Note to users. If you're seeing this message, it means that your browser cannot find this page's style/presentation instructions -- or possibly that you are using a browser that does not support current Web standards. Find out more about why this message is appearing, and what you can do to make your experience of our site the best it can be.

Site Tools

  • AAAS
  • Subscribe
  • Feedback

Site Search

Search Advanced

Science 13 October 2000:
Vol. 290. no. 5490, pp. 344 - 347
DOI: 10.1126/science.290.5490.344

Reports

Molecular Analysis of FRIGIDA, a Major Determinant of Natural Variation in Arabidopsis Flowering Time

Urban Johanson,1* Joanne West,1 Clare Lister,1 Scott Michaels,2 Richard Amasino,2 Caroline Dean1ddagger

Vernalization, the acceleration of flowering by a long period of cold temperature, ensures that many plants overwinter vegetatively and flower in spring. In Arabidopsis, allelic variation at the FRIGIDA (FRI) locus is a major determinant of natural variation in flowering time. Dominant alleles of FRI confer late flowering, which is reversed to earliness by vernalization. We cloned FRI and analyzed the molecular basis of the allelic variation. Most of the early-flowering ecotypes analyzed carry FRI alleles containing one of two different deletions that disrupt the open reading frame. Loss-of-function mutations at FRI have thus provided the basis for the evolution of many early-flowering ecotypes.

1 Department of Molecular Genetics, John Innes Centre, Norwich NR4 7UH, UK.
2 Department of Biochemistry, University of Wisconsin, Madison, WI 53706, USA.
*   Present address: Department of Plant Biochemistry, Lund University, Post Office Box 117, SE-221 00 Lund, Sweden.

ddagger    To whom correspondence should be addressed. E-mail: caroline.dean{at}bbsrc.ac.uk


