International Journal of Molecular Sciences · 2016 · 50 citations · 49 references
Autopolyploidy is widespread in higher plants and plays an important role in the process of evolution. The present study successfully induced autotetraploidys from <i>Chrysanthemum lavandulifolium</i> by colchicine. The plant morphology, genomic, transcriptomic, and epigenetic changes between tetraploid and diploid plants were investigated. Ligulate flower, tubular flower and leaves of tetraploid plants were greater than those of the diploid plants. Compared with diploid plants, the genome changed as a consequence of polyploidization in tetraploid plants, namely, 1.1% lost fragments and 1.6% novel fragments occurred. In addition, DNA methylation increased after genome doubling in tetraploid plants. Among 485 common transcript-derived fragments (TDFs), which existed in tetraploid and diploid progenitors, 62 fragments were detected as differentially expressed TDFs, 6.8% of TDFs exhibited up-regulated gene expression in the tetraploid plants and 6.0% exhibited down-regulation. The present study provides a reference for further studying the autopolyploidization role in the evolution of <i>C. lavandulifolium.</i> In conclusion, the autopolyploid <i>C. lavandulifolium</i> showed a global change in morphology, genome and gene expression compared with corresponding diploid.
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AFLP: a new technique for DNA fingerprinting
Pieter Vos, René C. J. Hogers, Marjo Bleeker et al. · Nucleic Acids Research · 1995 · 12.4K citations · Full text
Genome evolution in polyploids
Jonathan F. Wendel · Plant Molecular Biology · 2000 · 1.6K citations
Neopolyploidy in Flowering Plants
Justin Ramsey, Douglas W. Schemske · Annual Review of Ecology and Systematics · 2002 · 1K citations
Spermatogenesis, Fertility, Botany +22