Skip to main content

Main menu

  • Home
  • Content
    • Current Issue
    • Archive
    • Preview Papers
  • About
    • Editorial Board and Staff
    • About the Journal
    • Terms & Privacy
  • More
    • Alerts
    • Contact Us
  • Submit a Manuscript
    • Instructions for Authors
    • Submit a Manuscript
  • Other Publications
    • Plant Physiology
    • The Plant Cell
    • Plant Direct
    • The Arabidopsis Book
    • Teaching Tools in Plant Biology
    • ASPB
    • Plantae

User menu

  • My alerts
  • Log in

Search

  • Advanced search
Plant Cell
  • Other Publications
    • Plant Physiology
    • The Plant Cell
    • Plant Direct
    • The Arabidopsis Book
    • Teaching Tools in Plant Biology
    • ASPB
    • Plantae
  • My alerts
  • Log in
Plant Cell

Advanced Search

  • Home
  • Content
    • Current Issue
    • Archive
    • Preview Papers
  • About
    • Editorial Board and Staff
    • About the Journal
    • Terms & Privacy
  • More
    • Alerts
    • Contact Us
  • Submit a Manuscript
    • Instructions for Authors
    • Submit a Manuscript
  • Follow PlantCell on Twitter
  • Visit PlantCell on Facebook
  • Visit Plantae
Research ArticleResearch Article
You have accessRestricted Access

The FLF MADS Box Gene: A Repressor of Flowering in Arabidopsis Regulated by Vernalization and Methylation

Candice C. Sheldon, Joanne E. Burn, Pascual P. Perez, Jim Metzger, Jennifer A. Edwards, W. James Peacock, Elizabeth S. Dennis
Candice C. Sheldon
aCommonwealth Scientific and Industrial Research Organisation, Division of Plant Industry, GPO Box 1600, Canberra, ACT, 2601, Australia
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
Joanne E. Burn
aCommonwealth Scientific and Industrial Research Organisation, Division of Plant Industry, GPO Box 1600, Canberra, ACT, 2601, Australia
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
Pascual P. Perez
bBiocem, 24 avenue des Landais, 63107, Aubiere, Cezeaux, France
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
Jim Metzger
cOhio State University, Department of Horticulture, 2001 Fyffe Court, Columbus, Ohio 43210-1096
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
Jennifer A. Edwards
aCommonwealth Scientific and Industrial Research Organisation, Division of Plant Industry, GPO Box 1600, Canberra, ACT, 2601, Australia
dCooperative Research Centre for Plant Science, Research School of Biological Sciences, Australian National University, Canberra, ACT, 2601, Australia
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
W. James Peacock
aCommonwealth Scientific and Industrial Research Organisation, Division of Plant Industry, GPO Box 1600, Canberra, ACT, 2601, Australia
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
Elizabeth S. Dennis
aCommonwealth Scientific and Industrial Research Organisation, Division of Plant Industry, GPO Box 1600, Canberra, ACT, 2601, Australia
  • Find this author on Google Scholar
  • Find this author on PubMed
  • Search for this author on this site
  • For correspondence: e.dennis@pican.pi.csiro.au

Published March 1999. DOI: https://doi.org/10.1105/tpc.11.3.445

  • Article
  • Figures & Data
  • Info & Metrics
  • PDF
Loading

Statistics from Altmetric.com

Article usage

Article usage: September 1999 to January 2021

AbstractFullPdf
Sep 1999105713
Oct 1999166426
Nov 199915336
Dec 1999112412
Jan 2000124717
Feb 200020379
Mar 2000178241
Apr 2000147448
May 200047436
Jun 2000176243
Jul 2000145243
Aug 200066144
Sep 200044144
Oct 2000148782
Nov 2000118562
Dec 200086945
Jan 2001146547
Feb 2001166638
Mar 2001117655
Apr 2001237640
May 2001278649
Jun 2001244335
Jul 2001183723
Aug 2001124841
Sep 200183822
Oct 2001125345
Nov 200187252
Dec 200194629
Jan 2002118358
Feb 2002125055
Mar 2002156952
Apr 2002217844
May 2002134734
Jun 200284441
Jul 2002163646
Aug 2002115839
Sep 200293643
Oct 2002165567
Nov 2002184753
Dec 2002154161
Jan 2003122625
Feb 200352940
Mar 2003165049
Apr 2003113440
May 200392950
Jun 2003164743
Jul 2003184042
Aug 2003324424
Sep 2003304345
Oct 2003415359
Nov 2003575947
Dec 2003273634
Jan 2004566767
Feb 2004487037
Mar 2004368356
Apr 2004378242
May 2004485637
Jun 2004284933
Jul 2004263927
Aug 2004455743
Sep 2004385146
Oct 20046211938
Nov 2004477659
Dec 2004506055
Jan 2005336737
Feb 2005265340
Mar 2005495640
Apr 2005294547
May 2005223848
Jun 2005273934
Jul 2005226538
Aug 2005314720
Sep 2005273122
Oct 2005305245
Nov 2005355435
Dec 2005373232
Jan 2006287368
Feb 2006235127
Mar 2006205466
Apr 2006345052
May 2006223228
Jun 2006261824
Jul 2006302326
Aug 2006262326
Sep 2006222431
Oct 2006263944
Nov 2006354031
Dec 2006261729
Jan 2007513639
Feb 2007301727
Mar 2007253729
Apr 2007162340
May 2007161454
Jun 2007102033
Jul 2007192133
Aug 2007282224
Sep 2007271939
Oct 2007413033
Nov 2007183538
Dec 2007192128
Jan 2008113024
Feb 2008131614
Mar 2008191434
Apr 2008321822
May 2008582124
Jun 2008502517
Jul 2008472915
Aug 2008372816
Sep 2008481818
Oct 2008692834
Nov 2008363113
Dec 2008473030
Jan 2009333924
Feb 20093715105
Mar 2009463433
Apr 2009312422
May 2009323044
Jun 2009371523
Jul 200917196
Aug 2009261414
Sep 2009161921
Oct 2009542539
Nov 2009332830
Dec 2009282030
Jan 2010402529
Feb 2010322222
Mar 2010522730
Apr 2010563733
May 2010401619
Jun 2010291725
Jul 2010361719
Aug 2010452729
Sep 2010372934
Oct 2010531831
Nov 2010683552
Dec 2010652726
Jan 2011452017
Feb 2011342918
Mar 2011371534
Apr 201123735
May 20111282722
Jun 20111372426
Jul 20111412335
Aug 20111541434
Sep 20111353346
Oct 20111752841
Nov 20113464945
Dec 20111263233
Jan 20121643332
Feb 20121251934
Mar 20121212621
Apr 20121374521
May 20121453328
Jun 20121201517
Jul 20121282317
Aug 20127879
Sep 2012762426
Oct 2012864324
Nov 20121032038
Dec 201266927
Jan 2013881821
Feb 20131002117
Mar 2013953019
Apr 20131032323
May 20131172867
Jun 2013921118
Jul 2013682617
Aug 2013651325
Sep 2013822719
Oct 2013943228
Nov 2013793227
Dec 2013712532
Jan 2014902823
Feb 2014522019
Mar 2014952825
Apr 2014772917
May 20141063175
Jun 2014842014
Jul 20141425520
Aug 2014712726
Sep 2014561018
Oct 2014601914
Nov 2014882018
Dec 20141071524
Jan 201560821
Feb 201532179
Mar 2015591923
Apr 2015671310
May 2015431916
Jun 2015421327
Jul 2015441624
Aug 2015591321
Sep 2015611915
Oct 2015501020
Nov 201539815
Dec 201572716
Jan 2016852816
Feb 2016771974
Mar 2016641341
Apr 2016681926
May 2016561314
Jun 2016322624
Jul 2016392026
Aug 2016591824
Sep 2016662119
Oct 2016692618
Nov 2016682724
Dec 2016652117
Jan 2017592012
Feb 2017702519
Mar 2017662318
Apr 201748266
May 2017672819
Jun 2017403225
Jul 2017244014
Aug 2017134525
Sep 2017325621
Oct 2017359030
Nov 20172120830
Dec 20172538829
Jan 20183132823
Feb 20181623720
Mar 20182720334
Apr 20183013730
May 2018279035
Jun 2018279628
Jul 2018136826
Aug 2018217517
Sep 2018198217
Oct 20183314717
Nov 20183526224
Dec 20182612418
Jan 2019159718
Feb 2019317917
Mar 20191256618
Apr 20191567840
May 201915715343
Jun 20196813025
Jul 201917413631
Aug 201929123418
Sep 201930510413
Oct 201930327726
Nov 201918412915
Dec 201910516026
Jan 20201316119
Feb 202097321
Mar 2020913221
Apr 2020576927
May 20201710533
Jun 2020136135
Jul 20207539
Aug 2020164523
Sep 20202118239
Oct 20201913633
Nov 20202013235
Dec 202087514
Jan 2021116724

Author Information

  1. Candice C. Sheldona,
  2. Joanne E. Burna,
  3. Pascual P. Perezb,
  4. Jim Metzgerc,
  5. Jennifer A. Edwardsa,d,
  6. W. James Peacocka and
  7. Elizabeth S. Dennisa,1
  1. aCommonwealth Scientific and Industrial Research Organisation, Division of Plant Industry, GPO Box 1600, Canberra, ACT, 2601, Australia
  2. bBiocem, 24 avenue des Landais, 63107, Aubiere, Cezeaux, France
  3. cOhio State University, Department of Horticulture, 2001 Fyffe Court, Columbus, Ohio 43210-1096
  4. dCooperative Research Centre for Plant Science, Research School of Biological Sciences, Australian National University, Canberra, ACT, 2601, Australia
  1. ↵1 To whom correspondence should be addressed. E-mail e.dennis{at}pican.pi.csiro.au; fax 61-2-6246-5000.
View Full Text

Cited By...

  • 697 Citations
  • 520 Citations
  • Google Scholar

This article has been cited by the following articles in journals that are participating in Crossref Cited-by Linking.

