Cyanobacterial contribution to the genomes of the plastid-lacking protists

被引:28
作者
Maruyama, Shinichiro [1 ]
Matsuzaki, Motomichi [1 ]
Misawa, Kazuharu [1 ]
Nozaki, Hisayoshi [1 ]
机构
[1] Univ Tokyo, Grad Sch Sci, Dept Biol Sci, Bunkyo Ku, Tokyo 1130033, Japan
基金
日本学术振兴会;
关键词
PRIMARY PHOTOSYNTHETIC EUKARYOTES; GENE-TRANSFER; RED ALGAE; PUNCTATE DISTRIBUTION; EVOLUTION; ORIGIN; ENDOSYMBIOSIS; PHYLOGENY; DIVERGENCE; SEQUENCE;
D O I
10.1186/1471-2148-9-197
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Background: Eukaryotic genes with cyanobacterial ancestry in plastid-lacking protists have been regarded as important evolutionary markers implicating the presence of plastids in the early evolution of eukaryotes. Although recent genomic surveys demonstrated the presence of cyanobacterial and algal ancestry genes in the genomes of plastid-lacking protists, comparative analyses on the origin and distribution of those genes are still limited. Results: We identified 12 gene families with cyanobacterial ancestry in the genomes of a taxonomically wide range of plastid-lacking eukaryotes (Phytophthora [Chromalveolata], Naegleria [Excavata], Dictyostelium [Amoebozoa], Saccharomyces and Monosiga [Opisthokonta]) using a novel phylogenetic pipeline. The eukaryotic gene clades with cyanobacterial ancestry were mostly composed of genes from bikonts (Archaeplastida, Chromalveolata, Rhizaria and Excavata). We failed to find genes with cyanobacterial ancestry in Saccharomyces and Dictyostelium, except for a photorespiratory enzyme conserved among fungi. Meanwhile, we found several Monosiga genes with cyanobacterial ancestry, which were unrelated to other Opisthokonta genes. Conclusion: Our data demonstrate that a considerable number of genes with cyanobacterial ancestry have contributed to the genome composition of the plastid-lacking protists, especially bikonts. The origins of those genes might be due to lateral gene transfer events, or an ancient primary or secondary endosymbiosis before the diversification of bikonts. Our data also show that all genes identified in this study constitute multi-gene families with punctate distribution among eukaryotes, suggesting that the transferred genes could have survived through rounds of gene family expansion and differential reduction.
引用
收藏
页数:15
相关论文
共 69 条
[1]   The new higher level classification of eukaryotes with emphasis on the taxonomy of protists [J].
Adl, SM ;
Simpson, AGB ;
Farmer, MA ;
Andersen, RA ;
Anderson, OR ;
Barta, JR ;
Bowser, SS ;
Brugerolle, G ;
Fensome, RA ;
Fredericq, S ;
James, TY ;
Karpov, S ;
Kugrens, P ;
Krug, J ;
Lane, CE ;
Lewis, LA ;
Lodge, J ;
Lynn, DH ;
Mann, DG ;
McCourt, RM ;
Mendoza, L ;
Moestrup, O ;
Mozley-Standridge, SE ;
Nerad, TA ;
Shearer, CA ;
Smirnov, AV ;
Spiegel, FW ;
Taylor, MFJR .
JOURNAL OF EUKARYOTIC MICROBIOLOGY, 2005, 52 (05) :399-451
[2]   A cyanobacterial gene in nonphotosynthetic protists - An early chloroplast acquisition in eukaryotes? [J].
Andersson, JO ;
Roger, AJ .
CURRENT BIOLOGY, 2002, 12 (02) :115-119
[3]  
[Anonymous], The NCBI taxonomy database
[4]   Lateral gene transfer and the evolution of plastid-targeted proteins in the secondary plastid-containing alga Bigelowiella natans [J].
Archibald, JM ;
Rogers, MB ;
Toop, M ;
Ishida, K ;
Keeling, PJ .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2003, 100 (13) :7678-7683
[5]   The deep roots of eukaryotes [J].
Baldauf, SL .
SCIENCE, 2003, 300 (5626) :1703-1706
[6]   Photosynthetic eukaryotes unite: endosymbiosis connects the dots [J].
Bhattacharya, D ;
Yoon, HS ;
Hackett, JD .
BIOESSAYS, 2004, 26 (01) :50-60
[7]   D-GLYCERATE 3-KINASE, the last unknown enzyme in the photorespiratory cycle in Arabidopsis, belongs to a novel kinase family [J].
Boldt, R ;
Edner, C ;
Kolukisaoglu, Ü ;
Hagemann, M ;
Weckwerth, W ;
Wienkoop, S ;
Morgenthal, K ;
Bauwe, H .
PLANT CELL, 2005, 17 (08) :2413-2420
[8]   Phylogenomics reveals a new 'megagroup' including most photosynthetic eukaryotes [J].
Burki, Fabien ;
Shalchian-Tabrizi, Kamran ;
Pawlowski, Jan .
BIOLOGY LETTERS, 2008, 4 (04) :366-369
[9]   Principles of protein and lipid targeting in secondary symbiogenesis: Euglenoid, dinoflagellate, and sporozoan plastid origins and the eukaryote family tree [J].
Cavalier-Smith, T .
JOURNAL OF EUKARYOTIC MICROBIOLOGY, 1999, 46 (04) :347-366
[10]   Identification and functional analysis of a prokaryotic-type aspartate aminotransferase:: implications for plant amino acid metabolism [J].
de la Torre, F ;
De Santis, L ;
Suárez, MF ;
Crespillo, R ;
Cánovas, FM .
PLANT JOURNAL, 2006, 46 (03) :414-425