Read the Full Text



THIS ARTICLE HAS BEEN CITED BY OTHER ARTICLES:
Evolution of flowering decisions in a stochastic, density-dependent environment.
C. J. E. Metcalf, K. E. Rose, D. Z. Childs, A. W. Sheppard, P. J. Grubb, and M. Rees (2008)
PNAS 105, 10466-10470
   Abstract »    Full Text »    PDF »
Detecting polymorphic regions in Arabidopsis thaliana with resequencing microarrays.
G. Zeller, R. M. Clark, K. Schneeberger, A. Bohlen, D. Weigel, and G. Ratsch (2008)
Genome Res. 18, 918-929
   Abstract »    Full Text »    PDF »
Functional Redundancy and New Roles for Genes of the Autonomous Floral-Promotion Pathway.
K. M. Veley and S. D. Michaels (2008)
Plant Physiology 147, 682-695
   Abstract »    Full Text »    PDF »
Disruption of the Arabidopsis Circadian Clock Is Responsible for Extensive Variation in the Cold-Responsive Transcriptome.
Z. Bieniawska, C. Espinoza, A. Schlereth, R. Sulpice, D. K. Hincha, and M. A. Hannah (2008)
Plant Physiology 147, 263-279
   Abstract »    Full Text »    PDF »
FLC or not FLC: the other side of vernalization.
C. M. Alexandre and L. Hennig (2008)
J. Exp. Bot.
   Abstract »    Full Text »    PDF »
A Comparison of Two Nicotiana attenuata Accessions Reveals Large Differences in Signaling Induced by Oral Secretions of the Specialist Herbivore Manduca sexta.
J. Wu, C. Hettenhausen, M. C. Schuman, and I. T. Baldwin (2008)
Plant Physiology 146, 927-939
   Abstract »    Full Text »    PDF »
Construction and Analysis of 2 Reciprocal Arabidopsis Introgression Line Populations.
O. Torjek, R. C. Meyer, M. Zehnsdorf, M. Teltow, G. Strompen, H. Witucka-Wall, A. Blacha, and T. Altmann (2008)
J. Hered.
   Abstract »    Full Text »    PDF »
Mutations in the Arabidopsis SWC6 gene, encoding a component of the SWR1 chromatin remodelling complex, accelerate flowering time and alter leaf and flower development.
A. Lazaro, A. Gomez-Zambrano, L. Lopez-Gonzalez, M. Pineiro, and J. A. Jarillo (2008)
J. Exp. Bot.
   Abstract »    Full Text »    PDF »
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.
L. Xu, Z. Zhao, A. Dong, L. Soubigou-Taconnat, J.-P. Renou, A. Steinmetz, and W.-H. Shen (2008)
Mol. Cell. Biol. 28, 1348-1360
   Abstract »    Full Text »    PDF »
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, and E. S. Dennis (2008)
Plant Cell Physiol. 49, 191-200
   Abstract »    Full Text »    PDF »
Natural Variation in Arabidopsis lyrata Vernalization Requirement Conferred by a FRIGIDA Indel Polymorphism.
H. Kuittinen, A. Niittyvuopio, P. Rinne, and O. Savolainen (2008)
Mol. Biol. Evol. 25, 319-329
   Abstract »    Full Text »    PDF »
Inaugural Article: Histone arginine methylation is required for vernalization-induced epigenetic silencing of FLC in winter-annual Arabidopsis thaliana.
R. J. Schmitz, S. Sung, and R. M. Amasino (2008)
PNAS 105, 411-416
   Abstract »    Full Text »    PDF »
Antagonistic pleiotropic effects reduce the potential adaptive value of the FRIGIDA locus.
N. Scarcelli, J. M. Cheverud, B. A. Schaal, and P. X. Kover (2007)
PNAS 104, 16986-16991
   Abstract »    Full Text »    PDF »
Adaptation of flowering-time by natural and artificial selection in Arabidopsis and rice.
T. Izawa (2007)
J. Exp. Bot. 58, 3091-3097
   Abstract »    Full Text »    PDF »
Differential Expression of Genes Important for Adaptation in Capsella bursa-pastoris (Brassicaceae).
T. Slotte, K. Holm, L. M. McIntyre, U. Lagercrantz, and M. Lascoux (2007)
Plant Physiology 145, 160-173
   Abstract »    Full Text »    PDF »
Attenuation of brassinosteroid signaling enhances FLC expression and delays flowering.
M. A. Domagalska, F. M. Schomburg, R. M. Amasino, R. D. Vierstra, F. Nagy, and S. J. Davis (2007)
Development 134, 2841-2850
   Abstract »    Full Text »    PDF »
