Author:
Kang Jong-Soo,Giang Vo Ngoc Linh,Park Hyun-Seung,Park Young Sang,Cho Woohyeon,Nguyen Van Binh,Shim Hyeonah,Waminal Nomar Espinosa,Park Jee Young,Kim Hyun Hee,Yang Tae-Jin
Abstract
AbstractThe Araliaceae contain many valuable species in medicinal and industrial aspects. We performed intensive phylogenomics using the plastid genome (plastome) and 45S nuclear ribosomal DNA sequences. A total of 66 plastome sequences were used, 13 of which were newly assembled in this study, 12 from new sequences, and one from existing data. While Araliaceae plastomes showed conserved genome structure, phylogenetic reconstructions based on four different plastome datasets revealed phylogenetic discordance within the Asian Palmate group. The divergence time estimation revealed that splits in two Araliaceae subfamilies and the clades exhibiting phylogenetic discordances in the Asian Palmate group occurred at two climatic optima, suggesting that global warming events triggered species divergence, particularly the rapid diversification of the Asian Palmate group during the Middle Miocene. Nucleotide substitution analyses indicated that the Hydrocotyloideae plastomes have undergone accelerated AT-biased mutations (C-to-T transitions) compared with the Aralioideae plastomes, and the acceleration may occur in their mitochondrial and nuclear genomes as well. This implies that members of the genus Hydrocotyle, the only aquatic plants in the Araliaceae, have experienced a distinct evolutionary history from the other species. We also discussed the intercontinental disjunction in the genus Panax and proposed a hypothesis to complement the previously proposed hypothesis. Our results provide the evolutionary trajectory of Araliaceae and advance our current understanding of the evolution of Araliaceae species.
Funder
National Research Foundation of Korea
Rural Development Administration
Publisher
Springer Science and Business Media LLC
Reference95 articles.
1. Wen, J., Plunkett, G. M., Mitchell, A. D. & Wagstaff, S. J. The evolution of Araliaceae: A phylogenetic analysis based on ITS sequences of nuclear ribosomal DNA. Syst. Bot. 26, 144–167 (2001).
2. Plunkett, G. M., Wen, J. & Lowry, P. P. II. Infrafamilial classifications and characters in Araliaceae: Insights from the phylogenetic analysis of nuclear (ITS) and plastid (trnL-trnF) sequence data. Plant Syst. Evol. 245, 1–39 (2004).
3. Nuraliev, M. S., Oskolski, A. A., Sokoloff, D. D. & Remizowa, M. V. Flowers of Araliaceae: Structural diversity, developmental and evolutionary aspects. Plant Div. Evol. 128, 247 (2010).
4. Mitchell, A., Li, R., Brown, J. W., Schönberger, I. & Wen, J. Ancient divergence and biogeography of Raukaua (Araliaceae) and close relatives in the southern hemisphere. Aust. Syst. Bot. 25, 432–446 (2012).
5. Liu, Z. et al. Applying DNA barcodes for identification of plant species in the family Araliaceae. Gene 499, 76–80 (2012).
Cited by
1 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献