Identification of class B and class C floral organ identity genes from rice plants (original) (raw)
References
An G, Ebert PR, Mitra A, Ha SB: Binary vectors. In: Gelvin SB, Schilperoort RA (eds) Plant Molecular Biology Manual, pp. A3/1–19. Kluwer Academic Publishers, Dordrecht, Netherlands (1988). Google Scholar
Angenent GC, Busscher M, Franken J, Dons HJM, van Tunen AJ: Functional interaction between the homeotic genes fbp1 and pMADS1 during petunia floral organogenesis. Plant Cell 7: 507–516 (1995). Google Scholar
Angenent GC, Franken J, Busscher M, Colombo L, van Tunen AJ: Petal and stamen formation in petunia is regulated by the homeotic gene fbp1. Plant J 4: 101–112 (1993). Google Scholar
Bradley D, Carpenter R, Sommer H, Hartley N, Coen E: Complementary floral homeotic phenotypes result from opposite orientations of a transposon at the plena locus of Antirrhinum. Cell 72: 85–95 (1993). Google Scholar
Christensen AH, Sharrock RA, Quail PH: Maize polyubiquitin genes: structure, thermal perturbation of expression and transcript splicing, and promoter activity following transfer to protoplasts by electroporation. Plant Mol Biol 18: 675–689 (1992). Google Scholar
Chung YY, Kim SR, Kang HG, Noh YS, Park MC, Finkel D, An G: Characterization of two rice MADS box genes homologous to GLOBOSA. Plant Sci 109: 45–56 (1995). Google Scholar
Chung YY, Kim SR, Finkel D, Yanofsky MF, An G: Early flowering and reduced apical dominance result from ectopic expression of a rice MADS box gene. Plant Mol Biol 26: 657–665 (1994). Google Scholar
Church GM, Gilbert W: Genomic sequencing. Proc Natl Acad Sci USA 81: 1191–1195 (1984). Google Scholar
Coen ES: The role of homeotic genes in flower development and evolution. Annu Rev Plant Physiol Plant Mol Biol 42: 241–279 (1991). Google Scholar
Davies B, Rosa AD, Eneva T, Saedler H, Sommer H: Alteration of tobacco floral organ identity by expression of combinations of Antirrhinum MADS-box genes. Plant J 10: 663–677 (1996). Google Scholar
Goto K, Meyerowitz EM: Function and regulation of the Arabidopsis floral homeotic gene PISTILLATA. Genes Devel 8: 1548–1560 (1994). Google Scholar
Gustafson-Brown C, Savidge B, Yanofsky MF: Regulation of the Arabidopsis floral homeotic gene APETALA1. Cell 76: 131–143 (1994). Google Scholar
Hiei Y, Ohta S, Komari T, Kumashiro T: Efficient transformation of rice (Oryza sativa L.) mediated by Agrobacterium and sequence analysis of the boundaries of the T-DNA. Plant J 6: 271–282 (1994). Google Scholar
Hoekema A, Hirsch PR, Hooykaas PJJ, Schilperoort RA: A binary vector strategy based on separation of _vir_-and T-region of the Agrobacterium tumefaciens Ti-plasmid. Nature 303: 179–181 (1983). Google Scholar
Huijser PW, Klein J, Lonnig W-E, Meijer H, Saedler H, Sommer H: Bracteomania, an inflorescence anomaly, is caused by the loss of function of the MADS-box gene squamosa in Antirrhinum majus. EMBO J 11: 1239–1249 (1992). Google Scholar
Jack T, Fox GL, Meyerowitz: Arabidopsis homeotic gene APETALA3 ectopic expression: transcriptional and posttranscriptional regulation determine floral organ identity. Cell 76: 703–716 (1994). Google Scholar
Jack T, Brochman LL, Meyerowitz EM: The homeotic gene APETALA3 of Arabidopsis thaliana encodes a MADS box and is expressed in petals and stamens. Cell 68: 683–697 (1992). Google Scholar
Kang HG, Jang S, Chung JE, Cho YG, An G: Characterization of two rice MADS box genes that control flowering time. Mol Cell 7: 559–566 (1997). Google Scholar
Kang HG, An G: Isolation and characterization of a rice MADS box gene belonging to the AGL2 gene family. Mol Cell 7: 45–51 (1997). Google Scholar
Kang HG, Noh YS, Chung YY, Costa MA, An K, and An G: Phenotypic alterations of petal and sepal by ectopic expression of a rice MADS box gene in tobacco. Plant Mol Biol 29: 1–10 (1995). Google Scholar
