JIA Shangang, WANG Xumin, QIAN Hao, LI Tianyong, SUN Jing, WANG Liang, YU Jun, LI Xingang, YIN Jinlong, LIU Tao, WU Shuangxiu. Phylogenomic analysis of transcriptomic sequences of mitochondria and chloroplasts for marine red algae (Rhodophyta) in China[J]. Acta Oceanologica Sinica, 2014, 33(2): 86-93. doi: 10.1007/s13131-014-0444-3
Citation: JIA Shangang, WANG Xumin, QIAN Hao, LI Tianyong, SUN Jing, WANG Liang, YU Jun, LI Xingang, YIN Jinlong, LIU Tao, WU Shuangxiu. Phylogenomic analysis of transcriptomic sequences of mitochondria and chloroplasts for marine red algae (Rhodophyta) in China[J]. Acta Oceanologica Sinica, 2014, 33(2): 86-93. doi: 10.1007/s13131-014-0444-3

Phylogenomic analysis of transcriptomic sequences of mitochondria and chloroplasts for marine red algae (Rhodophyta) in China

doi: 10.1007/s13131-014-0444-3
  • Received Date: 2013-03-22
  • The chloroplast and mitochondrion of red algae (Phylum Rhodophyta) may have originated from different endosymbiosis. In this study, we carried out phylogenomic analysis to distinguish their evolutionary lineages by using red algal RNA-seq datasets of the 1 000 Plants (1KP) Project and publicly available complete genomes of mitochondria and chloroplasts of Rhodophyta. We have found that red algae were divided into three clades of orders, Florideophyceae, Bangiophyceae and Cyanidiophyceae. Taxonomy resolution for Class Florideophyceae showed that Order Gigartinales was close to Order Halymeniales, while Order Gracilariales was in a clade of Order Ceramials. We confirmed Prionitis divaricata (Family Halymeniaceae) was closely related to the clade of Order Gracilariales, rather than to genus Grateloupia of Order Halymeniales as reported before. Furthermore, we found both mitochondrial and chloroplastic genes in Rhodophyta under negative selection (Ka/Ks < 1), suggesting that red algae, as one primitive group of eukaryotic algae, might share joint evolutionary history with these two organelles for a long time, although we identified some differences in their phylogenetic trees. Our analysis provided the basic phylogenetic relationships of red algae, and demonstrated their potential ability to study endosymbiotic events.
  • loading
  • Burger G, Nedelcu A M. 2012. Mitochondrial genomes of algae. Berlin: Springer Science & Business Media B V, 127-157
    Burki F, Flegontov P, Oborník M, et al. 2012. Re-evaluating the green versus red signal in eukaryotes with secondary plastid of red algal origin. Genome Biol Evol, 4(6): 738-747
    Cavalier-Smith T. 1998. A revised six-kingdom system of life. Biol Rev, 73(3): 203-266
    Cavalier-Smith T, Chao E E Y. 2006. Phylogeny and megasystematics of phagotrophic heterokonts (kingdom Chromista). J Mol Evol, 62(4): 388-420
    Cho G Y, Lee S H, Boo S M. 2004. A new brown algal order, Ishigeales (Phaeophyceae), established on the basis of plastid protein-coding rbcL, psaA, and psbA region comparisons. J Phycol, 40(5): 921-936
    Danne J C, Gornik S G, Waller R F. 2012. An assessment of vertical Inheritance versus endosymbiont transfer of nucleus-encoded genes for mitochondrial proteins following tertiary endosymbiosis in Karlodinium micrum. Protist, 163(1): 76-90
    Eisen J A. 1998. Phylogenomics: improving functional predictions for uncharacterized genes by evolutionary analysis. Genome Res, 8(3): 163-167
    Gray M W, Burger G, Lang B F. 2001. The origin and early evolution of mitochondria. Genome Biol, 2(6): 1018.1011-1018.1015
