] K. Goto,et al. Arabidopsis TERMINAL FLOWER1 Is Involved in the Regulation of Flowering Time and Inflorescence Development through Transcriptional Repression[C][W][OA] , 2011, Plant Cell.
[15] Makoto Takano,et al. Molecular Dissection of the Roles of Phytochrome in Photoperiodic Flowering in Rice1[C][W][OA] , 2011, Plant Physiology.
[16] Shojiro Tamaki,et al. 14-3-3 proteins act as intracellular receptors for rice Hd3a florigen , 2011, Nature.
[17] C. Dean,et al. A Polycomb-based switch underlying quantitative epigenetic memory , 2011, Nature.
[18] Mariko Sawa,et al. GIGANTEA directly activates Flowering Locus T in Arabidopsis thaliana , 2011, Proceedings of the National Academy of Sciences.
[19] D. Buzas,et al. Vernalization-Repression of Arabidopsis FLC Requires Promoter Sequences but Not Antisense Transcripts , 2011, PloS one.
[20] G. Page,et al. FLOWERING LOCUS T duplication coordinates reproductive and vegetative growth in perennial poplar , 2011, Proceedings of the National Academy of Sciences.
[21] Xuanming Liu,et al. Blue Light-Dependent Interaction of CRY2 with SPA1 Regulates COP1 activity and Floral Initiation in Arabidopsis , 2011, Current Biology.
[22] C. Helliwell,et al. FLOWERING LOCUS C (FLC) regulates development pathways throughout the life cycle of Arabidopsis , 2011, Proceedings of the National Academy of Sciences.
[23] C. Vincent,et al. Aa TFL1 Confers an Age-Dependent Response to Vernalization in Perennial Arabis alpina[W][OA] , 2011, Plant Cell.
[24] Sibum Sung,et al. Vernalization-Mediated Epigenetic Silencing by a Long Intronic Noncoding RNA , 2011, Science.
[25] Claire L. Knowles,et al. The Pea GIGAS Gene Is a FLOWERING LOCUS T Homolog Necessary for Graft-Transmissible Specification of Flowering but Not for Responsiveness to Photoperiod[C][W] , 2011, Plant Cell.
[26] O. Nilsson,et al. An Antagonistic Pair of FT Homologs Mediates the Control of Flowering Time in Sugar Beet , 2010, Science.
[27] J. Willis,et al. A Widespread Chromosomal Inversion Polymorphism Contributes to a Major Life-History Transition, Local Adaptation, and Reproductive Isolation , 2010, PLoS biology.
[28] O. Ratcliffe,et al. The flowering time regulator CONSTANS is recruited to the FLOWERING LOCUS T promoter via a unique cis-element. , 2010, The New phytologist.
[29] R. Tóth,et al. Plant development goes like clockwork. , 2010, Trends in genetics : TIG.
[30] M. Yano,et al. A pair of floral regulators sets critical day length for Hd3a florigen expression in rice , 2010, Nature Genetics.
[31] H. Kudoh,et al. Robust control of the seasonal expression of the Arabidopsis FLC gene in a fluctuating environment , 2010, Proceedings of the National Academy of Sciences.
[32] Jessika Adrian,et al. cis-Regulatory Elements and Chromatin State Coordinately Control Temporal and Spatial Expression of FLOWERING LOCUS T in Arabidopsis[W][OA] , 2010, Plant Cell.
[33] Joy Bergelson,et al. Linkage and Association Mapping of Arabidopsis thaliana Flowering Time in Nature , 2010, PLoS genetics.
[34] Jared L. Strasburg,et al. The Role of Recently Derived FT Paralogs in Sunflower Domestication , 2010, Current Biology.
[35] Young Hun Song,et al. F-Box Proteins FKF1 and LKP2 Act in Concert with ZEITLUPE to Control Arabidopsis Clock Progression[C][W] , 2010, Plant Cell.
[36] R. Amasino. Seasonal and developmental timing of flowering. , 2010, The Plant journal : for cell and molecular biology.
[37] S. Strauss,et al. Populus CEN/TFL1 regulates first onset of flowering, axillary meristem identity and dormancy release in Populus. , 2010, The Plant journal : for cell and molecular biology.
[38] G. Simpson,et al. The spen family protein FPA controls alternative cleavage and polyadenylation of RNA. , 2010, Developmental cell.