  • Epigenetic regulation of gene expression: how the genome integrates intrinsic and environmental signals
    Rudolf Jaenisch, Adrian Bird
    Nature Genetics 2003 33 S3
  • miR156-Regulated SPL Transcription Factors Define an Endogenous Flowering Pathway in Arabidopsis thaliana
    Jia-Wei Wang, Benjamin Czech, Detlef Weigel
    Cell 2009 138 4
  • The genetic basis of flowering responses to seasonal cues
    Fernando Andrés, George Coupland
    Nature Reviews Genetics 2012 13 9
  • The wheat and barley vernalization gene VRN3 is an orthologue of FT
    L. Yan, D. Fu, C. Li, A. Blechl, G. Tranquilli, M. Bonafede, A. Sanchez, M. Valarik, S. Yasuda, J. Dubcovsky
    Proceedings of the National Academy of Sciences 2006 103 51
  • Genetic and Epigenetic Mechanisms for Gene Expression and Phenotypic Variation in Plant Polyploids
    Z. Jeffrey Chen
    Annual Review of Plant Biology 2007 58 1
  • Vernalization requires epigenetic silencing of FLC by histone methylation
    Ruth Bastow, Joshua S. Mylne, Clare Lister, Zachary Lippman, Robert A. Martienssen, Caroline Dean
    Nature 2004 427 6970
  • Vernalization in Arabidopsis thaliana is mediated by the PHD finger protein VIN3
    Sibum Sung, Richard M. Amasino
    Nature 2004 427 6970
  • Seasonal and developmental timing of flowering
    Richard Amasino
    The Plant Journal 2010 61 6
  • Multiple reference genomes and transcriptomes for Arabidopsis thaliana
    Xiangchao Gan, Oliver Stegle, Jonas Behr, Joshua G. Steffen, Philipp Drewe, Katie L. Hildebrand, Rune Lyngsoe, Sebastian J. Schultheiss, Edward J. Osborne, Vipin T. Sreedharan, André Kahles, Regina Bohnert, Géraldine Jean, Paul Derwent, Paul Kersey, Eric J. Belfield, Nicholas P. Harberd, Eric Kemen, Christopher Toomajian, Paula X. Kover, Richard M. Clark, Gunnar Rätsch, Richard Mott
    Nature 2011 477 7365
  • Regulation of flowering time: all roads lead to Rome
    Anusha Srikanth, Markus Schmid
    Cellular and Molecular Life Sciences 2011 68 12
  • Large deletions within the first intron in VRN-1 are associated with spring growth habit in barley and wheat
    Daolin Fu, Péter Szűcs, Liuling Yan, Marcelo Helguera, Jeffrey S. Skinner, Jarislav von Zitzewitz, Patrick M. Hayes, Jorge Dubcovsky
    Molecular Genetics and Genomics 2005 273 1
  • Cross-species microarray transcript profiling reveals high constitutive expression of metal homeostasis genes in shoots of the zinc hyperaccumulator Arabidopsis halleri
    Martina Becher, Ina N. Talke, Leonard Krall, Ute Krämer
    The Plant Journal 2004 37 2
  • The Timing of Developmental Transitions in Plants
    Isabel Bäurle, Caroline Dean
    Cell 2006 125 4
  • Vernalization: Winter and the Timing of Flowering in Plants
    Dong-Hwan Kim, Mark R. Doyle, Sibum Sung, Richard M. Amasino
    Annual Review of Cell and Developmental Biology 2009 25 1
  • The VERNALIZATION 2 Gene Mediates the Epigenetic Regulation of Vernalization in Arabidopsis
    Anthony R. Gendall, Yaron Y. Levy, Allison Wilson, Caroline Dean
    Cell 2001 107 4
  • Potent Induction of Arabidopsis thaliana Flowering by Elevated Growth Temperature
    Sureshkumar Balasubramanian, Sridevi Sureshkumar, Janne Lempe, Detlef Weigel, Magnus Nordborg
    PLoS Genetics 2006 2 7
  • The molecular basis of vernalization: The central role of FLOWERING LOCUS C (FLC)
    C. C. Sheldon, D. T. Rouse, E. J. Finnegan, W. J. Peacock, E. S. Dennis
    Proceedings of the National Academy of Sciences 2000 97 7
  • The SOC1 MADS-box gene integrates vernalization and gibberellin signals for flowering in Arabidopsis
    Jihyun Moon, Sung-Suk Suh, Horim Lee, Kyu-Ri Choi, Choo Bong Hong, Nam-Chon Paek, Sang-Gu Kim, Ilha Lee
    The Plant Journal 2003 35 5
  • A PHD-Polycomb Repressive Complex 2 triggers the epigenetic silencing of FLC during vernalization
    F. De Lucia, P. Crevillen, A. M. E. Jones, T. Greb, C. Dean
    Proceedings of the National Academy of Sciences 2008 105 44
  • A thermosensory pathway controlling flowering time in Arabidopsis thaliana
    Miguel A. Blázquez, Ji Hoon Ahn, Detlef Weigel
    Nature Genetics 2003 33 2
  • The Arabidopsis FLC protein interacts directlyin vivowithSOC1andFTchromatin and is part of a high-molecular-weight protein complex
    Chris A. Helliwell, Craig C. Wood, Masumi Robertson, W. James Peacock, Elizabeth S. Dennis
    The Plant Journal 2006 46 2
  • Histone Methylation in Higher Plants
    Chunyan Liu, Falong Lu, Xia Cui, Xiaofeng Cao
    Annual Review of Plant Biology 2010 61 1
  • A Polycomb-based switch underlying quantitative epigenetic memory
    Andrew Angel, Jie Song, Caroline Dean, Martin Howard
    Nature 2011 476 7358
  • Epistatic interaction between Arabidopsis FRI and FLC flowering time genes generates a latitudinal cline in a life history trait
    A. L. Caicedo, J. R. Stinchcombe, K. M. Olsen, J. Schmitt, M. D. Purugganan
    Proceedings of the National Academy of Sciences 2004 101 44
  • A Repressor Complex Governs the Integration of Flowering Signals in Arabidopsis
    Dan Li, Chang Liu, Lisha Shen, Yang Wu, Hongyan Chen, Masumi Robertson, Chris A. Helliwell, Toshiro Ito, Elliot Meyerowitz, Hao Yu
    Developmental Cell 2008 15 1
  • A divergent external loop confers antagonistic activity on floral regulators FT and TFL1
    Ji Hoon Ahn, David Miller, Victoria J Winter, Mark J Banfield, Jeong Hwan Lee, So Yeon Yoo, Stefan R Henz, Robert Leo Brady, Detlef Weigel
    The EMBO Journal 2006 25 3
  • TWIN SISTER OF FT (TSF) Acts as a Floral Pathway Integrator Redundantly with FT
    Ayako Yamaguchi, Yasushi Kobayashi, Koji Goto, Mitsutomo Abe, Takashi Araki
    Plant and Cell Physiology 2005 46 8
  • An Antagonistic Pair of FT Homologs Mediates the Control of Flowering Time in Sugar Beet
    P. A. Pin, R. Benlloch, D. Bonnet, E. Wremerth-Weich, T. Kraft, J. J. L. Gielen, O. Nilsson
    Science 2010 330 6009
  • MADS box genes control vernalization-induced flowering in cereals
    B. Trevaskis, D. J. Bagnall, M. H. Ellis, W. J. Peacock, E. S. Dennis
    Proceedings of the National Academy of Sciences 2003 100 22
  • PEP1 regulates perennial flowering in Arabis alpina
    Renhou Wang, Sara Farrona, Coral Vincent, Anika Joecker, Heiko Schoof, Franziska Turck, Carlos Alonso-Blanco, George Coupland, Maria C. Albani
    Nature 2009 459 7245
  • FY Is an RNA 3′ End-Processing Factor that Interacts with FCA to Control the Arabidopsis Floral Transition
    Gordon G Simpson, Paul P Dijkwel, Victor Quesada, Ian Henderson, Caroline Dean
    Cell 2003 113 6
  • The molecular basis of vernalization-induced flowering in cereals
    Ben Trevaskis, Megan N. Hemming, Elizabeth S. Dennis, W. James Peacock
    Trends in Plant Science 2007 12 8
  • Attenuation of FLOWERING LOCUS C activity as a mechanism for the evolution of summer-annual flowering behavior in Arabidopsis
    S. D. Michaels, Y. He, K. C. Scortecci, R. M. Amasino
    Proceedings of the National Academy of Sciences 2003 100 17
  • Diversity of Flowering Responses in Wild Arabidopsis thaliana Strains
    Janne Lempe, Sureshkumar Balasubramanian, Sridevi Sureshkumar, Anandita Singh, Markus Schmid, Detlef Weigel, John Doebley
    PLoS Genetics 2005 1 1
  • Regulation of flowering time by FVE, a retinoblastoma-associated protein
    Israel Ausín, Carlos Alonso-Blanco, José A Jarillo, Leonor Ruiz-García, José M Martínez-Zapater
    Nature Genetics 2004 36 2
  • Temperature-dependent regulation of flowering by antagonistic FLM variants
    David Posé, Leonie Verhage, Felix Ott, Levi Yant, Johannes Mathieu, Gerco C. Angenent, Richard G. H. Immink, Markus Schmid
    Nature 2013 503 7476
  • Flowering time divergence and genomic rearrangements in resynthesized Brassica polyploids (Brassicaceae)
    J. CHRIS PIRES, JIANWEI ZHAO, M. ERIC SCHRANZ, ENRIQUE J. LEON, PABLO A. QUIJADA, LEWIS N. LUKENS, THOMAS C. OSBORN
    Biological Journal of the Linnean Society 2004 82 4
  • Function and evolution of the plant MADS-box gene family
    Medard Ng, Martin F. Yanofsky
    Nature Reviews Genetics 2001 2 3
  • Epigenetic maintenance of the vernalized state in Arabidopsis thaliana requires LIKE HETEROCHROMATIN PROTEIN 1
    Sibum Sung, Yuehui He, Tifani W Eshoo, Yosuke Tamada, Lianna Johnson, Kenji Nakahigashi, Koji Goto, Steve E Jacobsen, Richard M Amasino
    Nature Genetics 2006 38 6
  • The Arabidopsis thaliana vernalization response requires a polycomb-like protein complex that also includes VERNALIZATION INSENSITIVE 3
    C. C. Wood, M. Robertson, G. Tanner, W. J. Peacock, E. S. Dennis, C. A. Helliwell
    Proceedings of the National Academy of Sciences 2006 103 39
  • A MADS domain gene involved in the transition to flowering in Arabidopsis
    Rony Borner, Grit Kampmann, John Chandler, Roland Gleissner, Ellen Wisman, Klaus Apel, Siegbert Melzer
    The Plant Journal 2000 24 5
  • The Arabidopsis RNA-Binding Protein FCA Requires a Lysine-Specific Demethylase 1 Homolog to Downregulate FLC
    Fuquan Liu, Victor Quesada, Pedro Crevillén, Isabel Bäurle, Szymon Swiezewski, Caroline Dean
    Molecular Cell 2007 28 3
  • The molecular biology of seasonal flowering-responses in Arabidopsis and the cereals
    Aaron Greenup, W. James Peacock, Elizabeth S. Dennis, Ben Trevaskis
    Annals of Botany 2009 103 8
  • GENETIC REGULATION OF TIME TO FLOWER INARABIDOPSIS THALIANA
    Yoshibumi Komeda
    Annual Review of Plant Biology 2004 55 1
  • Vernalization and epigenetics: how plants remember winter
    Sibum Sung, Richard M Amasino
    Current Opinion in Plant Biology 2004 7 1
  • Di- and Tri- but Not Monomethylation on Histone H3 Lysine 36 Marks Active Transcription of Genes Involved in Flowering Time Regulation and Other Processes in Arabidopsis thaliana
    Lin Xu, Zhong Zhao, Aiwu Dong, Ludivine Soubigou-Taconnat, Jean-Pierre Renou, Andre Steinmetz, Wen-Hui Shen
    Molecular and Cellular Biology 2008 28 4
  • Prevention of early flowering by expression of FLOWERING LOCUS C requires methylation of histone H3 K36
    Zhong Zhao, Yu Yu, Denise Meyer, Chengjun Wu, Wen-Hui Shen
    Nature Cell Biology 2005 7 12
  • AGL24acts as a promoter of flowering inArabidopsisand is positively regulated by vernalization
    Scott D. Michaels, Gary Ditta, Cindy Gustafson-Brown, Soraya Pelaz, Martin Yanofsky, Richard M. Amasino
    The Plant Journal 2003 33 5
  • LHP1, the Arabidopsis homologue of HETEROCHROMATIN PROTEIN1, is required for epigenetic silencing of FLC
    J. S. Mylne, L. Barrett, F. Tessadori, S. Mesnage, L. Johnson, Y. V. Bernatavichute, S. E. Jacobsen, P. Fransz, C. Dean
    Proceedings of the National Academy of Sciences 2006 103 13
  • Phytochrome control of flowering is temperature sensitive and correlates with expression of the floral integratorFT
    Karen J. Halliday, Michael G. Salter, Elin Thingnaes, Garry C. Whitelam
    The Plant Journal 2003 33 5
  • The multifaceted roles of FLOWERING LOCUS T in plant development
    P. A. PIN, O. NILSSON
    Plant, Cell & Environment 2012 35 10
  • Role of chromatin modification in flowering-time control
    Yuehui He, Richard M. Amasino
    Trends in Plant Science 2005 10 1
  • Living by the calendar: how plants know when to flower
    Marcelo J. Yanovsky, Steve A. Kay
    Nature Reviews Molecular Cell Biology 2003 4 4
  • AntisenseCOOLAIRmediates the coordinated switching of chromatin states atFLCduring vernalization
    Tibor Csorba, Julia I. Questa, Qianwen Sun, Caroline Dean
    Proceedings of the National Academy of Sciences 2014 111 45
  • FLOWERING LOCUS C (FLC) regulates development pathways throughout the life cycle of Arabidopsis
    W. Deng, H. Ying, C. A. Helliwell, J. M. Taylor, W. J. Peacock, E. S. Dennis
    Proceedings of the National Academy of Sciences 2011 108 16
  • Repression of FLOWERING LOCUS C and FLOWERING LOCUS T by the Arabidopsis Polycomb Repressive Complex 2 Components
    Danhua Jiang, Yuqi Wang, Yizhong Wang, Yuehui He, Brian P. Dilkes
    PLoS ONE 2008 3 10
  • DNA methylation, a key regulator of plant development and other processes
    E Jean Finnegan, W James Peacock, Elizabeth S Dennis
    Current Opinion in Genetics & Development 2000 10 2
  • The WD-repeat protein superfamily in Arabidopsis: conservation and divergence in structure and function
    Steven van Nocker, Philip Ludwig
    BMC Genomics 2003 4 1
  • Regulation of Temperature-Responsive Flowering by MADS-Box Transcription Factor Repressors
    J. H. Lee, H.-S. Ryu, K. S. Chung, D. Pose, S. Kim, M. Schmid, J. H. Ahn
    Science 2013 342 6158
  • Long noncoding RNA: unveiling hidden layer of gene regulatory networks
    Eun-Deok Kim, Sibum Sung
    Trends in Plant Science 2012 17 1
  • The PHD Finger Protein VRN5 Functions in the Epigenetic Silencing of Arabidopsis FLC
    Thomas Greb, Joshua S. Mylne, Pedro Crevillen, Nuno Geraldo, Hailong An, Anthony R. Gendall, Caroline Dean
    Current Biology 2007 17 1
  • Functional analyses of the flowering time geneOsMADS50, the putativeSUPPRESSOR OF OVEREXPRESSION OF CO 1/AGAMOUS-LIKE 20(SOC1/AGL20) ortholog in rice
    Shinyoung Lee, Joonyul Kim, Jong-Jin Han, Min-Jung Han, Gynheung An
    The Plant Journal 2004 38 5
  • When to Switch to Flowering
    Gordon G. Simpson, Anthony R. Gendall, Caroline Dean
    Annual Review of Cell and Developmental Biology 1999 15 1
  • AGAMOUS-LIKE 24, a dosage-dependent mediator of the flowering signals
    H. Yu, Y. Xu, E. L. Tan, P. P. Kumar
    Proceedings of the National Academy of Sciences 2002 99 25
  • REMEMBERING WINTER: Toward a Molecular Understanding of Vernalization
    Sibum Sung, Richard M. Amasino
    Annual Review of Plant Biology 2005 56 1
  • The SUMO E3 ligase, AtSIZ1, regulates flowering by controlling a salicylic acid-mediated floral promotion pathway and through affects on FLC chromatin structure
    Jing Bo Jin, Yin Hua Jin, Jiyoung Lee, Kenji Miura, Chan Yul Yoo, Woe-Yeon Kim, Michael Van Oosten, Youbong Hyun, David E. Somers, Ilha Lee, Dae-Jin Yun, Ray A. Bressan, Paul M. Hasegawa
    The Plant Journal 2007 53 3
  • Comparative biology comes into bloom: genomic and genetic comparison of flowering pathways in rice and Arabidopsis
    Takeshi Izawa, Yuji Takahashi, Masahiro Yano
    Current Opinion in Plant Biology 2003 6 2
  • Identification of a MADS-box gene, FLOWERING LOCUS M, that represses flowering
    Katia C. Scortecci, Scott D. Michaels, Richard M. Amasino
    The Plant Journal 2001 26 2
  • The autonomous pathway: epigenetic and post-transcriptional gene regulation in the control of Arabidopsis flowering time
    Gordon G Simpson
    Current Opinion in Plant Biology 2004 7 5
  • Quantitative trait locus mapping and DNA array hybridization identify an FLM deletion as a cause for natural flowering-time variation
    J. D. Werner, J. O. Borevitz, N. Warthmann, G. T. Trainer, J. R. Ecker, J. Chory, D. Weigel
    Proceedings of the National Academy of Sciences 2005 102 7
  • Wheat FT protein regulatesVRN1transcription through interactions with FDL2
    Chengxia Li, Jorge Dubcovsky
    The Plant Journal 2008 55 4
  • Control of flowering time by FLC orthologues in Brassica napus
    Million Tadege, Candice C. Sheldon, Chris A. Helliwell, Peter Stoutjesdijk, Elizabeth S. Dennis, W. James Peacock
    The Plant Journal 2001 28 5
  • Genetic framework for flowering-time regulation by ambient temperature-responsive miRNAs in Arabidopsis
    Hanna Lee, Seong Jeon Yoo, Jeong Hwan Lee, Wanhui Kim, Seung Kwan Yoo, Heather Fitzgerald, James C. Carrington, Ji Hoon Ahn
    Nucleic Acids Research 2010 38 9
  • Memories of winter: vernalization and the competence to flower
    S. D. Michaels, R. M. Amasino
    Plant, Cell and Environment 2000 23 11
  • WAP1, a Wheat APETALA1 Homolog, Plays a Central Role in the Phase Transition from Vegetative to Reproductive Growth
    Koji Murai, Mamiko Miyamae, Hiromi Kato, Shigeo Takumi, Yasunari Ogihara
    Plant and Cell Physiology 2003 44 12
  • Epigenetic reprogramming that prevents transgenerational inheritance of the vernalized state
    Pedro Crevillén, Hongchun Yang, Xia Cui, Christiaan Greeff, Martin Trick, Qi Qiu, Xiaofeng Cao, Caroline Dean
    Nature 2014 515 7528
  • Flowering time regulation produces much fruit
    Scott D Michaels
    Current Opinion in Plant Biology 2009 12 1
  • Genetic and spatial interactions betweenFT,TSFandSVPduring the early stages of floral induction in Arabidopsis
    Seonghoe Jang, Stefano Torti, George Coupland
    The Plant Journal 2009 60 4
  • DNA Polymorphism at the FRIGIDA Gene in Arabidopsis thaliana: Extensive Nonsynonymous Variation Is Consistent with Local Selection for Flowering Time
    Valérie Le Corre, Fabrice Roux, Xavier Reboud
    Molecular Biology and Evolution 2002 19 8
  • Functional Consequences of Splicing of the Antisense Transcript COOLAIR on FLC Transcription
    Sebastian Marquardt, Oleg Raitskin, Zhe Wu, Fuquan Liu, Qianwen Sun, Caroline Dean
    Molecular Cell 2014 54 1
  • Resetting of FLOWERING LOCUS C expression after epigenetic repression by vernalization
    C. C. Sheldon, M. J. Hills, C. Lister, C. Dean, E. S. Dennis, W. J. Peacock
    Proceedings of the National Academy of Sciences 2008 105 6
  • Analysis of Flowering Pathway Integrators in Arabidopsis
    Jihyun Moon, Horim Lee, Minsoo Kim, Ilha Lee
    Plant and Cell Physiology 2005 46 2
  • Transition from vegetative to reproductive phase
    Takashi Araki
    Current Opinion in Plant Biology 2001 4 1
  • The Nuclear Factor Y subunits NF-YB2 and NF-YB3 play additive roles in the promotion of flowering by inductive long-day photoperiods in Arabidopsis
    Roderick W. Kumimoto, Luc Adam, Graham J. Hymus, Peter P. Repetti, T. Lynne Reuber, Colleen M. Marion, Frederick D. Hempel, Oliver J. Ratcliffe
    Planta 2008 228 5
  • Arabidopsis MSI1 connects LHP1 to PRC2 complexes
    Maria Derkacheva, Yvonne Steinbach, Thomas Wildhaber, Iva Mozgová, Walid Mahrez, Paolo Nanni, Sylvain Bischof, Wilhelm Gruissem, Lars Hennig
    The EMBO Journal 2013 32 14
  • Robust control of the seasonal expression of the Arabidopsis FLC gene in a fluctuating environment
    S. Aikawa, M. J. Kobayashi, A. Satake, K. K. Shimizu, H. Kudoh
    Proceedings of the National Academy of Sciences 2010 107 25
  • Genetic Architecture of Flowering-Time Variation in Arabidopsis thaliana