    Green B R. 2011. After the primary endosymbiosis: an update on the chromalveolate hypothesis and the origins of algae with Chl c. Photosynth Res, 107(1): 103-115
    Hallstrom B M, Janke A. 2009. Gnathostome phylogenomics utilizing lungfish EST sequences. Mol Biol Evol, 26(2): 463-471
    Jia Shangang, Wang Xumin, Liu Guiming, et al. 2011. Gene expression analysis of “green tide” alga Ulva prolifera (Chlorophyta) in China. Genes Genom, 33(2): 173-178
    Kawai H, Hanyuda T, Draisma S G A, et al. 2007. Molecular phylogeny of Discosporangium mesarthrocarpum (Phaeophyceae) with a reinstatement of the order Discosporangials. J Phycol, 43(1): 186-194
    Kuroiwa T. 1998. The primitive red algae Cyanidium caldarium and Cyanidioschyzon merolae as model system for investigating the dividing apparatus of mitochondria and plastids. Bioessays, 20(4): 344-354
    Martin W, Stoebe B, Goremykin V, et al. 1998. Gene transfer to the nucleus and the evolution of chloroplasts. Nature, 393(6681): 162-165
    McFadden G I. 2001. Primary and secondary endosymbiosis and the origin of plastids. J Phycol, 37(6): 951-959
    Moreira D, Le Guyader H, Philippe H. 2000. The origin of red algae and the evolution of chloroplasts. Nature, 405(6782): 69-72
    Müller K M, Oliveira M C, Sheath R G, et al. 2001. Ribosomal DNA phylogeny of the Bangiophycidae (Rhodophyta) and the origin of secondary plastids. Am J Bot, 88(8): 1390-1400
    Phillips N, Burrowes R, Rousseau F, et al. 2008. Resolving evolutionary relationships among the brown algae using chloroplast and nuclear genes. J Phycol, 44(2): 394-405
    Rodríguez-Ezpeleta N, Brinkmann H, Burey S C, et al. 2005. Monophyly of primary photosynthetic eukaryotes: green plants, red algae, and glaucophytes. Curr Biol, 15(14): 1325-1330
    Ronquist F, Huelsenbeck J P. 2003. MrBayes 3: Bayesian phylogenetic inference under mixed models. Bioinformatics, 19(12): 1572-1574
    Sheng Yingwen, Zhang Wen, Zhao Dan, et al. 2011. A morphological and molecular assessment of the genus Sinotubimorpha (Halymeniaceae, Rhodophyta). J Syst Evol, 50(2): 146-152
    Takahara M, Takahashi H, Matsunaga S, et al. 2000. Isolation, characterization, and chromosomal mapping of an ftsZ gene from the unicellular primitive red alga Cyanidium caldarium RK-1. Curr Genet, 37(2): 143-151
    Tamura K, Peterson D, Peterson N, et al. 2011. MEGA5: molecular evolutionary genetics analysis using maximum likelihood, evolutionary distance, and maximum parsimony methods. Mol Biol Evol, 28(10): 2731-2739
    Tan I H, Druehl L D. 1994. A molecular analysis of Analipus and Ralfsia (Phaeophyceae) suggests the order Ectocarpales is polyphyletic. J Phycol, 30(4): 721-729
    Wang Hongwei, Kawaguchi S, Horiguchi T, et al. 2001. A morphological and molecular assessment of the genus Prionitis J. Agardh (Halymeniaceae, Rhodophyta). Phycol Res, 49(3): 251-261
    Yoon H S, Hackett J D, Ciniglia C, et al. 2004. A molecular timeline for the origin of photosynthetic eukaryotes. Mol Biol Evol, 21(5): 809-818
    Yoon H S, Müller K M, Sheath R G, et al. 2006. Defining the major lineages of red algae (Rhodophyta). J Phycol, 42(2): 482-492
    Zhang Zhang, Li Jun, Zhao Xiaoqian, et al. 2006. KaKs_Calculator: calculating Ka and Ks through model selection and model averaging. Genomic Proteomic Bioinform, 4(4): 259-263
  • 加载中

Catalog

    通讯作者: 陈斌, bchen63@163.com
    • 1. 

      沈阳化工大学材料科学与工程学院 沈阳 110142

    1. 本站搜索
    2. 百度学术搜索
    3. 万方数据库搜索
    4. CNKI搜索

    Article Metrics

    Article views (1119) PDF downloads(1182) Cited by()
    Proportional views
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return