The Evolution of the SEPALLATA Subfamily of MADS-Box GenesSequence data from this article have been deposited with the EMBL/GenBank Data Libraries under accession nos. AY850178, AY850179, AY850180, AY850181, AY850182, AY850183, AY850184, AY850185, AY850186.

Author:

Zahn Laura M1,Kong Hongzhi12,Leebens-Mack James H1,Kim Sangtae3,Soltis Pamela S4,Landherr Lena L1,Soltis Douglas E3,dePamphilis Claude W1,Ma Hong1

Affiliation:

1. Department of Biology, Huck Institutes of the Life Sciences and Institute for Molecular Genetics and Evolution, The Pennsylvania State University, University Park, Pennsylvania 16802

2. Laboratory of Systematic and Evolutionary Botany, Institute of Botany, The Chinese Academy of Sciences, Xiangshan, Beijing 100093, People's Republic of China

3. Department of Botany and Genetics Institute, University of Florida, Gainesville, Florida 32611

4. Florida Museum of Natural History and Genetics Institute, University of Florida, Gainesville, Florida 32611

Abstract

Abstract Members of the SEPALLATA (SEP) MADS-box subfamily are required for specifying the “floral state” by contributing to floral organ and meristem identity. SEP genes have not been detected in gymnosperms and seem to have originated since the lineage leading to extant angiosperms diverged from extant gymnosperms. Therefore, both functional and evolutionary studies suggest that SEP genes may have been critical for the origin of the flower. To gain insights into the evolution of SEP genes, we isolated nine genes from plants that occupy phylogenetically important positions. Phylogenetic analyses of SEP sequences show that several gene duplications occurred during the evolution of this subfamily, providing potential opportunities for functional divergence. The first duplication occurred prior to the origin of the extant angiosperms, resulting in the AGL2/3/4 and AGL9 clades. Subsequent duplications occurred within these clades in the eudicots and monocots. The timing of the first SEP duplication approximately coincides with duplications in the DEFICIENS/GLOBOSA and AGAMOUS MADS-box subfamilies, which may have resulted from either a proposed genome-wide duplication in the ancestor of extant angiosperms or multiple independent duplication events. Regardless of the mechanism of gene duplication, these pairs of duplicate transcription factors provided new possibilities of genetic interactions that may have been important in the origin of the flower.

Publisher

Oxford University Press (OUP)

Subject

Genetics

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