Natural Variation among Arabidopsis thaliana Accessions for Transcriptome Response to Exogenous Salicylic Acid.
H. van Leeuwen, D. J. Kliebenstein, M. A.L. West, K. Kim, R. van Poecke, F. Katagiri, R. W. Michelmore, R. W. Doerge, and D. A. St.Clair (2007)
PLANT CELL 19, 2099-2110
   Abstract »    Full Text »    PDF »
Natural Genetic Variation in Arabidopsis: Tools, Traits and Prospects for Evolutionary Ecology.
C. Shindo, G. Bernasconi, and C. S. Hardtke (2007)
Ann. Bot. 99, 1043-1054
   Abstract »    Full Text »    PDF »
Evolutionary Conservation of the FLOWERING LOCUS C-Mediated Vernalization Response: Evidence From the Sugar Beet (Beta vulgaris).
P. A. Reeves, Y. He, R. J. Schmitz, R. M. Amasino, L. W. Panella, and C. M. Richards (2007)
Genetics 176, 295-307
   Abstract »    Full Text »    PDF »
Components of the Arabidopsis mRNA Decapping Complex Are Required for Early Seedling Development.
D. C. Goeres, J. M. Van Norman, W. Zhang, N. A. Fauver, M. L. Spencer, and L. E. Sieburth (2007)
PLANT CELL 19, 1549-1564
   Abstract »    Full Text »    PDF »
Control of flowering time in temperate cereals: genes, domestication, and sustainable productivity.
J. Cockram, H. Jones, F. J. Leigh, D. O'Sullivan, W. Powell, D. A. Laurie, and A. J. Greenland (2007)
J. Exp. Bot.
   Abstract »    Full Text »    PDF »
Single Gene-Mediated Shift in Pollinator Attraction in Petunia.
M. E. Hoballah, T. Gubitz, J. Stuurman, L. Broger, M. Barone, T. Mandel, A. Dell'Olivo, M. Arnold, and C. Kuhlemeier (2007)
PLANT CELL 19, 779-790
   Abstract »    Full Text »    PDF »
Global eQTL Mapping Reveals the Complex Genetic Architecture of Transcript-Level Variation in Arabidopsis.
M. A. L. West, K. Kim, D. J. Kliebenstein, H. van Leeuwen, R. W. Michelmore, R. W. Doerge, and D. A. St. Clair (2007)
Genetics 175, 1441-1450
   Abstract »    Full Text »    PDF »
SUPPRESSOR OF FRI 4 encodes a nuclear-localized protein that is required for delayed flowering in winter-annual Arabidopsis.
S. Y. Kim and S. D. Michaels (2006)
Development 133, 4699-4707
   Abstract »    Full Text »    PDF »
A PHD finger protein involved in both the vernalization and photoperiod pathways in Arabidopsis.
S. Sung, R. J. Schmitz, and R. M. Amasino (2006)
Genes & Dev. 20, 3244-3248
   Abstract »    Full Text »    PDF »
FRIGIDA LIKE 2 Is a Functional Allele in Landsberg erecta and Compensates for a Nonsense Allele of FRIGIDA LIKE 1.
M. R. Schlappi (2006)
Plant Physiology 142, 1728-1738
   Abstract »    Full Text »    PDF »
SUPPRESSOR OF FRIGIDA4, Encoding a C2H2-Type Zinc Finger Protein, Represses Flowering by Transcriptional Activation of Arabidopsis FLOWERING LOCUS C.
S. Kim, K. Choi, C. Park, H.-J. Hwang, and I. Lee (2006)
PLANT CELL 18, 2985-2998
   Abstract »    Full Text »    PDF »
Polyploidy and Crop Improvement.
J. A. Udall and J. F. Wendel (2006)
Crop Sci. 46, S-3-S-14
   Abstract »    Full Text »    PDF »
Additional targets of the Arabidopsis autonomous pathway members, FCA and FY.
S Marquardt, P. Boss, J Hadfield, and C Dean (2006)
J. Exp. Bot. 57, 3379-3386
   Abstract »    Full Text »    PDF »
Protein interactions of MADS box transcription factors involved in flowering in Lolium perenne.
S. Ciannamea, K. Kaufmann, M. Frau, I. A. N. Tonaco, K. Petersen, K. K. Nielsen, G. C. Angenent, and R. G. H. Immink (2006)
J. Exp. Bot. 57, 3419-3431
   Abstract »    Full Text »    PDF »
The molecular genetic basis of plant adaptation.
I. M. Ehrenreich and M. D. Purugganan (2006)
Am. J. Botany 93, 953-962
   Abstract »    Full Text »    PDF »
Nonadditive Regulation of FRI and FLC Loci Mediates Flowering-Time Variation in Arabidopsis Allopolyploids.
J. Wang, L. Tian, H.-S. Lee, and Z. J. Chen (2006)
Genetics 173, 965-974