Kater MM, Colombo L, Franken J, Busscher M, Masiero S, van Lookeren Campagne MM, Angenent GC: Multiple AGAMOUS homologs from cucumber and petunia differ in their ability to induce reproductive organ fate. Plant Cell 10: 171–182 (1998). Google Scholar
Kempin SA, Mandel MA, Yanofsky MF: Conversion of perianth into reproductive organs by ectopic expression of the tobacco floral homeotic gene NAG1. Plant Physiol 103: 1041–1046 (1993). Google Scholar
Krizek BA, Meyerowitz EM: the Arabidopsis homeotic genes APETALA3 and PISTILLATA are sufficient to provide the B class organ identity function. Development 122: 11–22 (1996). Google Scholar
Mandel MA, Bowman JL, Kempin SA, Ma H, Meyerowitz EM, Yanofsky MF: Manipulation of floral structure in transgenic tobacco. Cell 71: 133–143 (1992). Google Scholar
Mandel MA, Gustafson-Brown C, Savidge B, Yanofsky MF: Molecular characterization of the Arabidopsis floral homeotic gene APETALA1. Nature 360: 273–277 (1992). Google Scholar
Mena M, Ambrose BA, Meeley RB, Briggs SP, Yanofsky MF, Schmidt RJ: Diversification of C-function activity in maize flower development. Science 274: 1537–1540 (1996). Google Scholar
Mena M, Mandel MA, Lerner DR, Yanofsky MF, Schmidt RJ: A characterization of the MADS-box gene family in maize. Plant J 8: 845–854 (1995). Google Scholar
Mizukami Y, Ma H: Separation of AG function in floral meristem determinacy from that in reproductive organ identity by expressing antisense AG RNA. Plant Mol Biol 28: 767–784 (1995). Google Scholar
Mizukami Y, Ma H: Ectopic expression of the floral homeotic gene AGAMOUS in transgenic Arabidopsis plants alters floral organ identity. Cell 71: 119–131 (1992). Google Scholar
Pnueli L, Hareven D, Broday L, Lifschitz E: The TM5 MADS box gene mediates organ differentiation in three inner whorls of tomato flowers. Plant Cell 6: 175–186 (1994). Google Scholar
Pnueli L, Hareven D, Rounsley SD, Yanofsky MF, Lifschitz E: Isolation of the tomato AGAMOUS gene TAG1 and analysis of its homeotic role in transgenic plants. Plant Cell 6: 163–173 (1994). Google Scholar
Samach A, Kohalmi SE, Motte P, Datla R, Haughn GW: Divergence of function and regulation of class B floral organ identity genes. Plant Cell 9: 559–570 (1997). Google Scholar
Sambrook J, Fritsch EF, Maniatis T: Molecular Cloning: A Laboratory Manual, 2nd ed. Cold Spring Harbor Laboratory Press, Cold Spring Harbor, NY (1989). Google Scholar
Schmidt RJ, Velt B, Mandel MA, Mena M, Hake S, Yanofsky MF: Identification and molecular characterization of ZAG1, the maize homologue of the Arabidopsis floral homeotic gene AGAMOUS. Plant Cell 5: 729–737 (1993). Google Scholar
Sommer H, Beltran J-P, Huijser P, Pape H, Lonnig W-E, Saedler H, Schwarz-Sommer Z: Deficiens, a homeotic gene involved in the control of flower morphogenesis in Antirrhinum majus: the protein shows homology to transcription factors. EMBO J 9: 605–613 (1990). Google Scholar
Trobner W, Ramirez L, Motte P, Hue I, Huijser P, Lonnig WE, Saedler H, Sommer H, Schwarz-Sommer Z: GLOBOSA: a homeotic gene which interacts with DEFICIENS in the control of Antirrhinum floral organogenesis. EMBO J 11: 4693–4704 (1992). Google Scholar
Tsuchimoto S, van der Krol AR, Chua N-H: Ectopic expression of pMADS3 in transgenic petunia phenocopies the petunia blind mutant. Plant Cell 5: 843–853 (1993). Google Scholar
van der Krol AR, Brunelle A, Tsuchimoto S, Chua NH: Functional analysis of petunia floral homeotic MADS box gene pMADS1. Genes Develop 7: 1214–1228 (1993). Google Scholar
Weigel D, Meyerowitz EM: The ABCs of floral homeotic genes. Cell 78: 203–209 (1994). Google Scholar
Yanofsky MF, Ma H, Bowman JL, Drews GN, Feldmann KA, Meyerowitz EM: The protein encoded by the Arabidopsis homeotic gene agamous resembles transcription factors. Nature 346: 35–39 (1990). Google Scholar
Yoshida S: Fundamentals of Rice Crop Science, pp. 55–56. IRRI, Manila, Philippines (1981). Google Scholar