Floral organ identity: 20 years of ABCs

Seminars in Cell & Developmental Biology - Tập 21 Số 1 - Trang 73-79 - 2010
Barry Causier1, Zsuzsanna Schwarz‐Sommer2, Brendan Davies1
1Centre for Plant Sciences, University of Leeds, Woodhouse Lane, Leeds, LS2 9JT, UK.
2Dept. of Molecular Plant Genetics (Heinz Saedler), MPI for Plant Breeding Research, Max Planck Society

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Coen, 1991, The war of the whorls: genetic interactions controlling flower development, Nature, 353, 31, 10.1038/353031a0

Weigel, 1994, The ABCs of floral homeotic genes, Cell, 78, 203, 10.1016/0092-8674(94)90291-7

Soltis, 2007, The ABC model and its applicability to basal angiosperms, Ann Bot (Lond), 100, 155, 10.1093/aob/mcm117

Krizek, 1996, The Arabidopsis homeotic genes APETALA3 and PISTILLATA are sufficient to provide the B class organ identity function, Development, 112, 11, 10.1242/dev.122.1.11

Mizukami, 1992, Ectopic expression of the floral homeotic gene AGAMOUS in transgenic Arabidopsis plants alters floral organ identity, Cell, 71, 119, 10.1016/0092-8674(92)90271-D

Krizek, 2005, Molecular mechanisms of flower development: an armchair guide, Nat Rev Genet, 6, 688, 10.1038/nrg1675

Sommer, 1990, A homeotic gene involved in the control of flower morphogenesis in Antirrhinum majus: the protein shows homology to transcription factors, EMBO J, 9, 605, 10.1002/j.1460-2075.1990.tb08152.x

Yanofsky, 1990, The protein encoded by the Arabidopsis homeotic gene agamous resembles transcription factors, Nature, 346, 35, 10.1038/346035a0

Schwarz-Sommer, 1990, Genetic control of flower development by homeotic genes in Antirrhinum majus, Science, 250, 931, 10.1126/science.250.4983.931

Jofuku, 1994, Control of Arabidopsis flower and seed development by the homeotic gene APETALA2, Plant Cell, 6, 1211, 10.1105/tpc.6.9.1211

Parenicová, 2003, Molecular and phylogenetic analyses of the complete MADS-box transcription factor family in Arabidopsis: new openings to the MADS world, Plant Cell, 15, 1538, 10.1105/tpc.011544

Alvarez-Buylla, 2000, An ancestral MADS-box gene duplication occurred before the divergence of plants and animals, Proc Natl Acad Sci USA, 97, 5328, 10.1073/pnas.97.10.5328

Goethe, 1790

Bradley, 1993, Complementary floral homeotic phenotypes result from opposite orientations of a transposon at the plena locus of Antirrhinum, Cell, 72, 85, 10.1016/0092-8674(93)90052-R

Davies, 1996, Alteration of tobacco floral organ identity by expression of combinations of Antirrhinum MADS-box genes, Plant J, 10, 663, 10.1046/j.1365-313X.1996.10040663.x

Causier, 2005, Evolution in action: following function in duplicated floral homeotic genes, Curr Biol, 15, 1508, 10.1016/j.cub.2005.07.063

Schwarz-Sommer, 1992, Characterization of the Antirrhinum floral homeotic MADS-box gene deficiens: evidence for DNA binding and autoregulation of its persistent expression throughout flower development, EMBO J, 11, 251, 10.1002/j.1460-2075.1992.tb05048.x

Tröbner, 1992, GLOBOSA: a homeotic gene which interacts with DEFICIENS in the control of Antirrhinum floral organogenesis, EMBO J, 11, 4693, 10.1002/j.1460-2075.1992.tb05574.x

Riechmann, 1996, Dimerization specificity of Arabidopsis MADS domain homeotic proteins APETALA1, APETALA3, PISTILLATA, and AGAMOUS, Proc Natl Acad Sci USA, 93, 4793, 10.1073/pnas.93.10.4793

Davies, 1996, Multiple interactions amongst floral homeotic MADS box proteins, EMBO J, 15, 4330, 10.1002/j.1460-2075.1996.tb00807.x

Riechmann, 1997, Determination of floral organ identity by Arabidopsis MADS domain homeotic proteins AP1, AP3, PI, and AG is independent of their DNA-binding specificity, Mol Biol Cell, 8, 1243, 10.1091/mbc.8.7.1243

Egea-Cortines, 1999, Ternary complex formation between the MADS-box proteins SQUAMOSA, DEFICIENS and GLOBOSA is involved in the control of floral architecture in Antirrhinum majus, EMBO J, 18, 5370, 10.1093/emboj/18.19.5370

Colombo, 1995, The petunia MADS-box gene FBP11 determines ovule identity, Plant Cell, 7, 1859, 10.1105/tpc.7.11.1859

Pinyopich, 2003, Assessing the redundancy of MADS-box genes during carpel and ovule development, Nature, 424, 85, 10.1038/nature01741

Favaro, 2003, MADS-box protein complexes control carpel and ovule development in Arabidopsis, Plant Cell, 15, 2603, 10.1105/tpc.015123

Pnueli, 1994, The TM5 MADS box gene mediates organ differentiation in the three inner whorls of tomato flowers, Plant Cell, 6, 175, 10.1105/tpc.6.2.175

Angenent, 1994, Co-suppression of the petunia homeotic gene fbp2 affects the identity of the generative meristem, Plant J, 5, 33, 10.1046/j.1365-313X.1994.5010033.x

Ferrario, 2003, The MADS box gene FBP2 is required for SEPALLATA function in petunia, Plant Cell, 15, 914, 10.1105/tpc.010280