    Patrice A. Salomé, Kirsten Bomblies, Roosa A. E. Laitinen, Levi Yant, Richard Mott, Detlef Weigel
    Genetics 2011 188 2
  • The Role of ABI3 and FUS3 Loci in Arabidopsis thaliana on Phase Transition from Late Embryo Development to Germination
    Eiji Nambara, Ryousuke Hayama, Yuichiro Tsuchiya, Mari Nishimura, Hiroshi Kawaide, Yuji Kamiya, Satoshi Naito
    Developmental Biology 2000 220 2
  • Two RNA Binding Proteins, HEN4 and HUA1, Act in the Processing of AGAMOUS Pre-mRNA in Arabidopsis thaliana
    Yulan Cheng, Naohiro Kato, Wenming Wang, Junjie Li, Xuemei Chen
    Developmental Cell 2003 4 1
  • Mapping and characterization of FLC homologs and QTL analysis of flowering time in Brassica oleracea
    K. Okazaki, K. Sakamoto, R. Kikuchi, A. Saito, E. Togashi, Y. Kuginuki, S. Matsumoto, M. Hirai
    Theoretical and Applied Genetics 2007 114 4
  • Natural allelic variation identifies new genes in the Arabidopsis circadian system
    Kamal Swarup, Carlos Alonso-Blanco, James R. Lynn, Scott D. Michaels, Richard M. Amasino, Maarten Koornneef, Andrew J. Millar
    The Plant Journal 1999 20 1
  • Environmental perception and epigenetic memory: mechanistic insight throughFLC
    Scott Berry, Caroline Dean
    The Plant Journal 2015 83 1
  • FRIGIDA-Independent Variation in Flowering Time of Natural Arabidopsis thaliana Accessions
    Jonathan D. Werner, Justin O. Borevitz, N. Henriette Uhlenhaut, Joseph R. Ecker, Joanne Chory, Detlef Weigel
    Genetics 2005 170 3
  • Sucrose availability on the aerial part of the plant promotes morphogenesis and flowering of Arabidopsis in the dark
    Marta Roldan, Concepcion Gomez-Mena, Leonor Ruiz-Garcia, Julio Salinas, Jose M. Martinez-Zapater
    The Plant Journal 1999 20 5
  • DNA methylation in higher plants: Past, present and future
    Boris F. Vanyushin, Vasili V. Ashapkin
    Biochimica et Biophysica Acta (BBA) - Gene Regulatory Mechanisms 2011 1809 8
  • The E2 ubiquitin-conjugating enzymes, AtUBC1 and AtUBC2, play redundant roles and are involved in activation ofFLCexpression and repression of flowering inArabidopsis thaliana
    Lin Xu, Rozenn Ménard, Alexandre Berr, Jörg Fuchs, Valérie Cognat, Denise Meyer, Wen-Hui Shen
    The Plant Journal 2009 57 2
  • The small glycine-rich RNA binding protein At GRP7 promotes floral transition in Arabidopsis thaliana
    Corinna Streitner, Selahattin Danisman, Franziska Wehrle, Jan C. Schöning, James R. Alfano, Dorothee Staiger
    The Plant Journal 2008 56 2
  • Evolutionary Conservation of the FLOWERING LOCUS C-Mediated Vernalization Response: Evidence From the Sugar Beet (Beta vulgaris)
    Patrick A. Reeves, Yuehui He, Robert J. Schmitz, Richard M. Amasino, Lee W. Panella, Christopher M. Richards
    Genetics 2007 176 1
  • Heterosis of Arabidopsis hybrids between C24 and Col is associated with increased photosynthesis capacity
    R. Fujimoto, J. M. Taylor, S. Shirasawa, W. J. Peacock, E. S. Dennis
    Proceedings of the National Academy of Sciences 2012 109 18
  • Involvement of DNA methylation in tree development and micropropagation
    Luis Valledor, Rodrigo Hasbún, Mónica Meijón, Jose Luis Rodríguez, Estrella Santamaría, Marcos Viejo, Maria Berdasco, Isabel Feito, Mario F. Fraga, Maria Jesús Cañal, Roberto Rodríguez
    Plant Cell, Tissue and Organ Culture 2007 91 2
  • Regulation of flowering time in Arabidopsis by K homology domain proteins
    T. C. Mockler, X. Yu, D. Shalitin, D. Parikh, T. P. Michael, J. Liou, J. Huang, Z. Smith, J. M. Alonso, J. R. Ecker, J. Chory, C. Lin
    Proceedings of the National Academy of Sciences 2004 101 34
  • Resetting and regulation ofFLOWERING LOCUS Cexpression during Arabidopsis reproductive development
    Jean Choi, Youbong Hyun, Min-Jeong Kang, Hye In Yun, Jae-Young Yun, Clare Lister, Caroline Dean, Richard M. Amasino, Bosl Noh, Yoo-Sun Noh, Yeonhee Choi
    The Plant Journal 2009 57 5
  • A genetic network of flowering-time genes in wheat leaves, in which anAPETALA1/FRUITFULL-like gene,VRN1, is upstream ofFLOWERING LOCUS T
    Sanae Shimada, Taiichi Ogawa, Satoshi Kitagawa, Takayuki Suzuki, Chihiro Ikari, Naoki Shitsukawa, Tomoko Abe, Hiroyuki Kawahigashi, Rie Kikuchi, Hirokazu Handa, Koji Murai
    The Plant Journal 2009 58 4
  • Small RNA-mediated chromatin silencing directed to the 3' region of the Arabidopsis gene encoding the developmental regulator, FLC
    S. Swiezewski, P. Crevillen, F. Liu, J. R. Ecker, A. Jerzmanowski, C. Dean
    Proceedings of the National Academy of Sciences 2007 104 9
  • Analysis of the petunia MADS-box transcription factor family
    R. G. H. Immink, S. Ferrario, J. Busscher-Lange, M. Kooiker, M. Busscher, G. C. Angenent
    Molecular Genetics and Genomics 2003 268 5
  • Arabidopsis FLC clade members form flowering-repressor complexes coordinating responses to endogenous and environmental cues
    Xiaofeng Gu, Chau Le, Yizhong Wang, Zicong Li, Danhua Jiang, Yuqi Wang, Yuehui He
    Nature Communications 2013 4 1
  • AtGSNOR1 function is required for multiple developmental programs in Arabidopsis
    Eunjung Kwon, Angela Feechan, Byung-Wook Yun, Byung-Ho Hwang, Jacqueline A. Pallas, Jeong-Gu Kang, Gary J. Loake
    Planta 2012 236 3
  • Time measurement and the control of flowering in plants
    Alon Samach, George Coupland
    BioEssays 2000 22 1
  • Vernalization-Repression of Arabidopsis FLC Requires Promoter Sequences but Not Antisense Transcripts
    Chris A. Helliwell, Masumi Robertson, E. Jean Finnegan, Diana M. Buzas, Elizabeth S. Dennis, Miguel A. Blazquez
    PLoS ONE 2011 6 6
  • Delayed flowering time in Arabidopsis and Brassica rapa by the overexpression of FLOWERING LOCUS C (FLC) homologs isolated from Chinese cabbage (Brassica rapa L. ssp. pekinensis)
    Soo-Yun Kim, Beom-Seok Park, Soo-Jin Kwon, Jungsun Kim, Myung-Ho Lim, Young-Doo Park, Dool Yi Kim, Seok-Chul Suh, Yong-Moon Jin, Ji Hoon Ahn, Yeon-Hee Lee
    Plant Cell Reports 2007 26 3
  • Genomics tools for QTL analysis and gene discovery
    Justin O Borevitz, Joanne Chory
    Current Opinion in Plant Biology 2004 7 2
  • Repression of the floral transition via histone H2B monoubiquitination
    Xiaofeng Gu, Danhua Jiang, Yuqi Wang, Andreas Bachmair, Yuehui He
    The Plant Journal 2009 57 3
  • Control of the Transition to Flowering by Chromatin Modifications
    Yuehui He
    Molecular Plant 2009 2 4
  • Cis-regulatory Changes at FLOWERING LOCUS T Mediate Natural Variation in Flowering Responses of Arabidopsis thaliana
    Christopher Schwartz, Sureshkumar Balasubramanian, Norman Warthmann, Todd P. Michael, Janne Lempe, Sridevi Sureshkumar, Yasushi Kobayashi, Julin N. Maloof, Justin O. Borevitz, Joanne Chory, Detlef Weigel
    Genetics 2009 183 2
  • Detection of DNA methylation changes during somatic embryogenesis of Siberian ginseng (Eleuterococcus senticosus)
    Debasis Chakrabarty, K.W. Yu, K.Y. Paek
    Plant Science 2003 165 1
  • Epigenetic memory in plants
    Mayumi Iwasaki, Jerzy Paszkowski
    The EMBO Journal 2014 33 18
  • The FLC Locus: A Platform for Discoveries in Epigenetics and Adaptation
    Charles Whittaker, Caroline Dean
    Annual Review of Cell and Developmental Biology 2017 33 1
  • SKB1-mediated symmetric dimethylation of histone H4R3 controls flowering time in Arabidopsis
    Xin Wang, Ya Zhang, Qibin Ma, Zhaoliang Zhang, Yongbiao Xue, Shilai Bao, Kang Chong
    The EMBO Journal 2007 26 7
  • Remembering the Prolonged Cold of Winter
    Jie Song, Judith Irwin, Caroline Dean
    Current Biology 2013 23 17
  • The Arabidopsis thaliana Med25 mediator subunit integrates environmental cues to control plant development
    N. Elfving, C. Davoine, R. Benlloch, J. Blomberg, K. Brannstrom, D. Muller, A. Nilsson, M. Ulfstedt, H. Ronne, G. Wingsle, O. Nilsson, S. Bjorklund
    Proceedings of the National Academy of Sciences 2011 108 20
  • A floret by any other name: control of meristem identity in maize
    Paula McSteen, Debbie Laudencia-Chingcuanco, Joseph Colasanti
    Trends in Plant Science 2000 5 2
  • A naturally occurring splicing site mutation in the Brassica rapa FLC1 gene is associated with variation in flowering time
    Yu-Xiang Yuan, Jian Wu, Ri-Fei Sun, Xiao-Wei Zhang, Dong-Hui Xu, Guusje Bonnema, Xiao-Wu Wang
    Journal of Experimental Botany 2009 60 4
  • Light-regulated large-scale reorganization of chromatin during the floral transition in Arabidopsis
    Federico Tessadori, Roeland Kees Schulkes, Roel van Driel, Paul Fransz
    The Plant Journal 2007 50 5
  • Precocious flowering in trees: the FLOWERING LOCUS T gene as a research and breeding tool in Populus
    Huanling Zhang, David E. Harry, Cathleen Ma, Cetin Yuceer, Chuan-Yu Hsu, Vikas Vikram, Olga Shevchenko, Elizabeth Etherington, Steven H. Strauss
    Journal of Experimental Botany 2010 61 10
  • Histone arginine methylation is required for vernalization-induced epigenetic silencing of FLC in winter-annual Arabidopsis thaliana
    R. J. Schmitz, S. Sung, R. M. Amasino
    Proceedings of the National Academy of Sciences 2008 105 2
  • Long-distance regulation of flowering time
    C. Turnbull
    Journal of Experimental Botany 2011 62 13
  • Ectopic Expression of an Orchid (Oncidium Gower Ramsey) AGL6-like Gene Promotes Flowering by Activating Flowering Time Genes in Arabidopsis thaliana
    Hsing-Fun Hsu, Chih-Hsiang Huang, Lu-Tung Chou, Chang-Hsien Yang
    Plant and Cell Physiology 2003 44 8
  • Keeping the gate closed: functions of the polycomb repressive complex PRC2 in development
    Iva Mozgova, Claudia Köhler, Lars Hennig
    The Plant Journal 2015 83 1
  • FRIGIDA-related genes are required for the winter-annual habit in Arabidopsis
    S. D. Michaels, I. C. Bezerra, R. M. Amasino
    Proceedings of the National Academy of Sciences 2004 101 9
  • Molecular Functions of Long Non-Coding RNAs in Plants
    Qian-Hao Zhu, Ming-Bo Wang
    Genes 2012 3 1
  • Plant Development
    Maria C. Albani, George Coupland
    2010 91
  • Regulation of Plant Developmental Processes by a Novel Splicing Factor
    Gul Shad Ali, Saiprasad G. Palusa, Maxim Golovkin, Jayendra Prasad, James L. Manley, Anireddy S.N. Reddy, Stefan Kepinski
    PLoS ONE 2007 2 5
  • Response of plant development to environment: control of flowering by daylength and temperature
    Paul H Reeves, George Coupland
    Current Opinion in Plant Biology 2000 3 1
  • Vernalization: A model for investigating epigenetics and eukaryotic gene regulation in plants
    Robert J. Schmitz, Richard M. Amasino
    Biochimica et Biophysica Acta (BBA) - Gene Structure and Expression 2007 1769 5-6
  • The downregulation of FLOWERING LOCUS C (FLC) expression in plants with low levels of DNA methylation and by vernalization occurs by distinct mechanisms
    E. Jean Finnegan, Kathryn A. Kovac, Estelle Jaligot, Candice C. Sheldon, W. James Peacock, Elizabeth S. Dennis
    The Plant Journal 2005 44 3
  • Combinatorial activities of SHORT VEGETATIVE PHASE and FLOWERING LOCUS C define distinct modes of flowering regulation in Arabidopsis
    Julieta L Mateos, Pedro Madrigal, Kenichi Tsuda, Vimal Rawat, René Richter, Maida Romera-Branchat, Fabio Fornara, Korbinian Schneeberger, Paweł Krajewski, George Coupland
    Genome Biology 2015 16 1
  • The Role of a Pseudo-Response Regulator Gene in Life Cycle Adaptation and Domestication of Beet
    Pierre A. Pin, Wenying Zhang, Sebastian H. Vogt, Nadine Dally, Bianca Büttner, Gretel Schulze-Buxloh, Noémie S. Jelly, Tansy Y.P. Chia, Effie S. Mutasa-Göttgens, Juliane C. Dohm, Heinz Himmelbauer, Bernd Weisshaar, Josef Kraus, Jan J.L. Gielen, Murielle Lommel, Guy Weyens, Bettina Wahl, Axel Schechert, Ove Nilsson, Christian Jung, Thomas Kraft, Andreas E. Müller
    Current Biology 2012 22 12
  • A plant-specific histone H3 lysine 4 demethylase represses the floral transition in Arabidopsis
    Wannian Yang, Danhua Jiang, Jiafu Jiang, Yuehui He
    The Plant Journal 2010 62 4
  • Overexpression of the CBF2 transcriptional activator in Arabidopsis delays leaf senescence and extends plant longevity
    Michal Sharabi-Schwager, Amnon Lers, Alon Samach, Charles L. Guy, Ron Porat
    Journal of Experimental Botany 2010 61 1
  • Genetic and physical mapping of flowering time loci in canola (Brassica napus L.)
    Harsh Raman, Rosy Raman, Paul Eckermann, Neil Coombes, Sahana Manoli, Xiaoxiao Zou, David Edwards, Jinling Meng, Roslyn Prangnell, Jiri Stiller, Jacqueline Batley, David Luckett, Neil Wratten, Elizabeth Dennis
    Theoretical and Applied Genetics 2013 126 1
  • Photoperiodic flowering of Arabidopsis: integrating genetic and physiological approaches to characterization of the floral stimulus
    L. CORBESIER, G. COUPLAND
    Plant, Cell and Environment 2005 28 1
  • Vernalization and flowering time
    Richard M Amasino
    Current Opinion in Biotechnology 2005 16 2
  • Control of lateral organ development and flowering time by the Arabidopsis thaliana MADS-box Gene AGAMOUS-LIKE6
    Sung C. Koo, Oliver Bracko, Mi S. Park, Rebecca Schwab, Hyun J. Chun, Kyoung M. Park, Jun S. Seo, Vojislava Grbic, Sureshkumar Balasubramanian, Markus Schmid, François Godard, Dae-Jin Yun, Sang Y. Lee, Moo J. Cho, Detlef Weigel, Min C. Kim
    The Plant Journal 2010 62 5
  • Epialleles — a source of random variation in times of stress
    E.Jean Finnegan
    Current Opinion in Plant Biology 2002 5 2
  • BrFLC2 (FLOWERING LOCUS C) as a candidate gene for a vernalization response QTL in Brassica rapa
    Jianjun Zhao, Vani Kulkarni, Nini Liu, Dunia Pino Del Carpio, Johan Bucher, Guusje Bonnema
    Journal of Experimental Botany 2010 61 6
  • Forecasting flowering phenology under climate warming by modelling the regulatory dynamics of flowering-time genes
    Akiko Satake, Tetsuhiro Kawagoe, Yukari Saburi, Yukako Chiba, Gen Sakurai, Hiroshi Kudoh
    Nature Communications 2013 4 1
  • The control of flowering by vernalization
    Candice C Sheldon, E Jean Finnegan, Dean T Rouse, Million Tadege, David J Bagnall, Chris A Helliwell, W James Peacock, Elizabeth S Dennis
    Current Opinion in Plant Biology 2000 3 5
  • Vernalization-induced flowering in wheat is mediated by a lectin-like gene VER2
    Wei-dong Yong, Yun-yuan Xu, Wen-zhong Xu, Xin Wang, Ning Li, Jin-song Wu, Tie-bing Liang, Kang Chong, Zhi-hong Xu, Ke-hui Tan, Zhi-qing Zhu
    Planta 2003 217 2
  • Beyond the ABCs: ternary complex formation in the control of floral organ identity
    Marcos Egea Gutierrez-Cortines, Brendan Davies
    Trends in Plant Science 2000 5 11
  • Lesions in the mRNA cap-binding gene ABA HYPERSENSITIVE 1 suppress FRIGIDA-mediated delayed flowering in Arabidopsis
    Isabel C. Bezerra, Scott D. Michaels, Fritz M. Schomburg, Richard M. Amasino
    The Plant Journal 2004 40 1
  • Remembrance of Things Past: Chromatin Remodeling in Plant Development
    Justin Goodrich, Susan Tweedie
    Annual Review of Cell and Developmental Biology 2002 18 1
  • The Need for Winter in the Switch to Flowering
    Ian R. Henderson, Chikako Shindo, Caroline Dean
    Annual Review of Genetics 2003 37 1
  • Nonsense-mediated mRNA decay modulates FLM-dependent thermosensory flowering response in Arabidopsis
    Sridevi Sureshkumar, Craig Dent, Andrei Seleznev, Celine Tasset, Sureshkumar Balasubramanian
    Nature Plants 2016 2 5
  • Circadian rhythms in plants: a millennial view
    C. Robertson McClung
    Physiologia Plantarum 2000 109 4
  • Reciprocal control of flowering time by OsSOC1 in transgenic Arabidopsis and by FLC in transgenic rice
    Million Tadege, Candice C. Sheldon, Chris A. Helliwell, Narayana M. Upadhyaya, Elizabeth S. Dennis, W. James Peacock
    Plant Biotechnology Journal 2003 1 5
  • Vernalization-induced changes of the DNA methylation pattern in winter wheat
    Jamie D Sherman, Luther E Talbert
    Genome 2002 45 2
  • FLC, a repressor of flowering, is regulated by genes in different inductive pathways
    Dean T. Rouse, Candice C. Sheldon, David J. Bagnall, W. James Peacock, Elizabeth S. Dennis
    The Plant Journal 2002 29 2
  • The VERNALIZATION INDEPENDENCE 4 gene encodes a novel regulator of FLOWERING LOCUS C
    Hua Zhang, Steven Van Nocker
    The Plant Journal 2002 31 5
  • The development of ISSR-derived SCAR markers around the SEASONAL FLOWERING LOCUS (SFL) in Fragaria vesca
    M. C. Albani, N. H. Battey, M. J. Wilkinson
    Theoretical and Applied Genetics 2004 109 3
  • Molecular phenology in plants: in natura systems biology for the comprehensive understanding of seasonal responses under natural environments
    Hiroshi Kudoh
    New Phytologist 2016 210 2
  • Quantitative effects of vernalization onFLCandSOC1expression
    Candice C. Sheldon, E. Jean Finnegan, Elizabeth S. Dennis, W. James Peacock
    The Plant Journal 2006 45 6
  • Whole-Genome Resequencing of a Worldwide Collection of Rapeseed Accessions Reveals the Genetic Basis of Ecotype Divergence
    Dezhi Wu, Zhe Liang, Tao Yan, Ying Xu, Lijie Xuan, Juan Tang, Gang Zhou, Ulrike Lohwasser, Shuijin Hua, Haoyi Wang, Xiaoyang Chen, Qian Wang, Le Zhu, Antony Maodzeka, Nazim Hussain, Zhilan Li, Xuming Li, Imran Haider Shamsi, Ghulam Jilani, Linde Wu, Hongkun Zheng, Guoping Zhang, Boulos Chalhoub, Lisha Shen, Hao Yu, Lixi Jiang
    Molecular Plant 2019 12 1
  • AGAMOUS-LIKE 6is a floral promoter that negatively regulates theFLC/MAFclade genes and positively regulatesFTin Arabidopsis
    Seung Kwan Yoo, Xuelin Wu, Jong Seob Lee, Ji Hoon Ahn
    The Plant Journal 2011 65 1
  • Haplotype Structure and Phenotypic Associations in the Chromosomal Regions Surrounding Two Arabidopsis thaliana Flowering Time Loci
    Jenny Hagenblad, Chunlao Tang, John Molitor, Jonathan Werner, Keyan Zhao, Honggang Zheng, Paul Marjoram, Detlef Weigel, Magnus Nordborg
    Genetics 2004 168 3
  • Involvement of brassinosteroid signals in the floral-induction network of Arabidopsis
    J. Li, Y. Li, S. Chen, L. An
    Journal of Experimental Botany 2010 61 15
  • Cloning and characterisation of grapevine (Vitis vinifera L.) MADS-box genes expressed during inflorescence and berry development
    Paul K Boss, Elisabetta Sensi, Chi Hua, Chris Davies, Mark R Thomas
    Plant Science 2002 162 6
  • Candidate Genes, Quantitative Trait Loci, and Functional Trait Evolution in Plants
    David L. Remington, Michael D. Purugganan
