Gene replacement of fructose-1,6-bisphosphate aldolase supports the hypothesis of a single photosynthetic ancestor of chromalveolates

被引:113
作者
Patron, NJ [1 ]
Rogers, MB [1 ]
Keeling, PJ [1 ]
机构
[1] Univ British Columbia, Dept Bot, Canadian Inst Adv Res, