Functional divergence of FTL9 and FTL10 in flowering control in rice
暂无分享,去创建一个
[1] R. Amasino,et al. INDETERMINATE1-mediated expression of FT family genes is required for proper timing of flowering in Brachypodium distachyon , 2023, Proceedings of the National Academy of Sciences of the United States of America.
[2] M. Chiara,et al. Rice florigens control a common set of genes at the shoot apical meristem including the F-BOX BROADER TILLER ANGLE 1 that regulates tiller angle and spikelet development. , 2023, The Plant journal : for cell and molecular biology.
[3] T. Demura,et al. A leaf-emanated signal orchestrates grain size and number in response to maternal resources. , 2023, The Plant journal : for cell and molecular biology.
[4] G. Coupland,et al. Two florigens and a florigen-like protein form a triple regulatory module at the shoot apical meristem to promote reproductive transitions in rice , 2023, Nature Plants.
[5] Jiayang Li,et al. OsFTL12, a member of FT‐like family, modulates the heading date and plant architecture by florigen repression complex in rice , 2023, Plant biotechnology journal.
[6] T. Imaizumi,et al. Photoperiodic flowering in Arabidopsis: Multilayered regulatory mechanisms of CONSTANS and the florigen FLOWERING LOCUS T , 2023, Plant communications.
[7] Shengting Li,et al. Hd1, Ghd7, and DTH8 synergistically determine rice heading date and yield-related agronomic traits. , 2022, Journal of genetics and genomics = Yi chuan xue bao.
[8] J. Fernandes,et al. A cascade of bHLH-regulated pathways program maize anther development. , 2022, The Plant cell.
[9] Bin Zhang,et al. Mobile TERMINAL FLOWER1 determines seed size in Arabidopsis , 2020, Nature Plants.
[10] M. Galli,et al. OsFD4 promotes the rice floral transition via Florigen Activation Complex formation in the shoot apical meristem. , 2020, The New phytologist.
[11] C. Tonelli,et al. Maize adaptation across temperate climates was obtained via expression of two florigen genes , 2020, PLoS genetics.
[12] C. Peng,et al. Effects of Shading on the Senescence and Photosynthetic Physiology of the Early-Flowering Rice Mutant FTL10 at Noon , 2019, Journal of Plant Growth Regulation.
[13] Diqiu Yu,et al. Arabidopsis Class II TCP Transcription Factors Integrate with the FT–FD Module to Control Flowering1 , 2019, Plant Physiology.
[14] Tingting Li,et al. Pesticide application has little influence on coding and non-coding gene expressions in rice , 2019, BMC Genomics.
[15] Jiajie Wu,et al. Divergent roles of FT-like 9 in flowering transition under different day lengths in Brachypodium distachyon , 2019, Nature Communications.
[16] M. Schmid,et al. FT Modulates Genome-Wide DNA-Binding of the bZIP Transcription Factor FD1[OPEN] , 2019, Plant Physiology.
[17] Meiru Li,et al. Overexpression of OsFTL10 induces early flowering and improves drought tolerance in Oryza sativa L. , 2019, PeerJ.
[18] R. Amasino,et al. A florigen paralog is required for short-day vernalization in a pooid grass , 2018, bioRxiv.
[19] I. Graham,et al. MOTHER-OF-FT-AND-TFL1 represses seed germination under far-red light by modulating phytohormone responses in Arabidopsis thaliana , 2018, Proceedings of the National Academy of Sciences.
[20] K. Shimamoto,et al. TFL1-Like Proteins in Rice Antagonize Rice FT-Like Protein in Inflorescence Development by Competition for Complex Formation with 14-3-3 and FD , 2018, Plant & cell physiology.
[21] Jinmi Yoon,et al. Identification of the Regulatory Region Responsible for Vascular Tissue–Specific Expression in the Rice Hd3a Promoter , 2018, Molecules and cells.
[22] Rüdiger Simon,et al. Antagonistic Transcription Factor Complexes Modulate the Floral Transition in Rice , 2017, Plant Cell.
[23] Chuang Wang,et al. Molecular interaction between PHO2 and GIGANTEA reveals a new crosstalk between flowering time and phosphate homeostasis in Oryza sativa. , 2017, Plant, cell & environment.
[24] Zhijun Cheng,et al. The OsHAPL1-DTH8-Hd1 complex functions as the transcription regulator to repress heading date in rice , 2017, Journal of experimental botany.
[25] Jae-Hoon Jung,et al. SPL3/4/5 Integrate Developmental Aging and Photoperiodic Signals into the FT-FD Module in Arabidopsis Flowering. , 2016, Molecular plant.
[26] A. Bentley,et al. Systematic Investigation of FLOWERING LOCUS T-Like Poaceae Gene Families Identifies the Short-Day Expressed Flowering Pathway Gene, TaFT3 in Wheat (Triticum aestivum L.) , 2016, Front. Plant Sci..
[27] Y. Hanzawa,et al. The FLOWERING LOCUS T/TERMINAL FLOWER 1 Gene Family: Functional Evolution and Molecular Mechanisms. , 2015, Molecular plant.
[28] T. Imaizumi,et al. Photoperiodic Regulation of Florigen Function in Arabidopsis thaliana , 2015, The arabidopsis book.
[29] Zenpei Shimatani,et al. FT-like proteins induce transposon silencing in the shoot apex during floral induction in rice , 2015, Proceedings of the National Academy of Sciences.
[30] Cai-guo Xu,et al. Grain Number, Plant Height, and Heading Date7 Is a Central Regulator of Growth, Development, and Stress Response1[W][OPEN] , 2014, Plant Physiology.
[31] Inna Dubchak,et al. The genome portal of the Department of Energy Joint Genome Institute: 2014 updates , 2013, Nucleic Acids Res..
[32] G. Theißen,et al. Functional Conservation of MIKC*-Type MADS Box Genes in Arabidopsis and Rice Pollen Maturation[C][W] , 2013, Plant Cell.
[33] Katja E. Jaeger,et al. Interlocking Feedback Loops Govern the Dynamic Behavior of the Floral Transition in Arabidopsis[W][OA] , 2013, Plant Cell.
[34] T. Araki,et al. The florigen genes FT and TSF modulate lateral shoot outgrowth in Arabidopsis thaliana. , 2013, Plant & cell physiology.
[35] 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.
[36] Shojiro Tamaki,et al. 14-3-3 proteins act as intracellular receptors for rice Hd3a florigen , 2011, Nature.
[37] K. Shimamoto,et al. Heading date 1 (Hd1), an ortholog of Arabidopsis CONSTANS, is a possible target of human selection during domestication to diversify flowering times of cultivated rice. , 2011, Genes & genetic systems.
[38] S. Iida,et al. Constitutive expression of the GIGANTEA ortholog affects circadian rhythms and suppresses one-shot induction of flowering in Pharbitis nil, a typical short-day plant. , 2011, Plant & cell physiology.
[39] Peng Wang,et al. A major QTL, Ghd8, plays pleiotropic roles in regulating grain productivity, plant height, and heading date in rice. , 2011, Molecular plant.
[40] S. Yokoi,et al. A gene network for long-day flowering activates RFT1 encoding a mobile flowering signal in rice , 2009, Development.
[41] Shojiro Tamaki,et al. Hd3a and RFT1 are essential for flowering in rice , 2008, Development.
[42] Zhenglin Hou,et al. A Genomic and Expression Compendium of the Expanded PEBP Gene Family from Maize[W][OA] , 2007, Plant Physiology.
[43] J. Higgins,et al. The FLOWERING LOCUS T-Like Gene Family in Barley (Hordeum vulgare) , 2007, Genetics.
[44] F. Chardon,et al. Phylogenomic Analysis of the PEBP Gene Family in Cereals , 2005, Journal of Molecular Evolution.
[45] M. Yano,et al. Adaptation of photoperiodic control pathways produces short-day flowering in rice , 2003, Nature.
[46] Thomas D. Schmittgen,et al. Analysis of relative gene expression data using real-time quantitative PCR and the 2(-Delta Delta C(T)) Method. , 2001, Methods.
[47] M. Yano,et al. Hd1, a Major Photoperiod Sensitivity Quantitative Trait Locus in Rice, Is Closely Related to the Arabidopsis Flowering Time Gene CONSTANS , 2000, Plant Cell.
[48] Xianghua Li,et al. OsELF3 is involved in circadian clock regulation for promoting flowering under long-day conditions in rice. , 2013, Molecular plant.
[49] Thomas D. Schmittgen,et al. Analysis of Relative Gene Expression Data Using Real-Time Quantitative PCR and the 2 2 DD C T Method , 2022 .