    International Journal of Plant Sciences 2003 164 S3
  • Mutations in theArabidopsis SWC6gene, encoding a component of the SWR1 chromatin remodelling complex, accelerate flowering time and alter leaf and flower development
    Ana Lázaro, Ángeles Gómez-Zambrano, Leticia López-González, Manuel Piñeiro, Jose A. Jarillo
    Journal of Experimental Botany 2008 59 3
  • ‘Florigen’ enters the molecular age: long-distance signals that cause plants to flower
    Joseph Colasanti, Venkatesan Sundaresan
    Trends in Biochemical Sciences 2000 25 5
  • Plant sexual reproduction during climate change: gene function in natura studied by ecological and evolutionary systems biology
    Kentaro K. Shimizu, Hiroshi Kudoh, Masaki J. Kobayashi
    Annals of Botany 2011 108 4
  • Antisense-mediated FLC transcriptional repression requires the P-TEFb transcription elongation factor
    Z.-W. Wang, Z. Wu, O. Raitskin, Q. Sun, C. Dean
    Proceedings of the National Academy of Sciences 2014 111 20
  • MADS-box gene evolution—structure and transcription patterns
    Bo Johansen, Louise B. Pedersen, Martin Skipper, Signe Frederiksen
    Molecular Phylogenetics and Evolution 2002 23 3
  • Mutually exclusive sense–antisense transcription at FLC facilitates environmentally induced gene repression
    Stefanie Rosa, Susan Duncan, Caroline Dean
    Nature Communications 2016 7 1
  • A Cluster of Arabidopsis Genes with a Coordinate Response to an Environmental Stimulus
    E.Jean Finnegan, Candice C Sheldon, Francois Jardinaud, W.James Peacock, Elizabeth S Dennis
    Current Biology 2004 14 10
  • Low temperatures induce rapid changes in chromatin state and transcript levels of the cereal VERNALIZATION1 gene
    Sandra N. Oliver, Weiwei Deng, M. Cristina Casao, Ben Trevaskis
    Journal of Experimental Botany 2013 64 8
  • Arabidopsis PCFS4, a homologue of yeast polyadenylation factor Pcf11p, regulates FCA alternative processing and promotes flowering time
    Denghui Xing, Hongwei Zhao, Ruqiang Xu, Qingshun Quinn Li
    The Plant Journal 2008 54 5
  • Stress tolerance to stress escape in plants: role of the OXS2 zinc-finger transcription factor family
    Robert Blanvillain, Spencer Wei, Pengcheng Wei, Jong Heon Kim, David W Ow
    The EMBO Journal 2011 30 18
  • Vernalization Response in Perennial Ryegrass (Lolium perenne L.) Involves Orthologues of Diploid Wheat (Triticum monococcum) VRN1 and Rice (Oryza sativa) Hd1
    Jeppe Reitan Andersen, Louise Bach Jensen, Torben Asp, Thomas Lübberstedt
    Plant Molecular Biology 2006 60 4
  • From Decision to Commitment: The Molecular Memory of Flowering
    Jessika Adrian, Stefano Torti, Franziska Turck
    Molecular Plant 2009 2 4
  • Transcription-dependence of histone H3 lysine 27 trimethylation at the Arabidopsis polycomb target gene FLC
    Diana Mihaela Buzas, Masumi Robertson, E. Jean Finnegan, Chris A. Helliwell
    The Plant Journal 2011 65 6
  • Antagonistic Roles of SEPALLATA3, FT and FLC Genes as Targets of the Polycomb Group Gene CURLY LEAF
    Manuel Lopez-Vernaza, Suxin Yang, Ralf Müller, Frazer Thorpe, Erica de Leau, Justin Goodrich, Miguel A. Blazquez
    PLoS ONE 2012 7 2
  • Histone Acetylation, VERNALIZATION INSENSITIVE 3 , FLOWERING LOCUS C , and the Vernalization Response
    Donna M. Bond, Elizabeth S. Dennis, Barry J. Pogson, E. Jean Finnegan
    Molecular Plant 2009 2 4
  • PEP1 of Arabis alpina Is Encoded by Two Overlapping Genes That Contribute to Natural Genetic Variation in Perennial Flowering
    Maria C. Albani, Loren Castaings, Stefan Wötzel, Julieta L. Mateos, Jörg Wunder, Renhou Wang, Mathieu Reymond, George Coupland, Hao Yu
    PLoS Genetics 2012 8 12
  • Seasonal shift in timing of vernalization as an adaptation to extreme winter
    Susan Duncan, Svante Holm, Julia Questa, Judith Irwin, Alastair Grant, Caroline Dean
    eLife 2015 4
  • Wheat VIN3-like PHD finger genes are up-regulated by vernalization
    Daolin Fu, Mignon Dunbar, Jorge Dubcovsky
    Molecular Genetics and Genomics 2007 277 3
  • mRNA metabolism of flowering-time regulators in wild-type Arabidopsis revealed by a nuclear cap binding protein mutant, abh1
    Josef M. Kuhn, Ghislain Breton, Julian I. Schroeder
    The Plant Journal 2007 50 6
  • Chilling and heat requirements for local and foreign almond (Prunus dulcis Mill.) cultivars in a warm Mediterranean location based on 30 years of phenology records
    Haïfa Benmoussa, Mohamed Ghrab, Mehdi Ben Mimoun, Eike Luedeling
    Agricultural and Forest Meteorology 2017 239
  • Epigenetics in plants—vernalisation and hybrid vigour
    Michael Groszmann, Ian K. Greaves, Nicolas Albert, Ryo Fujimoto, Chris A. Helliwell, Elizabeth S. Dennis, W. James Peacock
    Biochimica et Biophysica Acta (BBA) - Gene Regulatory Mechanisms 2011 1809 8
  • HUA2 is required for the expression of floral repressors in Arabidopsis thaliana
    Mark R. Doyle, Colleen M. Bizzell, Melissa R. Keller, Scott D. Michaels, Judong Song, Yoo-Sun Noh, Richard M. Amasino
    The Plant Journal 2004 41 3
  • Sequential action of FRUITFULL as a modulator of the activity of the floral regulators SVP and SOC1
    Vicente Balanzà, Irene Martínez-Fernández, Cristina Ferrándiz
    Journal of Experimental Botany 2014 65 4
  • Variation in Arabidopsis flowering time associated with cis-regulatory variation in CONSTANS
    Ulises Rosas, Yu Mei, Qiguang Xie, Joshua A. Banta, Royce W. Zhou, Gabriela Seufferheld, Silvia Gerard, Lucy Chou, Naeha Bhambhra, Jennifer Deane Parks, Jonathan M. Flowers, C. Robertson McClung, Yoshie Hanzawa, Michael D. Purugganan
    Nature Communications 2014 5 1
  • Arabidopsis Potential Calcium Sensors Regulate Nitric Oxide Levels and the Transition to Flowering
    Yu-Chang Tsai, Nikkí A. Delk, Naweed I. Chowdhury, Janet Braam
    Plant Signaling & Behavior 2007 2 6
  • Flowering time control: gene network modelling and the link to quantitative genetics
    Stephen M. Welch, Zhanshan Dong, Judith L. Roe, Sanjoy Das
    Australian Journal of Agricultural Research 2005 56 9
  • Evolutionary conservation of cold-induced antisense RNAs of FLOWERING LOCUS C in Arabidopsis thaliana perennial relatives
    Loren Castaings, Sara Bergonzi, Maria C. Albani, Ulla Kemi, Outi Savolainen, George Coupland
    Nature Communications 2014 5 1
  • Make hay when the sun shines: The role of MADS-box genes in temperature-dependant seasonal flowering responses
    Megan N. Hemming, Ben Trevaskis
    Plant Science 2011 180 3
  • Does sequence polymorphism of FLC paralogues underlie flowering time QTL in Brassica oleracea?
    H. Razi, E. C. Howell, H. J. Newbury, M. J. Kearsey
    Theoretical and Applied Genetics 2008 116 2
  • PtFLC homolog from trifoliate orange (Poncirus trifoliata) is regulated by alternative splicing and experiences seasonal fluctuation in expression level
    Jin-Zhi Zhang, Zhi-Min Li, Li Mei, Jia-Ling Yao, Chun-Gen Hu
    Planta 2009 229 4
  • C2H2 zinc finger-SET histone methyltransferase is a plant-specific chromatin modifier
    Alexander Krichevsky, Helen Gutgarts, Stanislav V. Kozlovsky, Tzvi Tzfira, Ann Sutton, Rolf Sternglanz, Gail Mandel, Vitaly Citovsky
    Developmental Biology 2007 303 1
  • DICER-LIKE 1 and DICER-LIKE 3 Redundantly Act to Promote Flowering via Repression of FLOWERING LOCUS C in Arabidopsis thaliana
    Robert J. Schmitz, Lewis Hong, Kathleen E. Fitzpatrick, Richard M. Amasino
    Genetics 2007 176 2
  • Mechanisms of gene repression by vernalization in Arabidopsis
    Candice C. Sheldon, E. Jean Finnegan, W. James Peacock, Elizabeth S. Dennis
    The Plant Journal 2009 59 3
  • The Arabidopsis TALE homeobox geneATH1controls floral competency through positive regulation ofFLC
    Marcel Proveniers, Bas Rutjens, Marco Brand, Sjef Smeekens
    The Plant Journal 2007 52 5
  • A gene encoding an RNase D exonuclease-like protein is required for post-transcriptional silencing inArabidopsis
    Eugene Glazov, Kenneth Phillips, Gregory J. Budziszewski, Frederick Meins, Joshua Z. Levin
    The Plant Journal 2003 35 3
  • ARABIDOPSIS TRITHORAX-RELATED3/SET DOMAIN GROUP2 is Required for the Winter-Annual Habit of Arabidopsis thaliana
    Jae-Young Yun, Yosuke Tamada, Ye Eun Kang, Richard M. Amasino
    Plant and Cell Physiology 2012 53 5
  • AtMBD9: a protein with a methyl-CpG-binding domain regulates flowering time and shoot branching in Arabidopsis
    Mingsheng Peng, Yuhai Cui, Yong-Mei Bi, Steven J. Rothstein
    The Plant Journal 2006 46 2
  • Delay in flowering and increase in biomass of transgenic tobacco expressing the Arabidopsis floral repressor gene FLOWERING LOCUS C
    Hassan Salehi, Callista B. Ransom, Hesham F. Oraby, Zahra Seddighi, Mariam B. Sticklen
    Journal of Plant Physiology 2005 162 6
  • Feedstock Crop Genetic Engineering for Alcohol Fuels
    Mariam B. Sticklen
    Crop Science 2007 47 6
  • Functional analysis of splice variant expression of MADS AFFECTING FLOWERING 2 of Arabidopsis thaliana
    Sarah Marie Rosloski, Anandita Singh, Sathya Sheela Jali, Sureshkumar Balasubramanian, Detlef Weigel, Vojislava Grbic
    Plant Molecular Biology 2013 81 1-2
  • Put your 3D glasses on: plant chromatin is on show
    Natalia Y. Rodriguez-Granados, Juan S. Ramirez-Prado, Alaguraj Veluchamy, David Latrasse, Cécile Raynaud, Martin Crespi, Federico Ariel, Moussa Benhamed
    Journal of Experimental Botany 2016 67 11
  • Role of vernalization and of duplicatedFLOWERING LOCUS Cin the perennialArabidopsis lyrata
    Ulla Kemi, Anne Niittyvuopio, Tuomas Toivainen, Anu Pasanen, Bénédicte Quilot-Turion, Karl Holm, Ulf Lagercrantz, Outi Savolainen, Helmi Kuittinen
    New Phytologist 2013 197 1
  • VERNALIZATION INSENSITIVE 3(VIN3) is required for the response ofArabidopsis thalianaseedlings exposed to low oxygen conditions
    Donna M. Bond, Iain W. Wilson, Elizabeth S. Dennis, Barry J. Pogson, E. Jean Finnegan
    The Plant Journal 2009 59 4
  • EMF1 Interacts with EIP1, EIP6 or EIP9 Involved in the Regulation of Flowering Time in Arabidopsis
    Hee-Yeon Park, Sun-Young Lee, Hye-Yeon Seok, Sun-Ho Kim, Z. Renee Sung, Yong-Hwan Moon
    Plant and Cell Physiology 2011 52 8
  • Genetic and Epigenetic Mechanisms Underlying Vernalization
    Dong-Hwan Kim, Sibum Sung
    The Arabidopsis Book 2014 12
  • The contribution of polyploidy to variation in Brassica species
    Thomas C. Osborn
    Physiologia Plantarum 2004 121 4
  • Characterization of Tobacco MADS-box Genes Involved in Floral Initiation
    Seonghoe Jang, Kyungsook An, Shinyoung Lee, Gynheung An
    Plant and Cell Physiology 2002 43 2
  • Cloning and expression analysis of GmGAL1, SOC1 homolog gene in soybean
    Xiaofang Zhong, Xi Dai, Jiaohui Xv, Hanying Wu, Bin Liu, Hongyu Li
    Molecular Biology Reports 2012 39 6
  • Mechanisms of floral repression in Arabidopsis
    Z Renee Sung, Lingjing Chen, Yong-Hwan Moon, Kvin Lertpiriyapong
    Current Opinion in Plant Biology 2003 6 1
  • Hairy Root-activation Tagging: a High-throughput System for Activation Tagging in Transformed Hairy Roots
    Hikaru Seki, Tomoko Nishizawa, Nobukazu Tanaka, Yasuo Niwa, Shigeo Yoshida, Toshiya Muranaka
    Plant Molecular Biology 2005 59 5
  • Multiple flowering time QTLs within several Brassica species could be the result of duplicated copies of one ancestral gene
    Tomas Axelsson, Oksana Shavorskaya, Ulf Lagercrantz
    Genome 2001 44 5
  • NATURAL VARIATION IN EPIGENETIC GENE REGULATION AND ITS EFFECTS ON PLANT DEVELOPMENTAL TRAITS
    Franziska Turck, George Coupland
    Evolution 2014 68 3
  • Quantitative regulation of FLC via coordinated transcriptional initiation and elongation
    Zhe Wu, Robert Ietswaart, Fuquan Liu, Hongchun Yang, Martin Howard, Caroline Dean
    Proceedings of the National Academy of Sciences 2016 113 1
  • Vernalization requirement duration in winter wheat is controlled by T a VRN ‐ A 1 at the protein level
    Genqiao Li, Ming Yu, Tilin Fang, Shuanghe Cao, Brett F. Carver, Liuling Yan
    The Plant Journal 2013 76 5
  • Arabidopsis FLL2 promotes liquid–liquid phase separation of polyadenylation complexes
    Xiaofeng Fang, Liang Wang, Ryo Ishikawa, Yaoxi Li, Marc Fiedler, Fuquan Liu, Grant Calder, Beth Rowan, Detlef Weigel, Pilong Li, Caroline Dean
    Nature 2019 569 7755
  • AtMBD9 modulates Arabidopsis development through the dual epigenetic pathways of DNA methylation and histone acetylation
    Mahmoud W. F. Yaish, Mingsheng Peng, Steven J. Rothstein
    The Plant Journal 2009 59 1
  • Divergence of annual and perennial species in the Brassicaceae and the contribution of cis-acting variation atFLCorthologues
    C. Kiefer, E. Severing, R. Karl, S. Bergonzi, M. Koch, A. Tresch, G. Coupland
    Molecular Ecology 2017 26 13
  • Identification of quantitative trait loci controlling late bolting in Chinese cabbage (Brassica rapa L.) parental line Nou 6 gou
    Tomohiro Kakizaki, Takeyuki Kato, Nobuko Fukino, Masahiko Ishida, Katsunori Hatakeyama, Satoru Matsumoto
    Breeding Science 2011 61 2
  • Gibberellin response mutants identified by luciferase imaging
    Carsten Meier, Thomas Bouquin, Mads Eggert Nielsen, Dora Raventos, Ole Mattsson, Anne Rocher, Fritz Schomburg, Richard M. Amasino, John Mundy
    The Plant Journal 2001 25 5
  • DELLA proteins interact with FLC to repress flowering transition
    Mingzhe Li, Fengying An, Wenyang Li, Mengdi Ma, Ying Feng, Xing Zhang, Hongwei Guo
    Journal of Integrative Plant Biology 2016 58 7
  • Flowering induced by 5-azacytidine, a DNA demethylating reagent in a short-day plant, Perilla frutescens var. crispa
    Hiroshi Kondo, Hiroko Ozaki, Kimiko Itoh, Akira Kato, Kiyotoshi Takeno
    Physiologia Plantarum 2006 127 1
  • HUA2 Caused Natural Variation in Shoot Morphology of A. thaliana
    Qing Wang, Uday Sajja, Sarah Rosloski, Tania Humphrey, Min Chul Kim, Kirsten Bomblies, Detlef Weigel, Vojislava Grbic
    Current Biology 2007 17 17
  • A stochastic model of chromatin modification: Cell population coding of winter memory in plants
    Akiko Satake, Yoh Iwasa
    Journal of Theoretical Biology 2012 302
  • Altered interactions within FY/AtCPSF complexes required for Arabidopsis FCA-mediated chromatin silencing
    D. Manzano, S. Marquardt, A. M. E. Jones, I. Baurle, F. Liu, C. Dean
    Proceedings of the National Academy of Sciences 2009 106 21
  • Complex Rearrangements Lead to Novel Chimeric Gene Fusion Polymorphisms at the Arabidopsis thaliana MAF2-5 Flowering Time Gene Cluster
    A. L. Caicedo, C. Richards, I. M. Ehrenreich, M. D. Purugganan
    Molecular Biology and Evolution 2008 26 3
  • Histone variants in plant transcriptional regulation
    Danhua Jiang, Frédéric Berger
    Biochimica et Biophysica Acta (BBA) - Gene Regulatory Mechanisms 2017 1860 1
  • Natural variation in the temperature range permissive for vernalization in accessions ofArabidopsis thaliana
    AMANDA C. WOLLENBERG, RICHARD M. AMASINO
    Plant, Cell & Environment 2012 35 12
  • Nature of stress and transgene locus influences transgene expression stability in barley
    Ling Meng, Meira Ziv, Peggy G. Lemaux
    Plant Molecular Biology 2006 62 1-2
  • Plant SET- and RING-associated domain proteins in heterochromatinization
    Shiming Liu, Yu Yu, Ying Ruan, Denise Meyer, Michel Wolff, Lin Xu, Ning Wang, Andre Steinmetz, Wen-Hui Shen
    The Plant Journal 2007 52 5
  • Transcription analysis of peloric mutants of Phalaenopsis orchids derived from tissue culture
    Ya Huei CHEN, Yi Jung TSAI, Jian Zhi HUANG, Fure Chyi CHEN
    Cell Research 2005 15 8
  • Evolution of flowering in response to day length: Flipping theCONSTANS switch
    Gordon G. Simpson
    BioEssays 2003 25 9
  • Microarray Analysis Reveals Vegetative Molecular Phenotypes of Arabidopsis Flowering-time Mutants
    Iain W. Wilson, Gavin C. Kennedy, James W. Peacock, Elizabeth S. Dennis
    Plant and Cell Physiology 2005 46 8
  • Regulation of meristem activity by chromatin remodelling
    Soazig Guyomarc'h, Claire Bertrand, Marianne Delarue, Dao-Xiu Zhou
    Trends in Plant Science 2005 10 7
  • The role of BoFLC2 in cauliflower (Brassica oleracea var. botrytis L.) reproductive development
    Stephen Ridge, Philip H. Brown, Valérie Hecht, Ronald G. Driessen, James L. Weller
    Journal of Experimental Botany 2015 66 1
  • The trxG family histone methyltransferase SET DOMAIN GROUP 26 promotes flowering via a distinctive genetic pathway
    Alexandre Berr, Sarfraz Shafiq, Violaine Pinon, Aiwu Dong, Wen-Hui Shen
    The Plant Journal 2015 81 2
  • A regulatory circuit conferring varied flowering response to cold in annual and perennial plants
    Youbong Hyun, Coral Vincent, Vicky Tilmes, Sara Bergonzi, Christiane Kiefer, René Richter, Rafael Martinez-Gallegos, Edouard Severing, George Coupland
    Science 2019 363 6425
  • Ambient temperature signaling in plants: An emerging field in the regulation of flowering time
    Jeong Hwan Lee, Jong Seob Lee, Ji Hoon Ahn
    Journal of Plant Biology 2008 51 5
  • Ectopic Expression of a WRKY Homolog from Glycine soja Alters Flowering Time in Arabidopsis
    Xiao Luo, Xiaoli Sun, Baohui Liu, Dan Zhu, Xi Bai, Hua Cai, Wei Ji, Lei Cao, Jing Wu, Mingchao Wang, Xiaodong Ding, Yanming Zhu, Ji-Hong Liu
    PLoS ONE 2013 8 8
  • Evolution ofCONSTANSRegulation and Function after Gene Duplication Produced a Photoperiodic Flowering Switch in the Brassicaceae
    Samson Simon, Mark Rühl, Amaury de Montaigu, Stefan Wötzel, George Coupland
    Molecular Biology and Evolution 2015 32 9
  • UGT87A2, an Arabidopsis glycosyltransferase, regulates flowering time viaFLOWERING LOCUS C
    Bo Wang, Shang-Hui Jin, Hong-Qun Hu, Yan-Guo Sun, Yan-Wen Wang, Ping Han, Bing-Kai Hou
    New Phytologist 2012 194 3
  • A bacterial artificial chromosome (BAC) library of sugar beet and a physical map of the region encompassing the bolting gene B
    U. Hohmann, G. Jacobs, A. Telgmann, R. M. Gaafar, S. Alam, C. Jung
    Molecular Genetics and Genomics 2003 269 1
  • A naturally occurring long insertion in the first intron in the Brassica rapa FLC2 gene causes delayed bolting
    Naoko Kitamoto, Susumu Yui, Kazuhiro Nishikawa, Yoshihito Takahata, Shuji Yokoi
    Euphytica 2014 196 2
  • FLC-mediated flowering repression is positively regulated by sumoylation