   Abstract »    Full Text »    PDF »
The transcription factor FLC confers a flowering response to vernalization by repressing meristem competence and systemic signaling in Arabidopsis..
I. Searle, Y. He, F. Turck, C. Vincent, F. Fornara, S. Krober, R. A. Amasino, and G. Coupland (2006)
Genes & Dev. 20, 898-912
   Abstract »    Full Text »    PDF »
Characterization of the Vernalization Response in Lolium perenne by a cDNA Microarray Approach.
S. Ciannamea, J. Busscher-Lange, S. de Folter, G. C. Angenent, and R. G. H. Immink (2006)
Plant Cell Physiol. 47, 481-492
   Abstract »    Full Text »    PDF »
EARLY IN SHORT DAYS 1 (ESD1) encodes ACTIN-RELATED PROTEIN 6 (AtARP6), a putative component of chromatin remodelling complexes that positively regulates FLC accumulation in Arabidopsis.
M. Martin-Trillo, A. Lazaro, R. S. Poethig, C. Gomez-Mena, M. A. Pineiro, J. M. Martinez-Zapater, and J. A. Jarillo (2006)
Development 133, 1241-1252
   Abstract »    Full Text »    PDF »
FLOWERING LOCUS C Mediates Natural Variation in the High-Temperature Response of the Arabidopsis Circadian Clock.
K. D. Edwards, P. E. Anderson, A. Hall, N. S. Salathia, J. C.W. Locke, J. R. Lynn, M. Straume, J. Q. Smith, and A. J. Millar (2006)
PLANT CELL 18, 639-650
   Abstract »    Full Text »    PDF »
Genomic Survey of Gene Expression Diversity in Arabidopsis thaliana.
D. J. Kliebenstein, M. A. L. West, H. van Leeuwen, K. Kim, R. W. Doerge, R. W. Michelmore, and D. A. St. Clair (2006)
Genetics 172, 1179-1189
   Abstract »    Full Text »    PDF »
The role of sugars in integrating environmental signals during the regulation of leaf senescence.
A. Wingler, S. Purdy, J. A. MacLean, and N. Pourtau (2006)
J. Exp. Bot. 57, 391-399
   Abstract »    Full Text »    PDF »
Extreme Population-Dependent Linkage Disequilibrium Detected in an Inbreeding Plant Species, Hordeum vulgare.
K. S. Caldwell, J. Russell, P. Langridge, and W. Powell (2006)
Genetics 172, 557-567
   Abstract »    Full Text »    PDF »
FRIGIDA-ESSENTIAL 1 interacts genetically with FRIGIDA and FRIGIDA-LIKE 1 to promote the winter-annual habit of Arabidopsis thaliana.
R. J. Schmitz, L. Hong, S. Michaels, and R. M. Amasino (2005)
Development 132, 5471-5478
   Abstract »    Full Text »    PDF »
Establishment of the Vernalization-Responsive, Winter-Annual Habit in Arabidopsis Requires a Putative Histone H3 Methyl Transferase.
S. Y. Kim, Y. He, Y. Jacob, Y.-S. Noh, S. Michaels, and R. Amasino (2005)
PLANT CELL 17, 3301-3310
   Abstract »    Full Text »    PDF »
Vernalization sensitivity in Arabidopsis thaliana (Brassicaceae): the effects of latitude and FLC variation.
J. R. Stinchcombe, A. L. Caicedo, R. Hopkins, C. Mays, E. W. Boyd, M. D. Purugganan, and J. Schmitt (2005)
Am. J. Botany 92, 1701-1707
   Abstract »    Full Text »    PDF »
SUPPRESSOR OF FRIGIDA3 Encodes a Nuclear ACTIN-RELATED PROTEIN6 Required for Floral Repression in Arabidopsis.
K. Choi, S. Kim, S. Y. Kim, M. Kim, Y. Hyun, H. Lee, S. Choe, S.-G. Kim, S. Michaels, and I. Lee (2005)
PLANT CELL 17, 2647-2660
   Abstract »    Full Text »    PDF »
An allelic series reveals essential roles for FY in plant development in addition to flowering-time control.
I. R. Henderson, F. Liu, S. Drea, G. G. Simpson, and C. Dean (2005)
Development 132, 3597-3607
   Abstract »    Full Text »    PDF »
TWIN SISTER OF FT (TSF) Acts as a Floral Pathway Integrator Redundantly with FT.
A. Yamaguchi, Y. Kobayashi, K. Goto, M. Abe, and T. Araki (2005)
Plant Cell Physiol. 46, 1175-1189
   Abstract »    Full Text »    PDF »
High-Diversity Genes in the Arabidopsis Genome.
J. M. Cork and M. D. Purugganan (2005)
Genetics 170, 1897-1911
   Abstract »    Full Text »    PDF »
FRIGIDA-Independent Variation in Flowering Time of Natural Arabidopsis thaliana Accessions.