[39] C. Dean,et al. Cold-induced silencing by long antisense transcripts of an Arabidopsis Polycomb target , 2009, Nature.
[40] G. Coupland,et al. Distinct Patterns of Genetic Variation Alter Flowering Responses of Arabidopsis Accessions to Different Daylengths1[C][W][OA] , 2009, Plant Physiology.
[41] G. Coupland,et al. Genetic and spatial interactions between FT, TSF and SVP during the early stages of floral induction in Arabidopsis. , 2009, The Plant journal : for cell and molecular biology.
[42] Detlef Weigel,et al. miR156-Regulated SPL Transcription Factors Define an Endogenous Flowering Pathway in Arabidopsis thaliana , 2009, Cell.
[43] Gang Wu,et al. The microRNA-regulated SBP-Box transcription factor SPL3 is a direct upstream activator of LEAFY, FRUITFULL, and APETALA1. , 2009, Developmental cell.
[44] Manuel Talón,et al. Analysis of PHOTOPERIOD SENSITIVITY5 Sheds Light on the Role of Phytochromes in Photoperiodic Flowering in Rice1[W] , 2009, Plant Physiology.
[45] Peter J. Bradbury,et al. The Genetic Architecture of Maize Flowering Time , 2009, Science.
[46] G. Coupland,et al. Arabidopsis DOF transcription factors act redundantly to reduce CONSTANS expression and are essential for a photoperiodic flowering response. , 2009, Developmental cell.
[47] Mark G. M. Aarts,et al. What Has Natural Variation Taught Us about Plant Development, Physiology, and Adaptation? , 2009, The Plant Cell Online.
[48] J. Mathieu,et al. Repression of Flowering by the miR172 Target SMZ , 2009, PLoS biology.
[49] J. Bowman,et al. The flowering hormone florigen functions as a general systemic regulator of growth and termination , 2009, Proceedings of the National Academy of Sciences.
[50] Lisha Shen,et al. Regulation of floral patterning by flowering time genes. , 2009, Developmental cell.
[51] C. Vincent,et al. PEP1 regulates perennial flowering in Arabis alpina , 2009, Nature.
[52] Kosuke M. Teshima,et al. Variations in Hd1 proteins, Hd3a promoters, and Ehd1 expression levels contribute to diversity of flowering time in cultivated rice , 2009, Proceedings of the National Academy of Sciences.
[53] Brook T. Moyers,et al. Effects of Genetic Perturbation on Seasonal Life History Plasticity , 2009, Science.
[54] S. Jackson,et al. A cis Element within Flowering Locus T mRNA Determines Its Mobility and Facilitates Trafficking of Heterologous Viral RNA , 2009, Journal of Virology.
[55] Dorian Q. Fuller,et al. The nature of selection during plant domestication , 2009, Nature.
[56] Detlef Weigel,et al. Next-generation genetics in plants , 2008, Nature.
[57] Chentao Lin,et al. Photoexcited CRY2 Interacts with CIB1 to Regulate Transcription and Floral Initiation in Arabidopsis , 2008, Science.
[58] A. Rohde,et al. Flowering-time genes modulate meristem determinacy and growth form in Arabidopsis thaliana , 2008, Nature Genetics.
[59] G. Coupland,et al. Circadian Clock Proteins LHY and CCA1 Regulate SVP Protein Accumulation to Control Flowering in Arabidopsis[W] , 2008, The Plant Cell Online.
[60] Alexandra M. E. Jones,et al. A PHD-Polycomb Repressive Complex 2 triggers the epigenetic silencing of FLC during vernalization , 2008, Proceedings of the National Academy of Sciences.
[61] M. Rosner,et al. Raf kinase inhibitory protein (RKIP): A physiological regulator and future therapeutic target , 2008, Expert opinion on therapeutic targets.
[62] Cristina Castillejo,et al. The Balance between CONSTANS and TEMPRANILLO Activities Determines FT Expression to Trigger Flowering , 2008, Current Biology.
[63] Ilha Lee,et al. SOC1 translocated to the nucleus by interaction with AGL24 directly regulates leafy. , 2008, The Plant journal : for cell and molecular biology.
[64] Yang Wu,et al. A repressor complex governs the integration of flowering signals in Arabidopsis. , 2008, Developmental cell.
[65] Lei Wang,et al. Natural variation in Ghd7 is an important regulator of heading date and yield potential in rice , 2008, Nature Genetics.
[66] S. Yanagisawa,et al. Nano scale proteomics revealed the presence of regulatory proteins including three FT-Like proteins in phloem and xylem saps from rice. , 2008, Plant & cell physiology.
[67] X. Deng,et al. Arabidopsis COP1 shapes the temporal pattern of CO accumulation conferring a photoperiodic flowering response , 2008, The EMBO journal.
[68] Y. Sang,et al. COP1-Mediated Ubiquitination of CONSTANS Is Implicated in Cryptochrome Regulation of Flowering in Arabidopsis[W] , 2008, The Plant Cell Online.
[69] O. Savolainen,et al. Natural variation in Arabidopsis lyrata vernalization requirement conferred by a FRIGIDA indel polymorphism. , 2008, Molecular biology and evolution.
[70] M. Rosner,et al. Raf kinase inhibitory protein (RKIP): a physiological regulator and future therapeutic target. , 2008, Expert opinion on therapeutic targets.
[71] E. Finnegan,et al. Vernalization-Induced Trimethylation of Histone H3 Lysine 27 at FLC Is Not Maintained in Mitotically Quiescent Cells , 2007, Current Biology.
[72] Dmitri A. Nusinow,et al. FKF1 and GIGANTEA Complex Formation Is Required for Day-Length Measurement in Arabidopsis , 2007, Science.
[73] G. Coupland,et al. A Circadian Rhythm Set by Dusk Determines the Expression of FT Homologs and the Short-Day Photoperiodic Flowering Response in Pharbitis[W][OA] , 2007, The Plant Cell Online.
[74] Nicholas J. Provart,et al. An “Electronic Fluorescent Pictograph” Browser for Exploring and Analyzing Large-Scale Biological Data Sets , 2007, PloS one.
[75] J. Mathieu,et al. Export of FT Protein from Phloem Companion Cells Is Sufficient for Floral Induction in Arabidopsis , 2007, Current Biology.
[76] Shoichi Matsuo,et al. Hd3a Protein Is a Mobile Flowering Signal in Rice , 2007, Science.
[77] Fabio Fornara,et al. FT Protein Movement Contributes to Long-Distance Signaling in Floral Induction of Arabidopsis , 2007, Science.
[78] W. J. Lucas,et al. FLOWERING LOCUS T Protein May Act as the Long-Distance Florigenic Signal in the Cucurbits[W] , 2007, The Plant Cell Online.
[79] Vincent Colot,et al. Arabidopsis TFL2/LHP1 Specifically Associates with Genes Marked by Trimethylation of Histone H3 Lysine 27 , 2007, PLoS genetics.
[80] S. Park,et al. Role of SVP in the control of flowering time by ambient temperature in Arabidopsis. , 2007, Genes & development.
[81] L. Yan,et al. The wheat and barley vernalization gene VRN3 is an orthologue of FT , 2006, Proceedings of the National Academy of Sciences.
[82] M. Nordborg,et al. Variation in the epigenetic silencing of FLC contributes to natural variation in Arabidopsis vernalization response. , 2006, Genes & development.
[83] F. Turck,et al. CONSTANS and the CCAAT Box Binding Complex Share a Functionally Important Domain and Interact to Regulate Flowering of Arabidopsis[W][OA] , 2006, The Plant Cell Online.
[84] Jessika Adrian,et al. Arabidopsis SPA proteins regulate photoperiodic flowering and interact with the floral inducer CONSTANS to regulate its stability , 2006, Development.
[85] J. Zeevaart,et al. Florigen Coming of Age after 70 Years , 2006, The Plant Cell Online.
[86] Stefan Jansson,et al. CO/FT Regulatory Module Controls Timing of Flowering and Seasonal Growth Cessation in Trees , 2006, Science.
[87] G. Coupland,et al. The CCAAT binding factor can mediate interactions between CONSTANS-like proteins and DNA. , 2006, The Plant journal : for cell and molecular biology.
[88] Y. Eshed,et al. The tomato FT ortholog triggers systemic signals that regulate growth and flowering and substitute for diverse environmental stimuli. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[89] M. Robertson,et al. The Arabidopsis FLC protein interacts directly in vivo with SOC1 and FT chromatin and is part of a high-molecular-weight protein complex. , 2006, The Plant journal : for cell and molecular biology.