    Ga Hyun Son, Bong Soo Park, Jong Tae Song, Hak Soo Seo
    Journal of Experimental Botany 2014 65 1
  • Growing up fast: manipulating the generation time of trees
    Mar Martı́n-Trillo, José M Martı́nez-Zapater
    Current Opinion in Biotechnology 2002 13 2
  • In silico integration of quantitative trait loci for seed yield and yield-related traits in Brassica napus
    Qing-Hong Zhou, Dong-Hui Fu, Annaliese S. Mason, Yong-Jun Zeng, Chao-Xian Zhao, Ying-Jin Huang
    Molecular Breeding 2014 33 4
  • Chloroplast retrograde signal regulates flowering
    Peiqiang Feng, Hailong Guo, Wei Chi, Xin Chai, Xuwu Sun, Xiumei Xu, Jinfang Ma, Jean-David Rochaix, Dario Leister, Haiyang Wang, Congming Lu, Lixin Zhang
    Proceedings of the National Academy of Sciences 2016 113 38
  • General-Purpose Genotype or How Epigenetics Extend the Flexibility of a Genotype
    Rachel Massicotte, Bernard Angers
    Genetics Research International 2012 2012
  • MADS-box genes and crop domestication: the jack of all traits
    Susanne Schilling, Sirui Pan, Alice Kennedy, Rainer Melzer
    Journal of Experimental Botany 2018 69 7
  • Polycomb proteins regulate the quantitative induction of VERNALIZATION INSENSITIVE 3 in response to low temperatures
    E. Jean Finnegan, Donna M. Bond, Diana M. Buzas, Justin Goodrich, Christopher A. Helliwell, Yosuke Tamada, Jae-Young Yun, Richard M. Amasino, Elizabeth S. Dennis
    The Plant Journal 2011 65 3
  • Posttranscriptional control of plant development
    Yulan Cheng, Xuemei Chen
    Current Opinion in Plant Biology 2004 7 1
  • Cell-Size-Dependent Transcription of FLC and Its Antisense Long Non-coding RNA COOLAIR Explain Cell-to-Cell Expression Variation
    Robert Ietswaart, Stefanie Rosa, Zhe Wu, Caroline Dean, Martin Howard
    Cell Systems 2017 4 6
  • DNA Methylation: Basic Mechanisms
    B. F. Vanyushin
    2006 301
  • Epigenetic perspectives on the evolution and domestication of polyploid plant and crops
    Mingquan Ding, Z Jeffrey Chen
    Current Opinion in Plant Biology 2018 42
  • Imitation Switch chromatin remodeling factors and their interacting RINGLET proteins act together in controlling the plant vegetative phase in Arabidopsis
    Guang Li, Jiawei Zhang, Jiqin Li, Zhongnan Yang, Hai Huang, Lin Xu
    The Plant Journal 2012 72 2
  • BRR2a Affects Flowering Time via FLC Splicing
    Walid Mahrez, Juhyun Shin, Rafael Muñoz-Viana, Duarte D. Figueiredo, Minerva S. Trejo-Arellano, Vivien Exner, Alexey Siretskiy, Wilhelm Gruissem, Claudia Köhler, Lars Hennig, Gregory P. Copenhaver
    PLOS Genetics 2016 12 4
  • CYCLIN-DEPENDENT KINASE G2 regulates salinity stress response and salt mediated flowering in Arabidopsis thaliana
    Xiaoyan Ma, Zhu Qiao, Donghua Chen, Weiguo Yang, Ruijia Zhou, Wei Zhang, Mei Wang
    Plant Molecular Biology 2015 88 3
  • MADS-Box Genes Are Key Components of Genetic Regulatory Networks Involved in Abiotic Stress and Plastic Developmental Responses in Plants
    Natalia Castelán-Muñoz, Joel Herrera, Wendy Cajero-Sánchez, Maite Arrizubieta, Carlos Trejo, Berenice García-Ponce, María de la Paz Sánchez, Elena R. Álvarez-Buylla, Adriana Garay-Arroyo
    Frontiers in Plant Science 2019 10
  • NO flowering
    Gordon G. Simpson
    BioEssays 2005 27 3
  • Seasonal and plant-density dependency for quantitative trait loci affecting flowering time in multiple populations of Arabidopsis thaliana
    JAVIER F. BOTTO, MARÍA PAULA COLUCCIO
    Plant, Cell & Environment 2007 30 11
  • Splicing Variation at a FLOWERING LOCUS C Homeolog Is Associated With Flowering Time Variation in the Tetraploid Capsella bursa-pastoris
    Tanja Slotte, Hui-Run Huang, Karl Holm, Alf Ceplitis, Kate St. Onge, Jun Chen, Ulf Lagercrantz, Martin Lascoux
    Genetics 2009 183 1
  • UBIQUITIN-SPECIFIC PROTEASES function in plant development and stress responses
    Huapeng Zhou, Jinfeng Zhao, Jingqing Cai, Suyash B. Patil
    Plant Molecular Biology 2017 94 6
  • Interaction between the light quality and flowering time pathways in Arabidopsis
    Sally Adams, Trudie Allen, Garry C. Whitelam
    The Plant Journal 2009 60 2
  • Species-specific flowering cues among general flowering Shorea species at the Pasoh Research Forest, Malaysia
    Yu-Yun Chen, Akiko Satake, I-Fang Sun, Yoshiko Kosugi, Makoto Tani, Shinya Numata, Stephen P. Hubbell, Christine Fletcher, Md. Noor Nur Supardi, S. Joseph Wright, Nicole Rafferty
    Journal of Ecology 2018 106 2
  • Standing genetic variation inFRIGIDAmediates experimental evolution of flowering time inArabidopsis
    NORA SCARCELLI, PAULA X. KOVER
    Molecular Ecology 2009 18 9
  • AtHD2D Gene Plays a Role in Plant Growth, Development, and Response to Abiotic Stresses in Arabidopsis thaliana
    Zhaofen Han, Huimin Yu, Zhong Zhao, David Hunter, Xinjuan Luo, Jun Duan, Lining Tian
    Frontiers in Plant Science 2016 7
  • Cloning, characterization and genetic engineering of FLC homolog in Thellungiella halophila
    Qiaoyun Fang, Zhengkai Xu, Rentao Song
    Biochemical and Biophysical Research Communications 2006 347 3
  • FRIGIDA and related proteins have a conserved central domain and family specific N- and C- terminal regions that are functionally important
    Joanna M. Risk, Rebecca E. Laurie, Richard C. Macknight, Catherine L. Day
    Plant Molecular Biology 2010 73 4-5
  • Nuclear Organization Changes and the Epigenetic Silencing of FLC during Vernalization
    Danling Zhu, Stefanie Rosa, Caroline Dean
    Journal of Molecular Biology 2015 427 3
  • The B-Box Family Gene STO (BBX24) in Arabidopsis thaliana Regulates Flowering Time in Different Pathways
    Feng Li, Jinjing Sun, Donghui Wang, Shunong Bai, Adrian K. Clarke, Magnus Holm, Yuehui He
    PLoS ONE 2014 9 2
  • The gibberellic acid biosynthesis mutantga1-3 ofArabidopsis thaliana is responsive to vernalization
    Scott D. Michaels, Richard M. Amasino
    Developmental Genetics 1999 25 3
  • Brassinosteroid Signaling Recruits Histone 3 Lysine-27 Demethylation Activity to FLOWERING LOCUS C Chromatin to Inhibit the Floral Transition in Arabidopsis
    Zicong Li, Yang Ou, Zhicheng Zhang, Jianming Li, Yuehui He
    Molecular Plant 2018 11 9
  • Can a late bloomer become an early bird? Tools for flowering time adjustment
    Zbyněk Milec, Miroslav Valárik, Jan Bartoš, Jan Šafář
    Biotechnology Advances 2014 32 1
  • Divergence of regulatory networks governed by the orthologous transcription factors FLC and PEP1 in Brassicaceae species
    Julieta L. Mateos, Vicky Tilmes, Pedro Madrigal, Edouard Severing, René Richter, Colin W. M. Rijkenberg, Paweł Krajewski, George Coupland
    Proceedings of the National Academy of Sciences 2017 114 51
  • Methylation-Sensitive Amplification Polymorphism in Date Palms (Phoenix dactylifera L.) and their Off-Shoots
    J.-G. Fang, C. T. Chao
    Plant Biology 2007 9 4
  • Recent advances in ABA signaling
    Soo Young Kim
    Journal of Plant Biology 2007 50 2
  • Characterization of the Vernalization Response in Lolium perenne by a cDNA Microarray Approach
    Stefano Ciannamea, Jacqueline Busscher-Lange, Stefan de Folter, Gerco C. Angenent, Richard G. H. Immink
    Plant and Cell Physiology 2006 47 4
  • EARLY FLOWERING 5acts as a floral repressor inArabidopsis
    Yoo-Sun Noh, Colleen M. Bizzell, Bosl Noh, Fritz M. Schomburg, Richard M. Amasino
    The Plant Journal 2004 38 4
  • Four distinct photoreceptors contribute to light-induced side branch formation in the moss Physcomitrella patens
    Hidetoshi Uenaka, Masamitsu Wada, Akeo Kadota
    Planta 2005 222 4
  • Functional conservation and diversification between rice OsMADS22/OsMADS55 and Arabidopsis SVP proteins
    Jeong Hwan Lee, Soo Hyun Park, Ji Hoon Ahn
    Plant Science 2012 185-186
  • Memory of the vernalized state in plants including the model grass Brachypodium distachyon
    Daniel P. Woods, Thomas S. Ream, Richard M. Amasino
    Frontiers in Plant Science 2014 5
  • Transcriptomic analysis of Asiatic lily in the process of vernalization via RNA-seq
    Jie Huang, Xiaohua Liu, Jingmao Wang, Yingmin Lü
    Molecular Biology Reports 2014 41 6
  • Comparative sequence analysis of VRN1 alleles of Lolium perenne with the co-linear regions in barley, wheat, and rice
    Torben Asp, Stephen Byrne, Heidrun Gundlach, Rémy Bruggmann, Klaus F. X. Mayer, Jeppe R. Andersen, Mingliang Xu, Morten Greve, Ingo Lenk, Thomas Lübberstedt
    Molecular Genetics and Genomics 2011 286 5-6
  • Effects of seed vernalisation and photoperiod on flowering induction in the halophyte Thellungiella halophila
    Yuhua Guo, Dian Wang, Wenjuan Jia, Jie Song, Jianchao Yang, Baoshan Wang
    Australian Journal of Botany 2012 60 8
  • PORPHOBILINOGEN DEAMINASE Deficiency Alters Vegetative and Reproductive Development and Causes Lesions in Arabidopsis
    Víctor Quesada, Raquel Sarmiento-Mañús, Rebeca González-Bayón, Andrea Hricová, María Rosa Ponce, José Luis Micol, Miguel A. Blazquez
    PLoS ONE 2013 8 1
  • FLC: A Hidden Polycomb Response Element Shows Up in Silence
    D. M. Buzas, Y. Tamada, T. Kurata
    Plant and Cell Physiology 2012 53 5
  • How is FLC repression initiated by cold?
    Chris A. Helliwell, Robert S. Anderssen, Masumi Robertson, E. Jean Finnegan
    Trends in Plant Science 2015 20 2
  • Mapping of QTLs for Bolting Time in Brassica rapa (syn. campestris) under Different Environmental Conditions
    Miki Nishioka, Koji Tamura, Masaki Hayashi, Yoshifumi Fujimori, Yasunobu Ohkawa, Yasuhisa Kuginuki, Kyuya Harada
    Breeding Science 2005 55 2
  • New Roles for MADS-box Genes in Higher Plants
    F. Garcia-Maroto, M.-J. Carmona, J.-A. Garrido, M. Vilches-Ferron, J. Rodriguez-Ruiz, D. Alonso
    Biologia plantarum 2003 46 3
  • Overexpression of AGAMOUS-LIKE 28 (AGL28) promotes flowering by upregulating expression of floral promoters within the autonomous pathway
    Seung Kwan Yoo, Jong Seob Lee, Ji Hoon Ahn
    Biochemical and Biophysical Research Communications 2006 348 3
  • The FLX Gene of Arabidopsis is Required for FRI-Dependent Activation of FLC Expression
    C. R. Andersson, C. A. Helliwell, D. J. Bagnall, T. P. Hughes, E. J. Finnegan, W. J. Peacock, E. S. Dennis
    Plant and Cell Physiology 2007 49 2
  • The role of FLOWERING LOCUS C in vernalization of Brassica: the importance of vernalization research in the face of climate change
    Daniel J. Shea, Etsuko Itabashi, Satoko Takada, Eigo Fukai, Tomohiro Kakizaki, Ryo Fujimoto, Keiichi Okazaki
    Crop and Pasture Science 2018 69 1
  • An ortholog of CURLY LEAF / ENHANCER OF ZESTE like‐1 is required for proper flowering in Brachypodium distachyon
    Aaron Lomax, Daniel P. Woods, Yinxin Dong, Frédéric Bouché, Ying Rong, Kevin S. Mayer, Xuehua Zhong, Richard M. Amasino
    The Plant Journal 2018 93 5
  • Activation and Epigenetic Regulation of DNA Transposon nDart1 in Rice
    Chang-Ho Eun, Kyoko Takagi, Kyeung-Il Park, Masahiko Maekawa, Shigeru Iida, Kazuo Tsugane
    Plant and Cell Physiology 2012 53 5
  • Arabidopsis HIGH PLOIDY2 Sumoylates and Stabilizes Flowering Locus C through Its E3 Ligase Activity
    Jun S. Kwak, Ga H. Son, Sung-Il Kim, Jong T. Song, Hak S. Seo
    Frontiers in Plant Science 2016 7
  • Survey of Rice Proteins Interacting With OsFCA and OsFY Proteins Which Are Homologous to the Arabidopsis Flowering Time Proteins, FCA and FY
    Yun Hee Jang, Hyo-Young Park, Soon-Kap Kim, Jeong Hwan Lee, Mi Chung Suh, Young Soo Chung, Kyung-Hee Paek, Jeong-Kook Kim
    Plant and Cell Physiology 2009 50 8
  • The floral transition is not the developmental switch that confers competence for the Arabidopsis age-related resistance response to Pseudomonas syringae pv. tomato
    Daniel C. Wilson, Philip Carella, Marisa Isaacs, Robin K. Cameron
    Plant Molecular Biology 2013 83 3
  • Transcript Profile of Flowering Regulatory Genes in VcFT-Overexpressing Blueberry Plants
    Aaron E. Walworth, Benli Chai, Guo-qing Song, Hong Luo
    PLOS ONE 2016 11 6
  • A Flowering Integrator, SOC1, Affects Stomatal Opening in Arabidopsis thaliana
    Yuriko Kimura, Saya Aoki, Eigo Ando, Ayaka Kitatsuji, Aiko Watanabe, Masato Ohnishi, Koji Takahashi, Shin-ichiro Inoue, Norihito Nakamichi, Yosuke Tamada, Toshinori Kinoshita
    Plant and Cell Physiology 2015 56 4
  • Cold signalling associated with vernalization in Arabidopsis thaliana does not involve CBF1 or abscisic acid
    Jiayou Liu, Sarah J. Gilmour, Michael F. Thomashow, Steven Van Nocker
    Physiologia Plantarum 2002 114 1
  • Components of the Arabidopsis autonomous floral promotion pathway, FCA and FY, are conserved in monocots
    Somrutai Winichayakul, Nicola L. Beswick, Caroline Dean, Richard C. Macknight
    Functional Plant Biology 2005 32 4
  • Control of Vegetative to Reproductive Phase Transition Improves Biomass Yield and Simultaneously Reduces Lignin Content in Medicago truncatula
    Million Tadege, Fang Chen, Jeremy Murray, Jiangqi Wen, Pascal Ratet, Michael K. Udvardi, Richard A. Dixon, Kirankumar S. Mysore
    BioEnergy Research 2015 8 2
  • Flowering of Arabidopsis cop1 Mutants in Darkness
    Mayu Nakagawa, Yoshibumi Komeda
    Plant and Cell Physiology 2004 45 4
  • Identification of Chinese cabbage genes up-regulated by prolonged cold by using microarray analysis
    Kyung Ae Yang, Chan Ju Lim, Joon Ki Hong, Zheng Lu Jin, Jong Chan Hong, Dae-Jin Yun, Woo Sik Chung, Sang Yeol Lee, Moo Je Cho, Chae Oh Lim
    Plant Science 2005 168 4
  • Message ends: RNA 3′ processing and flowering time control
    Katarzyna Rataj, Gordon G. Simpson
    Journal of Experimental Botany 2014 65 2
  • Post-translational regulation of FLC is mediated by an E3 ubiquitin ligase activity of SINAT5 in Arabidopsis
    Bong Soo Park, Wan Gyu Sang, Song Yion Yeu, Yang Do Choi, Nam-Chon Paek, Min Chul Kim, Jong Tae Song, Hak Soo Seo
    Plant Science 2007 173 2
  • Tagging and mapping candidate loci for vernalization and flower initiation in hexaploid oat
    Itamar C. Nava, Charlene P. Wight, Marcelo T. Pacheco, Luiz C. Federizzi, Nicholas A. Tinker
    Molecular Breeding 2012 30 3
  • A novel mutation in TFL1 homolog affecting determinacy in cowpea (Vigna unguiculata)
    P. Dhanasekar, K. S. Reddy
    Molecular Genetics and Genomics 2015 290 1
  • Carbon nanoparticles influence photomorphogenesis and flowering time in Arabidopsis thaliana
    Abhishek Kumar, Anamika Singh, Madhusmita Panigrahy, Pratap Kumar Sahoo, Kishore C. S. Panigrahi
    Plant Cell Reports 2018 37 6
  • Epigenetics: The Flowers That Come In From The Cold
    Claudia Köhler, Ueli Grossniklaus
    Current Biology 2002 12 4
  • Genomics and Breeding for Climate-Resilient Crops
    A. R. Bentley, E. F. Jensen, I. J. Mackay, H. Hönicka, M. Fladung, K. Hori, M. Yano, J. E. Mullet, I. P. Armstead, C. Hayes, D. Thorogood, A. Lovatt, R. Morris, N. Pullen, E. Mutasa-Göttgens, J. Cockram
    2013
  • MIKCC-type MADS-box genes in Rosa chinensis: the remarkable expansion of ABCDE model genes and their roles in floral organogenesis
    Jinyi Liu, Xiaodong Fu, Yuwei Dong, Jun Lu, Min Ren, Ningning Zhou, Changquan Wang
    Horticulture Research 2018 5 1
  • Overexpression of blueberry FLOWERING LOCUS T is associated with changes in the expression of phytohormone-related genes in blueberry plants
    Xuan Gao, Aaron E Walworth, Charity Mackie, Guo-qing Song
    Horticulture Research 2016 3 1
  • SHB1 plays dual roles in photoperiodic and autonomous flowering
    Yun Zhou, Min Ni
    Developmental Biology 2009 331 1
  • Temperature Sensing Is Distributed throughout the Regulatory Network that Controls FLC Epigenetic Silencing in Vernalization
    Rea L. Antoniou-Kourounioti, Jo Hepworth, Amélie Heckmann, Susan Duncan, Julia Qüesta, Stefanie Rosa, Torbjörn Säll, Svante Holm, Caroline Dean, Martin Howard
    Cell Systems 2018 7 6
  • The effect of day length, vernalization and DNA demethylation on the flowering time in Arabidopsis thaliana
    Pavel Lízal, Jiřina Relichová
    Physiologia Plantarum 2001 113 1
  • A genetic framework for flowering-time pathways in Citrus spp.
    Marcelo Carnier Dornelas, Raquel Luciana Boscariol Camargo, Luciana Harumi Morimoto Figueiredo, Marco Aurélio Takita
    Genetics and Molecular Biology 2007 30 3 suppl
  • A root chicory MADS box sequence and the Arabidopsis flowering repressorFLCshare common features that suggest conserved function in vernalization and de-vernalization responses
    Claire Périlleux, Alexandra Pieltain, Guillaume Jacquemin, Frédéric Bouché, Nathalie Detry, Maria D'Aloia, Laura Thiry, Pierre Aljochim, Martin Delansnay, Anne-Sophie Mathieu, Stanley Lutts, Pierre Tocquin
    The Plant Journal 2013 75 3
  • Changing MADS-Box Transcription Factor Protein–Protein Interactions as a Mechanism for Generating Floral Morphological Diversity
    Madelaine E Bartlett
    Integrative and Comparative Biology 2017 57 6
  • Chromatin resetting mechanisms preventing transgenerational inheritance of epigenetic states
    Mayumi Iwasaki
    Frontiers in Plant Science 2015 6
  • Development of primer sets that can verify the enrichment of histone modifications, and their application to examining vernalization-mediated chromatin changes in <i>Brassica rapa</i> L.
    Takahiro Kawanabe, Kenji Osabe, Etsuko Itabashi, Keiichi Okazaki, Elizabeth S. Dennis, Ryo Fujimoto
    Genes & Genetic Systems 2016 91 1
  • Identification of Regulatory Genes Implicated in Continuous Flowering of Longan (Dimocarpus longan L.)
    Tianqi Jia, Danfeng Wei, Shan Meng, Andrew C. Allan, Lihui Zeng, Manoj Prasad
    PLoS ONE 2014 9 12
  • Post-Translational Modifications of the Endogenous and Transgenic FLC Protein in Arabidopsis thaliana
    Masumi Robertson, Chris A. Helliwell, Elizabeth S. Dennis
    Plant and Cell Physiology 2008 49 12
  • Restoration of native folding of single-stranded DNA sequences through reverse mutations: An indication of a new epigenetic mechanism
    Dionne N. Shepherd, Darren P. Martin, Arvind Varsani, Jennifer A. Thomson, Edward P. Rybicki, Horst H. Klump
    Archives of Biochemistry and Biophysics 2006 453 1
  • Revisiting Phase Transition during Flowering in Arabidopsis
    Sung-Suk Suh, Kyu-Ri Choi, Ilha Lee
    Plant and Cell Physiology 2003 44 8
  • Transcriptomic analysis of flower development in tea ( Camellia sinensis (L.))