J. D. Werner, J. O. Borevitz, N. H. Uhlenhaut, J. R. Ecker, J. Chory, and D. Weigel (2005)
Genetics 170, 1197-1207
   Abstract »    Full Text »    PDF »
From genes to plants via meristems.
A. Hay and M. Tsiantis (2005)
Development 132, 2679-2684
   Abstract »    Full Text »    PDF »
Natural Variation in Arabidopsis. How Do We Find the Causal Genes?.
D. Weigel and M. Nordborg (2005)
Plant Physiology 138, 567-568
   Full Text »    PDF »
Role of FRIGIDA and FLOWERING LOCUS C in Determining Variation in Flowering Time of Arabidopsis.
C. Shindo, M. J. Aranzana, C. Lister, C. Baxter, C. Nicholls, M. Nordborg, and C. Dean (2005)
Plant Physiology 138, 1163-1173
   Abstract »    Full Text »    PDF »
Differential Regulation of FLOWERING LOCUS C Expression by Vernalization in Cabbage and Arabidopsis.
S.-I Lin, J.-G. Wang, S.-Y. Poon, C.-l. Su, S.-S. Wang, and T.-J. Chiou (2005)
Plant Physiology 137, 1037-1048
   Abstract »    Full Text »    PDF »
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, and D. Weigel (2005)
PNAS 102, 2460-2465
   Abstract »    Full Text »    PDF »
Photoperiod Regulates Flower Meristem Development in Arabidopsis thaliana.
S. Jeong and S. E. Clark (2005)
Genetics 169, 907-915
   Abstract »    Full Text »    PDF »
Analysis of Flowering Pathway Integrators in Arabidopsis.
J. Moon, H. Lee, M. Kim, and I. Lee (2005)
Plant Cell Physiol. 46, 292-299
   Abstract »    Full Text »    PDF »
Integration of Flowering Signals in Winter-Annual Arabidopsis.
S. D. Michaels, E. Himelblau, S. Y. Kim, F. M. Schomburg, and R. M. Amasino (2005)
Plant Physiology 137, 149-156
   Abstract »    Full Text »    PDF »
siRNAs targeting an intronic transposon in the regulation of natural flowering behavior in Arabidopsis.
J. Liu, Y. He, R. Amasino, and X. Chen (2004)
Genes & Dev. 18, 2873-2878
   Abstract »    Full Text »    PDF »
PAF1-complex-mediated histone methylation of FLOWERING LOCUS C chromatin is required for the vernalization-responsive, winter-annual habit in Arabidopsis.
Y. He, M. R. Doyle, and R. M. Amasino (2004)
Genes & Dev. 18, 2774-2784
   Abstract »    Full Text »    PDF »
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, and M. D. Purugganan (2004)
PNAS 101, 15670-15675
   Abstract »    Full Text »    PDF »
The Role of Genomics Research in Improvement of "Orphan" Crops.
R. J. Nelson, R. L. Naylor, and M. M. Jahn (2004)
Crop Sci. 44, 1901-1904
   Full Text »    PDF »
Haplotype Structure and Phenotypic Associations in the Chromosomal Regions Surrounding Two Arabidopsis thaliana Flowering Time Loci.
J. Hagenblad, C. Tang, J. Molitor, J. Werner, K. Zhao, H. Zheng, P. Marjoram, D. Weigel, and M. Nordborg (2004)
Genetics 168, 1627-1638
   Abstract »    Full Text »    PDF »
A Mechanism Related to the Yeast Transcriptional Regulator Paf1c Is Required for Expression of the Arabidopsis FLC/MAF MADS Box Gene Family.
S. Oh, H. Zhang, P. Ludwig, and S. van Nocker (2004)
PLANT CELL 16, 2940-2953
   Abstract »    Full Text »    PDF »
Vernalization, Competence, and the Epigenetic Memory of Winter.
R. Amasino (2004)
PLANT CELL 16, 2553-2559
   Full Text »    PDF »
Divergent Roles of a Pair of Homologous Jumonji/Zinc-Finger-Class Transcription Factor Proteins in the Regulation of Arabidopsis Flowering Time.
B. Noh, S.-H. Lee, H.-J. Kim, G. Yi, E.-A. Shin, M. Lee, K.-J. Jung, M. R. Doyle, R. M. Amasino, and Y.-S. Noh (2004)
PLANT CELL 16, 2601-2613
   Abstract »    Full Text »    PDF »
Control of Arabidopsis flowering: the chill before the bloom.
I. R. Henderson and C. Dean (2004)
Development 131, 3829-3838
   Abstract »    Full Text »    PDF »
Environmental and genetic effects on flowering differences between northern and southern populations of Arabidopsis lyrata (Brassicaceae).
