Algal Genes in the Closest Relatives of Animals

被引:35
作者
Sun, Guiling [1 ]
Yang, Zefeng [1 ]
Ishwar, Arjun [1 ]
Huang, Jinling [1 ]
机构
[1] E Carolina Univ, Dept Biol, Greenville, NC 27858 USA
基金
美国国家科学基金会;
关键词
gene transfer; Monosiga; photosynthetic eukaryotes; endosymbioses; eukaryotic phylogeny; MULTIPLE SEQUENCE ALIGNMENT; RED ALGAE; PHOTOSYNTHETIC EUKARYOTES; PLASTID EVOLUTION; PHYLOGENETIC RECONSTRUCTION; UNICELLULAR RELATIVES; PRIMARY ENDOSYMBIOSIS; MAXIMUM-LIKELIHOOD; ELYSIA-CHLOROTICA; SEA SLUG;
D O I
10.1093/molbev/msq175
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The spread of photosynthesis is one of the most important but controversial topics in eukaryotic evolution. Because of massive gene transfer from plastids to the nucleus and because of the possibility that plastids have been lost in evolution, algal genes in aplastidic organisms often are interpreted as footprints of photosynthetic ancestors. These putative plastid losses, in turn, have been cited as support for scenarios involving the spread of plastids in broadscale eukaryotic evolution. Phylogenomic analyses identified more than 100 genes of possible algal origin in Monosiga, a unicellular species from choanoflagellates, a group considered to be the closest protozoan relatives of animals and to be primitively heterotrophic. The vast majority of these algal genes appear to be derived from haptophytes, diatoms, or green plants. Furthermore, more than 25% of these algal genes are ultimately of prokaryotic origin and were spread secondarily to Monosiga. Our results show that the presence of algal genes may be expected in many phagotrophs or taxa of phagotrophic ancestry and therefore does not necessarily represent evidence of plastid losses. The ultimate prokaryotic origin of some algal genes and their simultaneous presence in both primary and secondary photosynthetic eukaryotes either suggest recurrent gene transfer events under specific environments or support a more ancient origin of primary plastids.
引用
收藏
页码:2879 / 2889
页数:11
相关论文
共 74 条
[11]   Tracing the thread of plastid diversity through the tapestry of life [J].
Delwiche, CF .
AMERICAN NATURALIST, 1999, 154 :S164-S177
[12]  
Doolittle WE, 1998, TRENDS GENET, V14, P307
[13]   MUSCLE: multiple sequence alignment with high accuracy and high throughput [J].
Edgar, RC .
NUCLEIC ACIDS RESEARCH, 2004, 32 (05) :1792-1797
[14]   Sizing up the genomic footprint of endosymbiosis [J].
Elias, Marek ;
Archibald, John M. .
BIOESSAYS, 2009, 31 (12) :1273-1279
[15]   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
[16]  
Felsenstein J., 2004, Phylip (phylogeny inference package) version 3.6
[17]   PhyloGenie: automated phylome generation and analysis [J].
Frickey, T ;
Lupas, AN .
NUCLEIC ACIDS RESEARCH, 2004, 32 (17) :5231-5238
[18]   Horizontal gene transfer of glycosyl hydrolases of the rumen fungi [J].
Garcia-Vallvé, S ;
Romeu, A ;
Palau, J .
MOLECULAR BIOLOGY AND EVOLUTION, 2000, 17 (03) :352-361
[19]   Much ado about bacteria-to-vertebrate lateral gene transfer [J].
Genereux, DP ;
Logsdon, JM .
TRENDS IN GENETICS, 2003, 19 (04) :191-195
[20]   Horizontal gene transfer, genome innovation and evolution [J].
Gogarten, JP ;
Townsend, JP .
NATURE REVIEWS MICROBIOLOGY, 2005, 3 (09) :679-687