    Feng Liu, Yu Wang, Zhaotang Ding, Lei Zhao, Jun Xiao, Linjun Wang, Shibo Ding
    Gene 2017 631
  • Vernalization-induced repression of FLOWERING LOCUS C stimulates flowering in Sinapis alba and enhances plant responsiveness to photoperiod
    Maria D’Aloia, Pierre Tocquin, Claire Périlleux
    New Phytologist 2008 178 4
  • Characterization of FLC, SOC1 and FT homologs in Eustoma grandiflorum: effects of vernalization and post-vernalization conditions on flowering and gene expression
    Yoshihiro Nakano, Hiroki Kawashima, Takafumi Kinoshita, Hiroyasu Yoshikawa, Tamotsu Hisamatsu
    Physiologia Plantarum 2011 141 4
  • EFO1 and EFO2, encoding putative WD-domain proteins, have overlapping and distinct roles in the regulation of vegetative development and flowering of Arabidopsis
    Wuyi Wang, Dennis Yang, Kenneth A. Feldmann
    Journal of Experimental Botany 2011 62 3
  • Floral regulators FLC and SOC1 directly regulate expression of the B3-type transcription factor TARGET OF FLC AND SVP 1 at the Arabidopsis shoot apex via antagonistic chromatin modifications
    René Richter, Atsuko Kinoshita, Coral Vincent, Rafael Martinez-Gallegos, He Gao, Annabel D. van Driel, Youbong Hyun, Julieta L. Mateos, George Coupland, Hao Yu
    PLOS Genetics 2019 15 4
  • GWAS with Heterogeneous Data: Estimating the Fraction of Phenotypic Variation Mediated by Gene Expression Data
    Eriko Sasaki, Florian Frommlet, Magnus Nordborg
    G3: Genes|Genomes|Genetics 2018 8 9
  • Overexpression of FLOWERING LOCUS C, Isolated from Non-Heading Chinese Cabbage (Brassica campestris ssp. chinensis Makino), Influences Fertility in Arabidopsis
    Tongkun Liu, Ying Li, Changwei Zhang, Yu Qian, Zhen Wang, Xilin Hou
    Plant Molecular Biology Reporter 2012 30 6
  • Promoter difference of LcFT1 is a leading cause of natural variation of flowering timing in different litchi cultivars ( Litchi chinensis Sonn.)
    Feng Ding, Shuwei Zhang, Houbin Chen, Zuanxian Su, Rong Zhang, Qiusheng Xiao, Hongli Li
    Plant Science 2015 241
  • Structure and function of histone methylation-binding proteins in plants
    Yanli Liu, Jinrong Min
    Biochemical Journal 2016 473 12
  • Tissue-specific regulation of flowering by photoreceptors
    Motomu Endo, Takashi Araki, Akira Nagatani
    Cellular and Molecular Life Sciences 2016 73 4
  • Transcriptome comparison reveals key candidate genes in response to vernalization of Oriental lily
    Wenqi Li, Xiaohua Liu, Yingmin Lu
    BMC Genomics 2016 17 1
  • VP16 fusion induces the multiple-knockout phenotype of redundant transcriptional repressors partly by Med25-independent mechanisms inArabidopsis
    Sumire Fujiwara, Shingo Sakamoto, Keiko Kigoshi, Kaoru Suzuki, Masaru Ohme-Takagi
    FEBS Letters 2014 588 20
  • Characterization of a MADS FLOWERING LOCUS C‐LIKE ( MFL ) sequence in Cichorium intybus : a comparative study of CiMFL and AtFLC reveals homologies and divergences in gene function
    A. Locascio, M. Lucchin, S. Varotto
    New Phytologist 2009 182 3
  • A Genomic Variation Map Provides Insights into the Genetic Basis of Spring Chinese Cabbage (Brassica rapa ssp. pekinensis) Selection
    Tongbing Su, Weihong Wang, Peirong Li, Bin Zhang, Pan Li, Xiaoyun Xin, Honghe Sun, Yangjun Yu, Deshuang Zhang, Xiuyun Zhao, Changlong Wen, Gang Zhou, Yuntong Wang, Hongkun Zheng, Shuancang Yu, Fenglan Zhang
    Molecular Plant 2018 11 11
  • Effect of vernalisation and 5-azacytidine on the methylation level of DNA in wheat (Triticum aestivum L., cv. Martonvásár 15)
    Eszter Horváth, Gabriella Szalai, Tibor Janda, Emil Páldi, Ilona Rácz, Demeter Lásztity
    Plant Science 2003 165 4
  • Exploring potential new floral organ morphogenesis genes of Arabidopsis thaliana using systems biology approach
    Wenchuan Xie, Junfeng Huang, Yang Liu, Jianan Rao, Da Luo, Miao He
    Frontiers in Plant Science 2015 6
  • Heat can erase epigenetic marks of vernalization inArabidopsis
    Frédéric Bouché, Nathalie Detry, Claire Périlleux
    Plant Signaling & Behavior 2015 10 3
  • TAF15b, involved in the autonomous pathway for flowering, represses transcription ofFLOWERING LOCUS C
    Hyunjoo Eom, Su Jung Park, Min Kyung Kim, Hoyeun Kim, Hunseung Kang, Ilha Lee
    The Plant Journal 2018 93 1
  • A 2.833-kb Insertion in BnFLC.A2 and Its Homeologous Exchange with BnFLC.C2 during Breeding Selection Generated Early-Flowering Rapeseed
    Lei Chen, Faming Dong, Jing Cai, Qiang Xin, Caochuang Fang, Liang Liu, Lili Wan, Guangsheng Yang, Dengfeng Hong
    Molecular Plant 2018 11 1
  • A photo-responsive F-box protein FOF2 regulates floral initiation by promotingFLCexpression in Arabidopsis
    Reqing He, Xinmei Li, Ming Zhong, Jindong Yan, Ronghuan Ji, Xu Li, Qin Wang, Dan Wu, Mengsi Sun, Dongying Tang, Jianzhong Lin, Hongyu Li, Bin Liu, Hongtao Liu, Xuanming Liu, Xiaoying Zhao, Chentao Lin
    The Plant Journal 2017 91 5
  • AtMBD8is involved in control of flowering time in the C24 ecotype ofArabidopsis thaliana
    Biljana Stangeland, E. Maryann Rosenhave, Per Winge, Anita Berg, Silja S. Amundsen, Mirela Karabeg, Abul Mandal, Atle M. Bones, Paul E. Grini, Reidunn B. Aalen
    Physiologia Plantarum 2009 136 1
  • Brief temperature stress during reproductive stages alters meiotic recombination and somatic mutation rates in the progeny of Arabidopsis
    Ramswaroop Saini, Amit Kumar Singh, Shanmuhapreya Dhanapal, Thoufeequl Hakeem Saeed, Geoffrey J. Hyde, Ramamurthy Baskar
    BMC Plant Biology 2017 17 1
  • Flowering responses to light and temperature
    Li Li, Xu Li, Yawen Liu, Hongtao Liu
    Science China Life Sciences 2016 59 4
  • Functional analyses of Populus euphratica brassinosteroid biosynthesis enzyme genes DWF4 (PeDWF4) and CPD (PeCPD) in the regulation of growth and development of Arabidopsis thaliana
    Jianping Si, Yan Sun, Lu Wang, Ying Qin, Chongying Wang, Xinyu Wang
    Journal of Biosciences 2016 41 4
  • Gene Expression Analysis of Pak Choi in Response to Vernalization
    Mengxia Sun, Xianhui Qi, Leiping Hou, Xiaoyong Xu, Zhujun Zhu, Meilan Li, Binying Fu
    PLOS ONE 2015 10 10
  • Identification of differentially methylated regions during vernalization revealed a role for RNA methyltransferases in bolting
    Claire Hébrard, Marie-Véronique Trap-Gentil, Clément Lafon-Placette, Alain Delaunay, Claude Joseph, Marc Lefèbvre, Steve Barnes, Stéphane Maury
    Journal of Experimental Botany 2013 64 2
  • MADS-box gene evolution beyond flowers: expression in pollen, endosperm, guard cells, roots and trichomes
    Elena R. Alvarez-Buylla, Sarah J. Liljegren, Soraya Pelaz, Scott E. Gold, Caroline Burgeff, Gary S. Ditta, Francisco Vergara-Silva, Martin F. Yanofsky
    The Plant Journal 2008 24 4
  • Two FLX family members are non-redundantly required to establish the vernalization requirement in Arabidopsis
    Joohyun Lee, Richard M. Amasino
    Nature Communications 2013 4 1
  • A novel repressor of floral transition, MEE3, an abiotic stress regulated protein, functions as an activator of FLC by binding to its promoter in Arabidopsis
    Chaonan Li, Yangyang Zhou, Liu-Min Fan
    Environmental and Experimental Botany 2015 113
  • Brassicas and Legumes From Genome Structure to Breeding
    T. C. Osborn, L. Lukens
    2003 52
  • Characterization of a novel developmentally retarded mutant (drm1) associated with the autonomous flowering pathway in Arabidopsis
    Yong ZHU, Hui Fang ZHAO, Guo Dong REN, Xiao Fei YU, Shu Qing CAO, Ben Ke KUAI
    Cell Research 2005 15 2
  • Developmental programmes in floral organ formation
    Martin Kieffer, Brendan Davies
    Seminars in Cell & Developmental Biology 2001 12 5
  • Epigenetic regulation of agronomical traits in Brassicaceae
    Etsuko Itabashi, Kenji Osabe, Ryo Fujimoto, Tomohiro Kakizaki
    Plant Cell Reports 2018 37 1
  • Experiencing winter for spring flowering: A molecular epigenetic perspective on vernalization
    Xiao Luo, Yuehui He
    Journal of Integrative Plant Biology 2020 62 1
  • Genome-Wide Analysis of Gene Regulatory Networks of the FVE-HDA6-FLD Complex in Arabidopsis
    Chun-Wei Yu, Kao-Yuan Chang, Keqiang Wu
    Frontiers in Plant Science 2016 7
  • MGOUN3: evidence for chromatin-mediated regulation of FLC expression
    Soazig Guyomarc'h, Moussa Benhamed, Gaëtan Lemonnier, Jean-Pierre Renou, Dao-Xiu Zhou, Marianne Delarue
    Journal of Experimental Botany 2006 57 9
  • Photoperiod pathway regulates expression of MAF5 and FLC that encode MADS-box transcription factors of the FLC family in Arabidopsis
    Sumire Fujiwara, Mayu Nakagawa, Atsushi Oda, Kazuhisa Kato, Tsuyoshi Mizoguchi
    Plant Biotechnology 2010 27 5
  • Plant Developmental Biology - Biotechnological Perspectives
    E. J. Finnegan
    2010
  • Progress in Botany
    Roman A. Volkov, Nataliya Y. Komarova, Ulrike Zentgraf, Vera Hemleben
    2006 67
  • Temperature-dependent growth contributes to long-term cold sensing
    Yusheng Zhao, Rea L. Antoniou-Kourounioti, Grant Calder, Caroline Dean, Martin Howard
    Nature 2020 583 7818
  • VASCULAR PLANT ONE-ZINC FINGER1andVOZ2repress theFLOWERING LOCUS Cclade members to control flowering time in Arabidopsis
    Yukiko Yasui, Takayuki Kohchi
    Bioscience, Biotechnology, and Biochemistry 2014 78 11
  • Developmental Pathways Are Blueprints for Designing Successful Crops
    Ben Trevaskis
    Frontiers in Plant Science 2018 9
  • Epigenetic Regulation in the Control of Flowering
    J. MYLNE, T. GREB, C. LISTER, C. DEAN
    Cold Spring Harbor Symposia on Quantitative Biology 2004 69
  • Epigenetic regulation of photoperiodic flowering
    Kiyotoshi Takeno
    Plant Signaling & Behavior 2010 5 7
  • Genome-Wide Analysis of DNA Methylation During Ovule Development of Female-Sterile Ricefsv1
    Helian Liu, Ya Wu, Aqin Cao, Bigang Mao, Bingran Zhao, Jianbo Wang
    G3: Genes|Genomes|Genetics 2017 7 11
  • Over-expression of BcFLC1 from non-heading Chinese cabbage enhances cold tolerance in Arabidopsis
    T. Liu, Y. Li, J. Ren, C. Zhang, M. Kong, X. Song, J. Zhou, X. Hou
    Biologia plantarum 2013 57 2
  • Overexpression of the GmGAL2 Gene Accelerates Flowering in Arabidopsis
    Jiaohui Xu, Xiaofang Zhong, Qingzhu Zhang, Hongyu Li
    Plant Molecular Biology Reporter 2010 28 4
  • Plant Temperature Sensors
    Tomoaki Sakamoto, Seisuke Kimura
    Sensors 2018 18 12
  • RNA Levels and Activity ofFLOWERING LOCUS CAre Modified in Mixed Genetic Backgrounds ofArabidopsis thaliana
    Michael Schläppi
    International Journal of Plant Sciences 2001 162 3
  • Thin Cell Layer Culture System: Regeneration and Transformation Applications
    Jaime A. Teixeira da Silva, Duong Tan Nhut
    2003
  • Challenges in studies on flowering time: interfaces between phenological research and the molecular network of flowering genes
    Masaki J. Kobayashi, Kentaro K. Shimizu
    Ecological Research 2013 28 2
  • Crucial function of histone lysine methylation in plant reproduction
    XiaoZhen Yao, WenHui Shen
    Chinese Science Bulletin 2011 56 33
  • FLC: A key regulator of flowering time in Arabidopsis
    Zhiqiang Yan, Dawei Liang, Heng Liu, Guochang Zheng
    Russian Journal of Plant Physiology 2010 57 2
  • LHP1 Interacts with ATRX through Plant-Specific Domains at Specific Loci Targeted by PRC2
    Haifeng Wang, Danhua Jiang, Elin Axelsson, Zdravko J. Lorković, Sean Montgomery, Sarah Holec, Bas J.G.E. Pieters, Abbas H.K. Al Temimi, Jasmin Mecinović, Frédéric Berger
    Molecular Plant 2018 11 8
  • Possible Role of MADS AFFECTING FLOWERING 3 and B-BOX DOMAIN PROTEIN 19 in Flowering Time Regulation of Arabidopsis Mutants with Defects in Nonsense-Mediated mRNA Decay
    Zeeshan Nasim, Muhammad Fahim, Ji Hoon Ahn
    Frontiers in Plant Science 2017 8
  • Synchronisation of Arabidopsis flowering time and whole-plant senescence in seasonal environments
    Matin Miryeganeh, Masaki Yamaguchi, Hiroshi Kudoh
    Scientific Reports 2018 8 1
  • The Molecular Genetics of Floral Transition and Flower Development
    Vinicius Costa Galvão, Markus Schmid
    2014 72
  • TrMADS3, a new MADS-box gene, from a perennial species Taihangia rupestris (Rosaceae) is upregulated by cold and experiences seasonal fluctuation in expression level
    Xiaoqiu Du, Qiying Xiao, Ran Zhao, Feng Wu, Qijiang Xu, Kang Chong, Zheng Meng
    Development Genes and Evolution 2008 218 6
  • Vernalization: Spring into Flowering
    Elizabeth S. Dennis, Chris A. Helliwell, W. James Peacock
    Developmental Cell 2006 11 1
  • BES1‐regulated BEE1 controls photoperiodic flowering downstream of blue light signaling pathway in Arabidopsis
    Fei Wang, Yongshun Gao, Yawen Liu, Xin Zhang, Xingxing Gu, Dingbang Ma, Zhiwei Zhao, Zhenjiang Yuan, Hongwei Xue, Hongtao Liu
    New Phytologist 2019 223 3
  • A splicing site mutation in BrpFLC1 and repressed expression of BrpFLC genes are associated with the early flowering of purple flowering stalk
    G. L. Hu, Z. L. Hu, Y. Li, F. Gu, Z. P. Zhao, G. P. Chen
    Russian Journal of Plant Physiology 2011 58 3
  • Advances in Plant Dormancy
    Zongrang Liu, Hong Zhu, Albert Abbott
    2015
  • Alternative splicing and expression analysis ofOsFCA(FCAinOryza sativaL.), a gene homologous toFCAinArabidopsis
    Xiling Du, Xiling Du, Xiaoyin Qian, Dong Wang, Xiling Du, Xiaoyin Qian, Dong Wang, Jinshui Yang
    DNA Sequence 2006 17 1
  • Biocommunication of Plants
    Sylvie Dinant, Paula Suárez-López
    2012 14
  • DNA Methylation and Potential for Epigenetic Regulation in Pygospio elegans
    Jenni E. Kesäniemi, Liisa Heikkinen, K. Emily Knott, Sriharsa Pradhan
    PLOS ONE 2016 11 3
  • Evolutionary Biology: Exobiology and Evolutionary Mechanisms
    Hiroshi Kudoh, Atsushi J. Nagano
    2013
  • Hypoxia
    Donna M. Bond, Elizabeth S. Dennis, Elizabeth J. Finnegan
    Plant Signaling & Behavior 2009 4 8
  • Identifying Eucalyptus expressed sequence tags related to Arabidopsis flowering-time pathway genes
    Marcelo Carnier Dornelas, Adriana Pinheiro Martinelli Rodriguez
    Brazilian Journal of Plant Physiology 2005 17 2
  • The role of FRIGIDA and FLOWERING LOCUS C genes in flowering time of Brassica rapa leafy vegetables
    Satoko Takada, Ayasha Akter, Etsuko Itabashi, Namiko Nishida, Daniel J. Shea, Naomi Miyaji, Hasan Mehraj, Kenji Osabe, Motoki Shimizu, Takeshi Takasaki-Yasuda, Tomohiro Kakizaki, Keiichi Okazaki, Elizabeth S. Dennis, Ryo Fujimoto
    Scientific Reports 2019 9 1
  • Depiction of Grapevine Phenology by Gene Expression Information and a Test of its Workability in Guiding Fertilization
    Chen Wang, Jian Han, Lingfei Shangguan, Guang Yang, Emrul Kayesh, Yanyi Zhang, Xiangpeng Leng, Jinggui Fang
    Plant Molecular Biology Reporter 2014 32 5
  • Dual roles forFYin the regulation ofFLC
    Wei Feng, Scott D. Michaels
    Plant Signaling & Behavior 2011 6 5
  • Overexpression of a Kunitz-type trypsin inhibitor (AtKTI1) causes early flowering in Arabidopsis
    Jeong-gu Kim, Seung-A Baek, Kyung-Hoan Im
    Plant Growth Regulation 2009 59 1
  • A new member of the LIR gene family from perennial ryegrass is cold-responsive, and promotes vegetative growth in Arabidopsis
    Stefano Ciannamea, Christian Sig Jensen, Henrik Agerskov, Klaus Petersen, Ingo Lenk, Thomas Didion, Richard G.H. Immink, Gerco C. Angenent, Klaus K. Nielsen
    Plant Science 2007 172 2
  • Comparative transcriptome discovery and elucidation of the mechanism of long noncoding RNAs during vernalization in Brassica rapa
    Tongkun Liu, Peng Wu, Qian Wang, Wenli Wang, Changwei Zhang, Feifei Sun, Zhaokun Liu, Ying Li, Xilin Hou
    Plant Growth Regulation 2018 85 1
  • Genetic modification of cereal plants: A strategy to enhance bioethanol yields from agricultural waste
    Lisandra Rocha-Meneses, Jorge A. Ferreira, Maryam Mushtaq, Sajjad Karimi, Kaja Orupõld, Timo Kikas
    Industrial Crops and Products 2020 150
  • Genomics of Tree Crops
    Magda-Viola Hanke, Henryk Flachowsky, Hans Hoenicka, Matthias Fladung
    2012
  • Historical perspective on breakthroughs in flowering field
    Mijin Oh, Una Lee
    Journal of Plant Biology 2007 50 3
  • Horticultural Reviews
    Rebecca L. Darnell, Daniel J. Cantliffe, Daniel S. Kirschbaum, Craig K. Chandler
    2010
  • Integration of seasonal flowering time responses in temperate cereals
    Megan N. Hemming, W. James Peacock, Elizabeth S. Dennis, Ben Trevaskis
    Plant Signaling & Behavior 2008 3 8
  • Molecular Characterization of a Wheat Protein Induced by Vernalisation
    Laura Bertini, Silvia Proietti, Carlo Caporale, Carla Caruso
    The Protein Journal 2009 28 6
  • Plant Epigenetics Coming of Age for Breeding Applications
    Naomi Miyaji, Ryo Fujimoto
    2018 88
  • The ISWI remodeler in plants: protein complexes, biochemical functions, and developmental roles
    Dongjie Li, Jie Liu, Wu Liu, Guang Li, Zhongnan Yang, Peng Qin, Lin Xu
    Chromosoma 2017 126 3
  • The Role of VIN3-LIKE Genes in Environmentally Induced Epigenetic Regulation of Flowering
    Sibum Sung, Robert J. Schmitz, Richard Amasino
    Plant Signaling & Behavior 2007 2 2
  • Transcriptome profiling of transgenic potato plants provides insights into variability caused by plant transformation
    Dae Kwan Ko, Satya Swathi Nadakuduti, David S. Douches, C. Robin Buell, Jin-Song Zhang
    PLOS ONE 2018 13 11
  • Trends in European Forest Tree Physiology Research
    Øystein Johnsen, Tore Skrøppa
    2001 2
  • Rym Fekih, Rim Nefissi, Kana Miyata, Hiroshi Ezura, Tsuyoshi Mizoguchi
    2009 50
  • Abiotic Stress-Mediated Sensing and Signaling in Plants: An Omics Perspective
    Pawan Saini, Mudasir Gani, Jashan Jot Kaur, Lal Chand Godara, Charan Singh, S. S. Chauhan, Rose Mary Francies, Ajay Bhardwaj, N. Bharat Kumar, M. K. Ghosh
    2018
  • Analysis of ambient temperature-responsive transcriptome in shoot apical meristem of heat-tolerant and heat-sensitive broccoli inbred lines during floral head formation
    Chung-Wen Lin, Shih-Feng Fu, Yu-Ju Liu, Chi-Chien Chen, Ching-Han Chang, Yau-Wen Yang, Hao-Jen Huang
    BMC Plant Biology 2019 19 1
  • Differential responses ofArabidopsis thalianaaccessions to atmospheric nitrogen dioxide at ambient concentrations
    Misa Takahashi, Hiromichi Morikawa
    Plant Signaling & Behavior 2014 9 4
  • Epigenetic transitions in plants not associated with changes in DNA or histone modification
