A single origin of the peridinin- and fucoxanthin-containing plastids in dinoflagellates through tertiary endosymbiosis

被引:358
作者
Yoon, HS
Hackett, JD
Bhattacharya, D [1 ]
机构
[1] Univ Iowa, Dept Biol Sci, Iowa City, IA 52242 USA
[2] Univ Iowa, Ctr Comparat Genom, Iowa City, IA 52242 USA
关键词
D O I
10.1073/pnas.172234799
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
The most widely distributed dinoflagellate plastid contains chlorophyll c(2) and peridinin as the major carotenoid. A second plastid type, found in taxa such as Karlodinium micrum and Karenia spp., contains chlorophylls c(1) + c(2) and 19'-hexanoyloxy-fucoxanthin and/or 19'-butanoyloxy-fucoxanthin but lacks peridinin. Because the presence of chlorophylls c(1) + c(2) and fucoxanthin is typical of haptophyte algae, the second plastid type is believed to have originated from a haptophyte tertiary endosymbiosis in an ancestral peridinin-containing clinoflagellate. This hypothesis has, however, never been thoroughly tested in plastid trees that contain genes from both peridinin- and fucoxanthin-containing dinoflagellates. To address this issue, we sequenced the plastid-encoded psaA (photosystem I P700 chlorophyll a apoprotein Al), psbA (photosystem 11 reaction center protein D1), and "Form I" rbcL (ribulose-1,5-bisphosphate carboxylase/oxygenase) genes from various red and clinoflagellate algae. The combined psaA + psbA tree shows significant support for the monophyly of peridinin- and fucoxanthin-containing dinoflagellates as sister to the haptophytes. The monophyly with haptophytes is robustly recovered in the psbA phylogeny in which we increased the sampling of dinoflagellates to 14 species. As expected from previous analyses, the fucoxanthin-containing dinoflagellates formed a well-supported sister group with haptophytes in the rbcL tree. Based on these analyses, we postulate that the plastid of peridinin- and fucoxanthin-containing dinoflagellates originated from a haptophyte tertiary endosymbiosis that occurred before the split of these lineages. Our findings imply that the presence of chlorophylls c(1) + c(2) and fucoxanthin,and the Form I rbcL gene are in fact the primitive (not derived, as widely believed) condition in dinoflagellates.
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页码:11724 / 11729
页数:6
相关论文
共 44 条
[1]   Minicircular plastid DNA in the dinoflagellate Amphidinium operculatum [J].
Barbrook, AC ;
Howe, CJ .
MOLECULAR AND GENERAL GENETICS, 2000, 263 (01) :152-158
[2]   Membrane heredity and early chloroplast evolution [J].
Cavalier-Smith, T .
TRENDS IN PLANT SCIENCE, 2000, 5 (04) :174-182
[3]   Ribosomal RNA analysis indicates a benthic pennate diatom ancestry for the endosymbionts of the dinoflagellates Peridinium foliaceum and Peridinium balticum (Pyrrhophyta) [J].
Chesnick, JM ;
Kooistra, WHCF ;
Wellbrock, U ;
Medlin, LK .
JOURNAL OF EUKARYOTIC MICROBIOLOGY, 1997, 44 (04) :314-320
[4]   Identity of the endosymbiont of Peridinium foliaceum (Pyrrophyta): Analysis of the rbcLS operon [J].
Chesnick, JM ;
Morden, CW ;
Schmieg, AM .
JOURNAL OF PHYCOLOGY, 1996, 32 (05) :850-857
[5]   Phylogeny of some of the major genera of dinoflagellates based on ultrastructure and partial LSU rDNA sequence data, including the erection of three new genera of unarmoured dinoflagellates [J].
Daugbjerg, N ;
Hansen, G ;
Larsen, J ;
Moestrup, O .
PHYCOLOGIA, 2000, 39 (04) :302-317
[6]   Rampant horizontal transfer and duplication of rubisco genes in eubacteria and plastids [J].
Delwiche, CF ;
Palmer, JD .
MOLECULAR BIOLOGY AND EVOLUTION, 1996, 13 (06) :873-882
[7]  
DODGE JD, 1989, CHROMOPHYTE ALGAE PR, V38, P207
[8]   A phylogenetic assessment of the eukaryotic light-harvesting antenna proteins, with implications for plastid evolution [J].
Durnford, DG ;
Deane, JA ;
Tan, S ;
McFadden, GI ;
Gantt, E ;
Green, BR .
JOURNAL OF MOLECULAR EVOLUTION, 1999, 48 (01) :59-68
[9]   Nuclear-encoded, plastid-targeted genes suggest a single common origin for apicomplexan and dinoflagellate plastids [J].
Fast, NM ;
Kissinger, JC ;
Roos, DS ;
Keeling, PJ .
MOLECULAR BIOLOGY AND EVOLUTION, 2001, 18 (03) :418-426
[10]   CASES IN WHICH PARSIMONY OR COMPATIBILITY METHODS WILL BE POSITIVELY MISLEADING [J].
FELSENSTEIN, J .
SYSTEMATIC ZOOLOGY, 1978, 27 (04) :401-410