[90] C. Vincent,et al. The transcription factor FLC confers a flowering response to vernalization by repressing meristem competence and systemic signaling in Arabidopsis. , 2006, Genes & development.
[91] B. Trevaskis,et al. HvVRN2 Responds to Daylength, whereas HvVRN1 Is Regulated by Vernalization and Developmental Status1 , 2006, Plant Physiology.
[92] P. Giavalisco,et al. Towards the proteome of Brassica napus phloem sap , 2006, Proteomics.
[93] K. Abe,et al. Antisense Expression of MdTFL1, a TFL1-like Gene, Reduces the Juvenile Phase in Apple , 2006 .
[94] J. Dubcovsky,et al. Effect of Photoperiod on the Regulation of Wheat Vernalization Genes VRN1 and VRN2 , 2006, Plant Molecular Biology.
[95] D. Laurie,et al. The Pseudo-Response Regulator Ppd-H1 Provides Adaptation to Photoperiod in Barley , 2005, Science.
[96] Wolfgang Busch,et al. Integration of Spatial and Temporal Information During Floral Induction in Arabidopsis , 2005, Science.
[97] K. Goto,et al. FD, a bZIP Protein Mediating Signals from the Floral Pathway Integrator FT at the Shoot Apex , 2005, Science.
[98] J. Ecker,et al. FRIGIDA-Independent Variation in Flowering Time of Natural Arabidopsis thaliana Accessions , 2005, Genetics.
[99] M. Nordborg,et al. Role of FRIGIDA and FLOWERING LOCUS C in Determining Variation in Flowering Time of Arabidopsis1[w] , 2005, Plant Physiology.
[100] J. Schmitt,et al. NICHE CONSTRUCTION THROUGH GERMINATION CUEING: LIFE‐HISTORY RESPONSES TO TIMING OF GERMINATION IN ARABIDOPSIS THALIANA , 2005, Evolution; international journal of organic evolution.
[101] T. Chiou,et al. Differential Regulation of FLOWERING LOCUS C Expression by Vernalization in Cabbage and Arabidopsis1 , 2005, Plant Physiology.
[102] J. Schmitt,et al. NICHE CONSTRUCTION THROUGH GERMINATION CUEING: LIFE-HISTORY RESPONSES TO TIMING OF GERMINATION IN ARABIDOPSIS THALIANA , 2005 .
[103] Shelley Hepworth,et al. CONSTANS acts in the phloem to regulate a systemic signal that induces photoperiodic flowering of Arabidopsis , 2004, Development.
[104] Kazuyuki Doi,et al. Ehd1, a B-type response regulator in rice, confers short-day promotion of flowering and controls FT-like gene expression independently of Hd1. , 2004, Genes & development.
[105] D. Ravenscroft,et al. Photoreceptor Regulation of CONSTANS Protein in Photoperiodic Flowering , 2004, Science.
[106] R. Amasino,et al. Vernalization in Arabidopsis thaliana is mediated by the PHD finger protein VIN3 , 2004, Nature.
[107] M. Koornneef,et al. A genetic and physiological analysis of late flowering mutants in Arabidopsis thaliana , 1991, Molecular and General Genetics MGG.
[108] R. Shapley,et al. The Wheat VRN2 Gene Is a Flowering Repressor Down-Regulated by Vernalization , 2004 .
[109] S. Kay,et al. FKF1 is essential for photoperiodic-specific light signalling in Arabidopsis , 2003, Nature.
[110] B. Trevaskis,et al. MADS box genes control vernalization-induced flowering in cereals , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[111] R. Amasino,et al. Attenuation of FLOWERING LOCUS C activity as a mechanism for the evolution of summer-annual flowering behavior in Arabidopsis , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[112] K. Nakahigashi,et al. Arabidopsis TERMINAL FLOWER 2 gene encodes a heterochromatin protein 1 homolog and represses both FLOWERING LOCUS T to regulate flowering time and several floral homeotic genes. , 2003, Plant & cell physiology.
[113] L. Yan,et al. Positional cloning of the wheat vernalization gene VRN1 , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[114] M. Yano,et al. Adaptation of photoperiodic control pathways produces short-day flowering in rice , 2003, Nature.
[115] S. B. Land,et al. Shoot morphogenesis associated with flowering in Populus deltoides (Salicaceae). , 2003, American journal of botany.
[116] Lili Tong. PHOTORECEPTORS IN PLANT PHOTOMORPHOGENESIS TO DATE , 2003 .