    Taisuke Nishimura, Jerzy Paszkowski
    Biochimica et Biophysica Acta (BBA) - Gene Structure and Expression 2007 1769 5-6
  • Fackel interacts with gibberellic acid signaling and vernalization to mediate flowering in Arabidopsis
    Bingyao Huang, Pingping Qian, Na Gao, Jie Shen, Suiwen Hou
    Planta 2017 245 5
  • Flowering time: a pathway that begins at the 3′ end
    Richard M. Amasino
    Current Biology 2003 13 17
  • Functional analysis of a homologue of the FLORICAULA/LEAFY gene in litchi (Litchi chinensis Sonn.) revealing its significance in early flowering process
    Feng Ding, Shuwei Zhang, Houbin Chen, Hongxiang Peng, Jiang Lu, Xinhua He, Jiechun Pan
    Genes & Genomics 2018 40 12
  • Genetic and Epigenetic Understanding of the Seasonal Timing of Flowering
    Yuehui He, Tao Chen, Xiaolin Zeng
    Plant Communications 2020 1 1
  • Genome-Wide Identification of Flowering-Time Genes in Brassica Species and Reveals a Correlation between Selective Pressure and Expression Patterns of Vernalization-Pathway Genes in Brassica napus
    Haojie Li, Yonghai Fan, Jingyin Yu, Liang Chai, Jingfang Zhang, Jun Jiang, Cheng Cui, Benchuan Zheng, Liangcai Jiang, Kun Lu
    International Journal of Molecular Sciences 2018 19 11
  • Genomics of the Saccharinae
    Dean Engler, Katrin Jakob
    2013
  • Intronic Sequence Variations in a Gene with Peroxidase Domain Alter Bolting Time in Cabbage (Brassica oleracea var. capitata)
    Md. Abuyusuf, Ujjal Kumar Nath, Hoy-Taek Kim, Manosh Kumar Biswas, Jong-In Park, Ill-Sup Nou
    Plant Molecular Biology Reporter 2018 36 5-6
  • Molecular Techniques in Crop Improvement
    David A. Laurie, Simon Griffiths
    2002
  • Plant Biotechnology and Agriculture
    Alon Samach
    2012
  • Post-translational modifications of FLOWERING LOCUS C modulate its activity
    Jun Soo Kwak, Ga Hyun Son, Jong Tae Song, Hak Soo Seo
    Journal of Experimental Botany 2016
  • RNA Splicing of FLC Modulates the Transition to Flowering
    Hao-Dong Qi, Yi Lin, Qiu-Ping Ren, Yu-Yi Wang, Feng Xiong, Xiu-Ling Wang
    Frontiers in Plant Science 2019 10
  • Shaped by the environment - adaptation in plants
    Maria F. Siomos
    FEBS Journal 2009 276 17
  • Temperature and Plant Development
    Steven Penfield, Dana MacGregor
    2013
  • The Floral Repressor GmFLC-like Is Involved in Regulating Flowering Time Mediated by Low Temperature in Soybean
    Jing Lyu, Zhandong Cai, Yonghong Li, Haicui Suo, Rong Yi, Shuai Zhang, Hai Nian
    International Journal of Molecular Sciences 2020 21 4
  • The genetic and physiological analysis of late-flowering phenotype of T-DNA insertion mutants of AtCAL1 and AtCAL2 in Arabidopsis
    Jihong Zhang, Xinhong Guo, Xiushan Li, Feng Xiang, Bo Zhou, Dashi Yu, Dongying Tang, Xuanming Liu
    Molecular Biology Reports 2012 39 2
  • The histone modification H3 lysine 27 tri-methylation has conserved gene regulatory roles in the triplicated genome of Brassica rapa L.
    Ayasha Akter, Satoshi Takahashi, Weiwei Deng, Daniel J Shea, Etsuko Itabashi, Motoki Shimizu, Naomi Miyaji, Kenji Osabe, Namiko Nishida, Yutaka Suzuki, Chris A Helliwell, Motoaki Seki, William James Peacock, Elizabeth S Dennis, Ryo Fujimoto
    DNA Research 2019 26 5
  • Thin Cell Layer Culture System: Regeneration and Transformation Applications
    Jaime A. Teixeira da Silva, Duong Tan Nhut
    2003
  • Aldehyde dehydrogenase ALDH3F1 involvement in flowering time regulation through histone acetylation modulation on FLOWERING LOCUS C
    Danyun Xu, Qing Liu, Gang Chen, Zhiqiang Yan, Honghong Hu
    Journal of Integrative Plant Biology 2020 62 8
  • A crinkly leaf and delay flowering mutant of tobacco obtained from recoverable satellite-flown seeds
    Liu-Ti Cai, Shao-Qing Zheng, Xue-Lin Huang
    Advances in Space Research 2007 40 11
  • Alternative splicing of flowering time gene FT is associated with halving of time to flowering in coconut
    Wei Xia, Rui Liu, Jun Zhang, Annaliese S. Mason, Zhiying Li, Shufang Gong, Yazhu Zhong, Yajing Dou, Xiwei Sun, Haikuo Fan, Yong Xiao
    Scientific Reports 2020 10 1
  • Arabidopsis HUA ENHANCER 4 delays flowering by upregulating the MADS-box repressor genes FLC and MAF4
    Samanta Ortuño-Miquel, Encarnación Rodríguez-Cazorla, Ernesto A. Zavala-Gonzalez, Antonio Martínez-Laborda, Antonio Vera
    Scientific Reports 2019 9 1
  • Arabidopsis cytoplasmic N-acetyltransferase, as the ortholog of RimL in E. coli, controls flowering time via the autonomous pathway
    Sung Min Hwang, Dae Won Kim, Byung Hyun Lee, Jeong Dong Bahk
    Plant Science 2009 177 6
  • Breeding For Ornamentals: Classical and Molecular Approaches
    A. Samach, M. Pineiro
    2002
  • Characterization of a MADS Flowering Locus C – like (MFL) in Cynara cardunculus var. altilis under different sowing and planting density
    G. Puglia, S.A. Raccuia, H. Pappalardo, C. Genovese, S. Argento, M.G. Melilli
    Acta Horticulturae 2016 1147
  • EjFRI, FRIGIDA (FRI) Ortholog from Eriobotrya japonica, Delays Flowering in Arabidopsis
    Weiwei Chen, Peng Wang, Dan Wang, Min Shi, Yan Xia, Qiao He, Jiangbo Dang, Qigao Guo, Danlong Jing, Guolu Liang
    International Journal of Molecular Sciences 2020 21 3
  • Encyclopedia of Life Sciences
    E Jean Finnegan, Chris Helliwell, Candice Sheldon, W James Peacock, Elizabeth S Dennis
    2010
  • Epigenetic Memory and Control in Plants
    Theo Zografou, Franziska Turck
    2013 18
  • Functional Analysis of the FT Homolog from Eustoma grandiflorum Reveals Its Role in Regulating A and C Functional MADS Box Genes to Control Floral Transition and Flower Formation
    K.-H. Li, T.-H. Chuang, C.-J. Hou, C.-H. Yang
    Plant Molecular Biology Reporter 2015 33 4
  • Genomic Designing of Climate-Smart Vegetable Crops
    Honghao Lv, Naomi Miyaji, Kenji Osabe, Ayasha Akter, Hasan Mehraj, Daniel J. Shea, Ryo Fujimoto
    2020
  • Identification and characterization of flowering repressor-related genes in Chinese cabbage
    ChangKug Kim, Yeon-Hee Lee, Joon-Ki Hong, DongSuk Park, Mi-Kyoung Kim, MinSeok Cho, YongKab Kim, JangHo Hahn
    BioChip Journal 2012 6 2
  • Identification of MADS genes from a brown alga,Sargassum fulvellum
    Jongmin Nam, Yoo Kyung Lee, Jung Hyun Oak, Gynheung An, In Kyu Lee
    Journal of Plant Biology 1999 42 1
  • Information recovery in molecular biology: causal modelling of regulated promoter switching experiments
    Robert S. Anderssen, Christopher A. Helliwell
    Journal of Mathematical Biology 2013 67 1
  • Knowing When to Silence: Roles of Polycomb-Group Proteins in SAM Maintenance, Root Development, and Developmental Phase Transition
    Bowen Yan, Yanpeng Lv, Chunyu Zhao, Xiaoxue Wang
    International Journal of Molecular Sciences 2020 21 16
  • Localization of seven new late-flowering mutations on the genetic map of Arabidopsis thaliana using a newly generated CAPS marker
    Pavel Lı́zal, Jiřina Relichová
    Plant Science 2004 167 1
  • Molecular Regulatory Network of Flowering by Photoperiod and Temperature in Rice
    Yuan-li SONG, Wei-jiang LUAN
    Rice Science 2012 19 3
  • Natural variation in autumn expression is the major adaptive determinant distinguishing Arabidopsis FLC haplotypes
    Jo Hepworth, Rea L Antoniou-Kourounioti, Kristina Berggren, Catja Selga, Eleri H Tudor, Bryony Yates, Deborah Cox, Barley Rose Collier Harris, Judith A Irwin, Martin Howard, Torbjörn Säll, Svante Holm, Caroline Dean
    eLife 2020 9
  • Unexplored Potentials of Epigenetic Mechanisms of Plants and Animals–-Theoretical Considerations
    Istvan Seffer, Zoltan Nemeth, Gyula Hoffmann, Robert Matics, A. Gergely Seffer, Akos Koller
    Genetics & Epigenetics 2013 5
  • Vernalisation mediated LncRNA-like gene expression in Beta vulgaris
    Naiguo Liang, Dayou Cheng, Jie Cui, Cuihong Dai, Chengfei Luo, Tianjiao Liu, Junliang Li
    Functional Plant Biology 2017 44 7
  • Vernalization: the flower school
    Peter V. Minorsky
    Journal of Biosciences 2002 27 2
  • A path to a biennial life history
    Richard Amasino
    Nature Plants 2018 4 10
  • ANAC075, a putative regulator of VASCULAR-RELATED NAC-DOMAIN7, is a repressor of flowering
    Sumire Fujiwara, Nobutaka Mitsuda
    Plant Biotechnology 2016 33 4
  • Advances in Plant Breeding Strategies: Breeding, Biotechnology and Molecular Tools
    Estelle Jaligot, Alain Rival
    2015
  • Allelic variation and geographic distribution of vernalization genes HvVRN1 and HvVRN2 in Chinese barley germplasm
    Dawa Dondup, Guoqing Dong, Dongdong Xu, Lisha Zhang, Sang Zha, Xingmiao Yuan, Nyima Tashi, Jing Zhang, Ganggang Guo
    Molecular Breeding 2016 36 1
  • Annual Plant Reviews online
    Mark Doyle, Si-Bum Sung, Richard Amasino
    2018
  • Annual Plant Reviews online
    George Coupland
    2018
  • Annual Plant Reviews online
    Claire Périlleux, Georges Bernier
    2018
  • Brassica Germplasm - Characterization, Breeding and Utilization
    Ayasha Akter, Namiko Nishida, Satoko Takada, Etsuko Itabashi, Kenji Osabe, Daniel J. Shea, Ryo Fujimoto
    2018
  • Can the Quest for Drought Tolerant Crops AvoidArabidopsisAny Longer?
    Albino Maggio, Robert J. Joly, Paul M. Hasegawa, Ray A. Bressan
    Journal of Crop Production 2003 7 1-2
  • Characterization of a new mutant allele of theArabidopsis Flowering Locus D (FLD) gene that controls the flowering time by repressingFLC
    Chen Ruiqiang, Zhang Suzhi, Sun Shulan, Chang Jianhong, Zuo Jianru
    Chinese Science Bulletin 2005 50 23
  • Chromatin-mediated regulation of flowering time in Arabidopsis
    Bosl Noh, Yoo-Sun Noh
    Physiologia Plantarum 2006
  • Cloning and expression profiling polycomb gene VERNALIZATION INSENSITIVE 3 in tomato
    Z. M. Almutairi, M. T. Sadder
    Biologia plantarum 2014 58 3
  • Cloning and function analysis of a novel flowering time regulatory gene BraELF6 in Brassica rapa
    Guoliang Li, Fei Li, Shifan Zhang, Hui Zhang, Shujiang Zhang, Rifei Sun
    Scientia Horticulturae 2019 248
  • Current understanding of flowering pathways in plants: focusing on the vernalization pathway in Arabidopsis and several vegetable crop plants
    Dong-Hwan Kim
    Horticulture, Environment, and Biotechnology 2020 61 2
  • Existence of homologous sequences corresponding to cDNA of the ver gene in diverse higher plant species
    Shi Qian JIA, Wei Dong YONG, Wen Zhong XU, Yun Yuan XU, Jin Song WU, Kang CHONG, Ke Hui TAN, Zhi Hong XU
    Cell Research 2001 11 4
  • Experiments, measurements, and mathematical modeling to decipher time signals in development
    Christian Tendeng
    Birth Defects Research Part C: Embryo Today: Reviews 2012 96 2
  • Genetic Regulation of Common Wheat Heading Time
    A. A. Kiseleva, E. A. Salina
    Russian Journal of Genetics 2018 54 4
  • Genetics, Biofuels and Local Farming Systems
    Evangelia Sinapidou, Ioannis S. Tokatlidis
    2011 7
  • LEAFY COTYLEDONs: old genes with new roles beyond seed development
    De Niu, Yuehui He
    F1000Research 2019 8
  • Micropropagation of Woody Trees and Fruits
    Duong Tan Nhut, Jaime A. Teixeira da Silva, Bui Van Le, K. Tran Thanh Van
    2003 75
  • Molecular cloning, characterization and expression analysis of bolting-associated genes in flowering Chinese cabbage
    Xufeng Xiao, Caijun Wu, Zhiyun Xu, Yingui Yang, Shuying Fan, Heng Wang
    Genes & Genomics 2015 37 4
  • Overexpression of TaMADS from wheat promotes flowering by upregulating expression of floral promoters and provides protection against thermal stress
    Preeti Agarwal, Paramjit Khurana
    Plant Gene 2019 17
  • Progress in Botany
    Günter Theißen
    2006 67
  • Progress in Botany 77
    Eva Lucas-Reina, M Isabel Ortiz-Marchena, Francisco J. Romero-Campero, Myriam Calonje, José M. Romero, Federico Valverde
    2016 77
  • Root development inarabidopsis thaliana: attraction from underground
    Jun Lim, Myeong Min Lee
    Journal of Plant Biology 2007 50 3
  • Temperature and Plant Development
    Kathleen Greenham, C. Robertson McClung
    2013
  • Variation of Bolting at Cultivation of Different Regions and Molecular Characterization of FLC homologs in Angelica gigas Nakai
    Young-Guk Kim, Jun-Hwan Yeo, Tae-Jin An, Sin-Hee Han, Young-Sup Ahn, Chung-Beom Park, Yun-Hee Jang, Jeong-Kook Kim
    Korean Journal of Medicinal Crop Science 2012 20 5
  • Cloning and Expression Analysis of a Flowering Gene FRIGIDA (GbFRI) from Ginkgo biloba
    Jingjing Liao, Xiaomeng Liu, Xian Zhou, Zexiong Chen, Junpin Tan, Jiabao Ye, Weiwei Zhang, Feng Xu
    Biotechnology(Faisalabad) 2018 18 1
  • A La-Related Protein LaRP6a Delays Flowering of Arabidopsis thaliana by Upregulating FLC Transcript Levels
    Su Jung Park, Hwa Jung Lee, Kwanuk Lee, Hunseung Kang
    Journal of Plant Biology 2020 63 5
  • An invaluable transgenic blueberry for studying chilling-induced flowering in woody plants
    Guo-qing Song, Aaron Walworth
    BMC Plant Biology 2018 18 1
  • Annual Plant Reviews online
    G. Reuter, A. Fischer, I. Hofmann
    2018
  • Annual Plant Reviews online
    Steven van Nocker, Maria Julissa Ek-Ramos
    2018
  • Annual Plant Reviews online
    Paul Devlin
    2018
  • Annual Plant Reviews online
    Isabelle Carré, George Coupland, Joanna Putterill
    2018
  • Annual Plant Reviews online
    Kathryn O'Connor, Pablo González‐Suárez, Laura E. Dixon
    2020
  • Bayesian non-parametric multivariate statistical models for testing association between quantitative traits and candidate genes in structured populations
    Meijuan Li, Timothy Hanson
    Journal of the Royal Statistical Society: Series C (Applied Statistics) 2011 60 2
  • Changes in the morphology of the bud meristem and the levels of endogenous hormones after low temperature treatment of different Phalaenopsis cultivars
    Y.J. Zhang, A. Li, X.Q. Liu, J.X. Sun, W.J. Guo, J.W. Zhang, Y.M. Lyu
    South African Journal of Botany 2019 125
  • Cloning of FLOWERING LOCUS C ortholog in Wasabia japonica (Matsum.)
    Hiroyoshi Kubo, Kiyoshi Yoshida, Masayuki Nozue
    Journal of Plant Biochemistry and Biotechnology 2012 21 1
  • Comparison of Cold Responses for Orthologs of Cabbage Vernalization-related Genes
    Etsuko Itabashi, Daniel J. Shea, Nobuko Fukino, Ryo Fujimoto, Keiichi Okazaki, Tomohiro Kakizaki, Takayoshi Ohara
    The Horticulture Journal 2019 88 4
  • Coupling of H3K27me3 recognition with transcriptional repression through the BAH-PHD-CPL2 complex in Arabidopsis
    Yi-Zhe Zhang, Jianlong Yuan, Lingrui Zhang, Chunxiang Chen, Yuhua Wang, Guiping Zhang, Li Peng, Si-Si Xie, Jing Jiang, Jian-Kang Zhu, Jiamu Du, Cheng-Guo Duan
    Nature Communications 2020 11 1
  • Duration of cold exposure defines the rate of reactivation of a perennial FLC orthologue via H3K27me3 accumulation
    Haruki Nishio, Koji Iwayama, Hiroshi Kudoh
    Scientific Reports 2020 10 1
  • Effects of Overexpression of Brassica Rapa SHORT VEGETATIVE PHASE Gene on Flowering Time
    Joon Ki Hong, Sang-Ryeol Park, Eun Jung Suh, Jihee Park, Yeon-Hee Lee
    Korean Journal of Breeding Science 2020 52 3
  • Encyclopedia of Life Sciences
    E Jean Finnegan, Chris Helliwell, Candice Sheldon, W James Peacock, Elizabeth Dennis, David Bagnall, Dean Rouse, Million Tadege
    2007
  • Epigenomics
    Mark R. Doyle, Richard M. Amasino
    2009
  • Gene Expression Analysis in Response to Vernalization in Chinese Cabbage (<i>Brassica rapa</i> L.)
    Ayasha Akter, Junji Miyazaki, Daniel J. Shea, Namiko Nishida, Satoko Takada, Naomi Miyaji, Hasan Mehraj, Motoki Shimizu, Md. Asad-ud Doullah, Takeshi Takasaki-Yasuda, Keiichi Okazaki, Ryo Fujimoto
    The Horticulture Journal 2020 89 3
  • Genetics, Genomics and Breeding of Poplar
    Cetin Yuceer, Chuan-Yu Hsu, Amy Brunner, Steven Strauss
    2011
  • Global Analysis of Cytosine Methylation and Proteome Under Cold Treatment in Brassica napus
    Fang WEI, Jie HU, Ming-zhu CUI, Yan-hui ZHANG, Yun-ling LI, Bao-ming TIAN
    Journal of Integrative Agriculture 2014 13 10
  • Highlights in European Plant Biotechnology Research and Technology Transfer, Proceedings of the Second European Conference on Plant Biotechnology
    Caroline Dean, Caroline Dean, Tony Gendall, Yaron Levy, Clare Lister, Gordon Simpson, Keri Torney, Paul Dijkwel, Meg Duroux, Claire Hutchison, Urban Johanson, Richard Macknight, Bonita Smart, Pierre Sivadon, Joanne West
    2000 6
  • Horticultural Reviews
    Steve van Nocker
    2010
  • Impact of vernalization and heat on flowering induction, development and fertility in root chicory (Cichorium intybus L. var. sativum)
    Anne-Sophie Mathieu, Claire Périlleux, Guillaume Jacquemin, Marie-Eve Renard, Stanley Lutts, Muriel Quinet
    Journal of Plant Physiology 2020 254
  • Mathematical Modelling in Plant Biology
    Akiko Satake
    2018
  • Multiple Arrowing: A Rare Phenomenon in a Related Wild Species of Sugarcane
    P. Govindaraj, V. Sreenivasa
    Sugar Tech 2014 16 4
  • Protein interference for regulation of gene expression in plants
    A. O. Vyacheslavova, I. A. Abdeeva, E. S. Piruzian, S. A. Bruskin
    Vavilov Journal of Genetics and Breeding 2018 22 7
  • Stability ofSaFLCrepression inSinapis alba
    Maria D’Aloia, Claire Périlleux
    Plant Signaling & Behavior 2008 3 11
  • Temperature and Plant Development
    Dong-Hwan Kim, Sibum Sung
    2013
  • The molecular mechanism of vernalization in Arabidopsis and cereals: role of Flowering Locus C and its homologs
    Neha Sharma, Koen Geuten, Balendu Shekhar Giri, Ajit Varma
    Physiologia Plantarum 2020 170 3
  • The transition to flowering in winter rapeseed during vernalization
    Sarah Matar, Avneesh Kumar, Daniela Holtgräwe, Bernd Weisshaar, Siegbert Melzer
    Plant, Cell & Environment 2021 44 2
  • TheVER2 promoter contains repeated sequences and requires vernalization for its activity in winter wheat (Triticum aestivum L.)
    Wenzhong Xu, Xin Wang, Qi Feng, Lei Zhang, Yaoguang Liu, Bin Han, Kang Chong, Zhihong Xu, Kehui Tan
    Chinese Science Bulletin 2004 49 4
  • cDNA-AFLP analysis on transcripts associated with bolting in
    Yan-Min ZOU, Shuan-Cang YU, Feng-Lan ZHANG, Yang-Jun YU, Xiu-Yun ZHAO, De-Shuang ZHANG
    Hereditas (Beijing) 2009 31 7
  • eLS
    Laura E Dixon, Jo Hepworth, Judith A Irwin
    2019

