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Journal Abstract Search


239 related items for PubMed ID: 21385783

  • 21. Deep into the Aristolochia Flower: Expression of C, D, and E-Class Genes in Aristolochia fimbriata (Aristolochiaceae).
    Suárez-Baron H, Pérez-Mesa P, Ambrose BA, González F, Pabón-Mora N.
    J Exp Zool B Mol Dev Evol; 2017 Jan; 328(1-2):55-71. PubMed ID: 27507740
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  • 22. Conservation and divergence in the AGAMOUS subfamily of MADS-box genes: evidence of independent sub- and neofunctionalization events.
    Zahn LM, Leebens-Mack JH, Arrington JM, Hu Y, Landherr LL, dePamphilis CW, Becker A, Theissen G, Ma H.
    Evol Dev; 2006 Jan; 8(1):30-45. PubMed ID: 16409381
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  • 23. Expression of floral MADS-box genes in basal angiosperms: implications for the evolution of floral regulators.
    Kim S, Koh J, Yoo MJ, Kong H, Hu Y, Ma H, Soltis PS, Soltis DE.
    Plant J; 2005 Sep; 43(5):724-44. PubMed ID: 16115069
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  • 24. Spatiotemporal expression of duplicate AGAMOUS orthologues during floral development in Phalaenopsis.
    Song IJ, Nakamura T, Fukuda T, Yokoyama J, Ito T, Ichikawa H, Horikawa Y, Kameya T, Kanno A.
    Dev Genes Evol; 2006 Jun; 216(6):301-13. PubMed ID: 16463041
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  • 25. The AGL6-like gene OsMADS6 regulates floral organ and meristem identities in rice.
    Li H, Liang W, Jia R, Yin C, Zong J, Kong H, Zhang D.
    Cell Res; 2010 Mar; 20(3):299-313. PubMed ID: 20038961
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  • 26. C/D class MADS box genes from two monocots, orchid (Oncidium Gower Ramsey) and lily (Lilium longiflorum), exhibit different effects on floral transition and formation in Arabidopsis thaliana.
    Hsu HF, Hsieh WP, Chen MK, Chang YY, Yang CH.
    Plant Cell Physiol; 2010 Jun; 51(6):1029-45. PubMed ID: 20395287
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  • 27. Functional diversification of the two C-class MADS box genes OSMADS3 and OSMADS58 in Oryza sativa.
    Yamaguchi T, Lee DY, Miyao A, Hirochika H, An G, Hirano HY.
    Plant Cell; 2006 Jan; 18(1):15-28. PubMed ID: 16326928
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  • 33. TOMATO AGAMOUS1 and ARLEQUIN/TOMATO AGAMOUS-LIKE1 MADS-box genes have redundant and divergent functions required for tomato reproductive development.
    Gimenez E, Castañeda L, Pineda B, Pan IL, Moreno V, Angosto T, Lozano R.
    Plant Mol Biol; 2016 Jul; 91(4-5):513-31. PubMed ID: 27125648
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  • 34. 'Living stones' reveal alternative petal identity programs within the core eudicots.
    Brockington SF, Rudall PJ, Frohlich MW, Oppenheimer DG, Soltis PS, Soltis DE.
    Plant J; 2012 Jan; 69(2):193-203. PubMed ID: 21951031
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  • 35. Flower development of Phalaenopsis orchid involves functionally divergent SEPALLATA-like genes.
    Pan ZJ, Chen YY, Du JS, Chen YY, Chung MC, Tsai WC, Wang CN, Chen HH.
    New Phytol; 2014 May; 202(3):1024-1042. PubMed ID: 24571782
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  • 37. Duplicated C-class MADS-box genes reveal distinct roles in gynostemium development in Cymbidium ensifolium (Orchidaceae).
    Wang SY, Lee PF, Lee YI, Hsiao YY, Chen YY, Pan ZJ, Liu ZJ, Tsai WC.
    Plant Cell Physiol; 2011 Mar; 52(3):563-77. PubMed ID: 21278368
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  • 39. Flower development in Coffea arabica L.: new insights into MADS-box genes.
    de Oliveira RR, Cesarino I, Mazzafera P, Dornelas MC.
    Plant Reprod; 2014 Jun; 27(2):79-94. PubMed ID: 24715004
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