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Flower development of Lilium longiflorum - The Lilium information ...

Flower development of Lilium longiflorum - The Lilium information ...

Chapter 4 REFERENCES

Chapter 4 REFERENCES Arabidopsis Genome Initiative, The (2000) Analysis of the genome sequence of the flowering plant Arabidopsis thaliana. Nature 408: 796-815 Causier B, Davies B (2002) Analyzing protein-protein interactions with the yeast two-hybrid system. Plant Mol Biol 50: 855-870 Chandler JW, Werr W (2003) When negative is positive in functional genomics. Trends Plant Sci 8: 279-285 Cho S, Jang S, Chae S, Chung KM, Moon Y-H, An G, Jang SK (1999) Analysis of the Cterminal region of Arabidopsis thaliana APETALA1 as a transcription activation domain. Plant Mol Biol 40: 419-429 Clough SJ, Bent AF (1998) Floral dip: a simplified method for Agrobacterium-mediated transformation of Arabidopsis thaliana. Plant J 16: 735-743 Coen ES, Meyerowitz EM (1991) The war of the whorls: genetic interactions controlling flower development. Nature 353: 31-37 Echt CS, May-Marquardt P, Hseih M, Zahorchak R (1996) Characterization of microsatellite markers in eastern white pine. Genome 39: 1102-1108 Fan H-Y, Hu Y, Tudor M, Ma H (1997) Specific interactions between the K domains of AG and AGLs, members of the MADS domain family of DNA binding proteins. Plant J 12: 999-1010 Herskowitz I (1987) Functional inactivation of genes by dominant negative mutations. Nature 329: 219-222 Hirschi KD (2003) Insertional mutants: a foundation for assessing gene function. Trends Plant Sci 8: 205-207 Immink RGH, Angenent GC (2002) Transcription factors do it together: the hows and whys of studying protein-protein interactions. Trends Plant Sci 7: 531-534 Immink RGH, Gadella Jr TWJ, Ferrario S, Busscher M, Angenent GC (2002) Analysis of MADS box protein-protein interactions in living plant cells. Proc Natl Acad Sci USA 99: 2416-2421 Koornneef M, van Eden J, Hanhart CJ, Stam P, Braaksma FJ, Feenstra WJ (1983) Linkage map of Arabidopsis thaliana. J Hered 74: 265-272 Krizek BA, Riechmann JL, Meyerowitz EM (1999) Use of the APETALA1 promoter to assay the in vivo function of chimeric MADS-box genes. Sex Plant Reprod 12: 14-26 Laibach F. (1943) Arabidopsis thaliana (L.) Heynh. als object fur genetische und entwicklungsphysiolosche untersuchungen. Bot Archiv 44: 439-455 Lenhard M, Bohnert A, Jürgens G (2001) Termination of stem cell maintenance in Arabidopsis floral meristems by interactions between WUSCHEL and AGAMOUS. Cell 105: 805-814 Li QZ, Li XG, Bai SN, Lu WL, Zhang XS (2002) Isolation of HAG1 and its regulation by plant hormones during in vitro floral organogenesis in Hyacinthus orientalis L. Planta 215: 533-540 64

Ascribing genetic function from lily using heterologous system Liu Y-G, Mitsukawa N, Oosumi T, Whittier RF (1995) Efficient isolation and mapping of Arabidopsis thaliana T-DNA insert junctions by thermal asymmetric interlaced PCR. Plant J 8: 457-463 Ma H, Yanofsky MF, Meyerowitz EM (1991) AGL1-AGL6, an Arabidopsis gene family with similarity to floral homeotic and transcription factor genes. Genes Dev 5: 484-495 Mattanovich D, Rüker F, Machado AC, Laimer M, Regner F, Steinkellner H, Himmler H (1989) Efficient transformation of Agrobacterium spp. by electroporation. Nucleic Acids Res 17: 6747 Meinke DW, Cherry JM, Dean C, Rounsley SD, Koornneef M (1998) Arabidopsis thaliana: a model plant for genome analysis. Science 282: 662-682 Meyerowitz EM (2001) Prehistory and history of Arabidopsis research. Plant Physiol 125: 15- 19 Meyerowitz EM, Somerville CR (1994) Arabidopsis. Cold Spring Laboratory Press, Cold Spring Harbor, NY Mizukami Y, Huang H, Tudor M, Hu Y, Ma H (1996) Functional domains of the floral regulator AGAMOUS: characterization of the DNA binding domain and analysis of dominant negative mutations. Plant Cell 8: 831-845 Mizukami Y, Ma H (1992) Ectopic expression of the floral homeotic gene AGAMOUS in transgenic Arabidopsis plants alters floral organ identity. Cell 71: 119-131 Moon Y-H, Kang H-G, Jung J-Y, Jeon J-S, Sung S-K, An G (1999) Determination of the motif responsible for interaction between the rice APETALA1/AGAMOUS-LIKE9 family proteins using a yeast two-hybrid system. Plant Physiol 120: 1193-1203 Murashige T, Skoog F (1962) A revised medium for rapid growth and bioassays with tobacco tissue cultures. Physiol Plantarum 15: 473-479 Pelaz S, Gustafson-Brown C, Kohalmi SE, Crosby WL, Yanofsky MF (2001) APETALA1 and SEPALLATA3 interact to promote flower development. Plant J 26: 385-394 Pollock R, Treisman R (1991) Human SRF-related proteins: DNA-binding properties and potential regulatory targets. Gene Dev 5: 2327-2341 Rédei GP (1970) Arabidopsis thaliana (L.) Heynh. A review of the biology and genetics. Bibliogr Genet 20: 1-151 Riechmann JL, Krizek BA, Meyerowitz EM (1996a) Dimerization specificity of Arabidopsis MADS domain homeotic proteins APETALA1, APETALA3, PISTILLATA and AGAMOUS. Proc Natl Acad Sci USA 93: 4793-4798 Riechmann JL, Wang M, Meyerowitz EM (1996b) DNA-binding properties of Arabidopsis MADS domain homeotic protein APETALA1, APETALA3, PISTILLATA and AGAMOUS. Nucleic Acids Res 24: 3134-3141 Rigola D, Pè ME, Mizzi L, Ciampolini F, Sari-Gorla M (2001) CaMADS1, an AGAMOUS homologue from hazelnut, produces floral homeotic conversion when expressed in Arabidopsis. Sex Plant Reprod 13: 185-191 Rutledge R, Regan S, Nicolas O, Fobert P, Côté C, Bosnich W, Kauffeldt C, Sunohara G, Séguin A, Stewart D (1998) Characterization of an AGAMOUS homologue from the conifer black spruce (Picea mariana) that produces floral homeotic conversions when expressed in Arabidopsis. Plant J 15: 625-634 65

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