M. Riihimaki and O. Savolainen (2004)
Am. J. Botany 91, 1036-1045
   Abstract »    Full Text »    PDF »
Linkage Disequilibrium Mapping of Arabidopsis CRY2 Flowering Time Alleles.
K. M. Olsen, S. S. Halldorsdottir, J. R. Stinchcombe, C. Weinig, J. Schmitt, and M. D. Purugganan (2004)
Genetics 167, 1361-1369
   Abstract »    Full Text »    PDF »
Molecular and Genetic Mechanisms of Floral Control.
T. Jack (2004)
PLANT CELL 16, S1-S17
   Full Text »    PDF »
Multiple Pathways in the Decision to Flower: Enabling, Promoting, and Resetting.
P. K. Boss, R. M. Bastow, J. S. Mylne, and C. Dean (2004)
PLANT CELL 16, S18-S31
   Full Text »    PDF »
Quantitative Trait Locus Analysis of Growth-Related Traits in a New Arabidopsis Recombinant Inbred Population.
M. E. El-Lithy, E. J.M. Clerkx, G. J. Ruys, M. Koornneef, and D. Vreugdenhil (2004)
Plant Physiology 135, 444-458
   Abstract »    Full Text »    PDF »
A latitudinal cline in flowering time in Arabidopsis thaliana modulated by the flowering time gene FRIGIDA.
J. R. Stinchcombe, C. Weinig, M. Ungerer, K. M. Olsen, C. Mays, S. S. Halldorsdottir, M. D. Purugganan, and J. Schmitt (2004)
PNAS 101, 4712-4717
   Abstract »    Full Text »    PDF »
Exploiting quantitative trait loci in gene discovery.
S. Hake and T. Rocheford (2004)
Genes & Dev. 18, 597-601
   Full Text »    PDF »
Natural genetic variation in Arabidopsis identifies BREVIS RADIX, a novel regulator of cell proliferation and elongation in the root.
C. F. Mouchel, G. C. Briggs, and C. S. Hardtke (2004)
Genes & Dev. 18, 700-714
   Abstract »    Full Text »    PDF »
The Wheat VRN2 Gene Is a Flowering Repressor Down-Regulated by Vernalization.
L. Yan, A. Loukoianov, A. Blechl, G. Tranquilli, W. Ramakrishna, P. SanMiguel, J. L. Bennetzen, V. Echenique, and J. Dubcovsky (2004)
Science 303, 1640-1644
   Abstract »    Full Text »    PDF »
FRIGIDA-related genes are required for the winter-annual habit in Arabidopsis.
S. D. Michaels, I. C. Bezerra, and R. M. Amasino (2004)
PNAS 101, 3281-3285
   Abstract »    Full Text »    PDF »
Light signals, phytochromes and cross-talk with other environmental cues.
K. A. Franklin and G. C. Whitelam (2004)
J. Exp. Bot. 55, 271-276
   Abstract »    Full Text »    PDF »
The Dominance of the Herbicide Resistance Cost in Several Arabidopsis thaliana Mutant Lines.
F. Roux, J. Gasquez, and X. Reboud (2004)
Genetics 166, 449-460
   Abstract »    Full Text »    PDF »
Dissection of floral induction pathways using global expression analysis.
M. Schmid, N. H. Uhlenhaut, F. Godard, M. Demar, R. Bressan, D. Weigel, and J. U. Lohmann (2003)
Development 130, 6001-6012
   Abstract »    Full Text »    PDF »
Regulation of Flowering Time by Histone Acetylation in Arabidopsis.
Y. He, S. D. Michaels, and R. M. Amasino (2003)
Science 302, 1751-1754
   Abstract »    Full Text »    PDF »
The Role of Cryptochrome 2 in Flowering in Arabidopsis.
S. El-Din El-Assal, C. Alonso-Blanco, A. J.M. Peeters, C. Wagemaker, J. L. Weller, and M. Koornneef (2003)
Plant Physiology 133, 1504-1516
   Abstract »    Full Text »    PDF »
Mapping of Quantitative Trait Loci Controlling Adaptive Traits in Coastal Douglas Fir. III. Quantitative Trait Loci-by-Environment Interactions.
K. D. Jermstad, D. L. Bassoni, K. S. Jech, G. A. Ritchie, N. C. Wheeler, and D. B. Neale (2003)
Genetics 165, 1489-1506
   Abstract »    Full Text »    PDF »
DETERMINATE and LATE FLOWERING Are Two TERMINAL FLOWER1/CENTRORADIALIS Homologs That Control Two Distinct Phases of Flowering Initiation and Development in Pea.
F. Foucher, J. Morin, J. Courtiade, S. Cadioux, N. Ellis, M. J. Banfield, and C. Rameau (2003)
PLANT CELL 15, 2742-2754
   Abstract »    Full Text »