Pelaz, 2000, B and C floral organ identity functions require SEPALLATA MADS-box genes, Nature, 405, 200, 10.1038/35012103

Egea Gutierrez-Cortines, 2000, Beyond the ABCs: ternary complex formation in the control of floral organ identity, Trends Plant Sci, 5, 471, 10.1016/S1360-1385(00)01761-1

Pelaz, 2001, Conversion of leaves into petals in Arabidopsis, Curr Biol, 11, 182, 10.1016/S0960-9822(01)00024-0

Honma, 2001, Complexes of MADS-box proteins are sufficient to convert leaves into floral organs, Nature, 409, 525, 10.1038/35054083

Fan, 1997, Specific interactions between the K domains of AG and AGLs, members of the MADS domain family of DNA binding proteins, Plant J, 12, 999, 10.1046/j.1365-313X.1997.12050999.x

de Folter, 2005, Comprehensive interaction map of the Arabidopsis MADS box transcription factors, Plant Cell, 17, 1424, 10.1105/tpc.105.031831

Immink, 2009, SEPALLATA3: the ‘glue’ for MADS box transcription factor complex formation, Genome Biol, 10, R24, 10.1186/gb-2009-10-2-r24

Melzer, 2009, Reconstitution of ‘floral quartets’ in vitro involving class B and class E floral homeotic proteins, Nucleic Acids Res, 37, 2723, 10.1093/nar/gkp129

Davies, 1999, PLENA and FARINELLI: redundancy and regulatory interactions between two Antirrhinum MADS-box factors controlling flower development, EMBO J, 18, 4023, 10.1093/emboj/18.14.4023

Lönnig, 1994, The homeotic Macho mutant of Antirrhinum majus reverts to wild-type or mutates to the homeotic plena phenotype, Mol Gen Genet, 245, 636, 10.1007/BF00282227

Litt, 2007, An evaluation of the A-function: evidence from the APETALA1 and APETALA2 gene lineages, Int J Plant Sci, 168, 73, 10.1086/509662

Kater, 2006, Functional conservation of MADS-box factors controlling floral organ identity in rice and Arabidopsis, J Exp Bot, 57, 3433, 10.1093/jxb/erl097

Zahn, 2006, Beyond the ABC-model: regulation of floral homeotic genes, Adv Bot Res, 44, 163, 10.1016/S0065-2296(06)44004-0

Okamuro, 1997, Photo and hormonal control of meristem identity in the Arabidopsis flower mutants apetala2 and apetala1, Plant Cell, 9, 37, 10.1105/tpc.9.1.37

Irish, 2005, Flower development and evolution: gene duplication, diversification and redeployment, Curr Opin Genet Dev, 15, 454, 10.1016/j.gde.2005.06.001

Huijser, 1992, an inflorescence anomaly, is caused by the loss of function of the MADS-box gene squamosa in Antirrhinum majus, EMBO J, 11, 1239, 10.1002/j.1460-2075.1992.tb05168.x

Bowman, 1993, Control of flower development in Arabidopsis thaliana by APETALA1 and interacting genes, Development, 119, 721, 10.1242/dev.119.3.721

Yu, 2004, Repression of AGAMOUS-LIKE 24 is a crucial step in promoting flower development, Nat Genet, 36, 157, 10.1038/ng1286

Castillejo, 2005, A new role of the Arabidopsis SEPALLATA3 gene revealed by its constitutive expression, Plant J, 43, 586, 10.1111/j.1365-313X.2005.02476.x

Bowman, 1991, Genetic interactions among floral homeotic genes of Arabidopsis, Development, 112, 1, 10.1242/dev.112.1.1

Keck, 2003, Separation of genetic functions controlling organ identity in flowers, EMBO J, 22, 1058, 10.1093/emboj/cdg097

Motte, 1998, STYLOSA and FISTULATA: regulatory components of the homeotic control of Antirrhinum floral organogenesis, Development, 125, 71, 10.1242/dev.125.1.71

Navarro, 2004, Molecular and genetic interactions between STYLOSA and GRAMINIFOLIA in the control of Antirrhinum vegetative and reproductive development, Development, 131, 3649, 10.1242/dev.01205

Jack, 2004, Molecular and genetic mechanisms of floral control, Plant Cell, 16, S1, 10.1105/tpc.017038

Sridhar, 2006, APETALA1 and SEPALLATA3 interact with SEUSS to mediate transcription repression during flower development, Development, 133, 3159, 10.1242/dev.02498

Cartolano, 2007, A conserved microRNA module exerts homeotic control over Petunia hybrida and Antirrhinum majus floral organ identity, Nat Genet, 39, 901, 10.1038/ng2056

Hantke, 1995, Expression of Floricaula in single cell layers of periclinal chimeras activates downstream homeotic genes in all layers of floral meristems, Development, 121, 27, 10.1242/dev.121.1.27

Gregis, 2006, AGL24, SHORT VEGETATIVE PHASE, and APETALA1 redundantly control AGAMOUS during early stages of flower development in Arabidopsis, Plant Cell, 18, 1373, 10.1105/tpc.106.041798

Gómez-Mena, 2005, Transcriptional program controlled by the floral homeotic gene AGAMOUS during early organogenesis, Development, 132, 429, 10.1242/dev.01600

Cartolano, 2009, Enhanced AGAMOUS expression in the centre of the Arabidopsis flower causes ectopic expression over its outer expression boundaries, Planta, 230, 857, 10.1007/s00425-009-0966-7

Krizek, 2006, RABBIT EARS is a second-whorl repressor of AGAMOUS that maintains spatial boundaries in Arabidopsis flowers, Plant J, 45, 369, 10.1111/j.1365-313X.2005.02633.x