[117] N. Adir,et al. Tomato SP-Interacting Proteins Define a Conserved Signaling System That Regulates Shoot Architecture and Flowering Article, publication date, and citation information can be found at www.plantcell.org/cgi/doi/10.1105/tpc.010293. , 2001, The Plant Cell Online.
[118] Allison K. Wilson,et al. The VERNALIZATION 2 Gene Mediates the Epigenetic Regulation of Vernalization in Arabidopsis , 2001, Cell.
[119] Haiyang Wang,et al. Direct Interaction of Arabidopsis Cryptochromes with COP1 in Light Control Development , 2001, Science.
[120] Hitoshi Onouchi,et al. CONSTANS mediates between the circadian clock and the control of flowering in Arabidopsis , 2001, Nature.
[121] Heinz Saedler,et al. Plant biology: Floral quartets , 2001, Nature.
[122] W. Briggs,et al. Photoreceptors in plant photomorphogenesis to date. Five phytochromes, two cryptochromes, one phototropin, and one superchrome. , 2001, Plant physiology.
[123] E. Wisman,et al. A MADS domain gene involved in the transition to flowering in Arabidopsis. , 2000, The Plant journal : for cell and molecular biology.
[124] Yan Liu,et al. The C Termini of Arabidopsis Cryptochromes Mediate a Constitutive Light Response , 2000, Cell.
[125] R. Amasino,et al. Molecular analysis of FRIGIDA, a major determinant of natural variation in Arabidopsis flowering time. , 2000, Science.
[126] Z. Schwarz‐Sommer,et al. Distinct roles of CONSTANS target genes in reproductive development of Arabidopsis. , 2000, Science.
[127] B. Bartel,et al. FKF1, a Clock-Controlled Gene that Regulates the Transition to Flowering in Arabidopsis , 2000, Cell.
[128] Y. Kobayashi,et al. A pair of related genes with antagonistic roles in mediating flowering signals. , 1999, Science.
[129] J. Chory,et al. Activation tagging of the floral inducer FT. , 1999, Science.
[130] G. Coupland,et al. GIGANTEA: a circadian clock‐controlled gene that regulates photoperiodic flowering in Arabidopsis and encodes a protein with several possible membrane‐spanning domains , 1999, The EMBO journal.
[131] G. Ditta,et al. Interactions among APETALA1, LEAFY, and TERMINAL FLOWER1 Specify Meristem Fate , 1999, Plant Cell.
[132] R. Amasino,et al. FLOWERING LOCUS C Encodes a Novel MADS Domain Protein That Acts as a Repressor of Flowering , 1999, Plant Cell.
[133] W. Peacock,et al. The FLF MADS Box Gene: A Repressor of Flowering in Arabidopsis Regulated by Vernalization and Methylation , 1999, Plant Cell.
[134] E. Meyerowitz,et al. A Polycomb-group gene regulates homeotic gene expression in Arabidopsis , 1997, Nature.
[135] E. Coen,et al. Inflorescence Commitment and Architecture in Arabidopsis , 1997, Science.
[136] R. Simon,et al. The CONSTANS gene of arabidopsis promotes flowering and encodes a protein showing similarities to zinc finger transcription factors , 1995, Cell.
[137] S. Shannon,et al. Genetic Interactions That Regulate Inflorescence Development in Arabidopsis. , 1993, The Plant cell.
[138] S. Shannon,et al. A Mutation in the Arabidopsis TFL1 Gene Affects Inflorescence Meristem Development. , 1991, The Plant cell.
[139] Daphne Vince-Prue,et al. Photoperiodism in Plants , 1975 .
[140] P. Ray,et al. PHOTOPERIODIC ADAPTATION TO LATITUDE IN XANTHIUM STRUMARIUM , 1966 .
[141] C. Pittendrigh. The Entrainment of Circadian Oscillations by Skeleton Photoperiods. , 1964, Science.
[142] G. Rédei. Supervital Mutants of Arabidopsis. , 1962, Genetics.
[143] A Lang,et al. Physiology of Flowering , 1952 .
[144] H. Allard,et al. EFFECT OF THE RELATIVE LENGTH OF DAY AND NIGHT AND OTHER FACTORS OF THE ENVIRONMENT ON GROWTH AND REPRODUCTION IN PLANTS1 , 1920 .