Article Information

vol. 11 no. 3 445-458
DOI 
https://doi.org/10.1105/tpc.11.3.445
PubMed 
10072403

Published By 
American Society of Plant Biologists
Print ISSN 
1040-4651
Online ISSN 
1532-298X
Published Online 
March 01, 1999

Copyright & Usage 
© 1999 American Society of Plant Physiologists

PreviousNext
Back to top

Table of Contents

Print
Download PDF
Email Article

Thank you for your interest in spreading the word on Plant Cell.

NOTE: We only request your email address so that the person you are recommending the page to knows that you wanted them to see it, and that it is not junk mail. We do not capture any email address.

Enter multiple addresses on separate lines or separate them with commas.
The FLF MADS Box Gene: A Repressor of Flowering in Arabidopsis Regulated by Vernalization and Methylation
(Your Name) has sent you a message from Plant Cell
(Your Name) thought you would like to see the Plant Cell web site.
CAPTCHA
This question is for testing whether or not you are a human visitor and to prevent automated spam submissions.
Citation Tools
The FLF MADS Box Gene: A Repressor of Flowering in Arabidopsis Regulated by Vernalization and Methylation
Candice C. Sheldon, Joanne E. Burn, Pascual P. Perez, Jim Metzger, Jennifer A. Edwards, W. James Peacock, Elizabeth S. Dennis
The Plant Cell Mar 1999, 11 (3) 445-458; DOI: 10.1105/tpc.11.3.445

Citation Manager Formats

  • BibTeX
  • Bookends
  • EasyBib
  • EndNote (tagged)
  • EndNote 8 (xml)
  • Medlars
  • Mendeley
  • Papers
  • RefWorks Tagged
  • Ref Manager
  • RIS
  • Zotero
Request Permissions
Share
The FLF MADS Box Gene: A Repressor of Flowering in Arabidopsis Regulated by Vernalization and Methylation
Candice C. Sheldon, Joanne E. Burn, Pascual P. Perez, Jim Metzger, Jennifer A. Edwards, W. James Peacock, Elizabeth S. Dennis
The Plant Cell Mar 1999, 11 (3) 445-458; DOI: 10.1105/tpc.11.3.445
del.icio.us logo Digg logo Reddit logo Twitter logo CiteULike logo Facebook logo Google logo Mendeley logo
  • Tweet Widget
  • Facebook Like
  • Google Plus One

Jump to section

  • Article
    • Abstract
    • INTRODUCTION
    • RESULTS
    • DISCUSSION
    • METHODS
    • ACKNOWLEDGMENTS
    • REFERENCES
  • Figures & Data
  • Info & Metrics
  • PDF

In this issue

The Plant Cell Online: 11 (3)
The Plant Cell
Vol. 11, Issue 3
Mar 1999
  • Table of Contents
  • About the Cover
  • Index by author
View this article with LENS

More in this TOC Section

  • Temporal Regulation of the Metabolome and Proteome in Photosynthetic and Photorespiratory Pathways Contributes to Maize Heterosis
  • Chloroplast Chaperonin-Mediated Targeting of a Thylakoid Membrane Protein
  • Ectopic Expression of the Transcriptional Regulator silky3 Causes Pleiotropic Meristem and Sex Determination Defects in Maize Inflorescences
Show more RESEARCH ARTICLES

Similar Articles

Our Content

  • Home
  • Current Issue
  • Plant Cell Preview
  • Archive
  • Teaching Tools in Plant Biology
  • Plant Physiology
  • Plant Direct
  • Plantae
  • ASPB

For Authors

  • Instructions
  • Submit a Manuscript
  • Editorial Board and Staff
  • Policies
  • Recognizing our Authors

For Reviewers

  • Instructions
  • Peer Review Reports
  • Journal Miles
  • Transfer of reviews to Plant Direct
  • Policies

Other Services

  • Permissions
  • Librarian resources
  • Advertise in our journals
  • Alerts
  • RSS Feeds
  • Contact Us

Copyright © 2021 by The American Society of Plant Biologists

Powered by HighWire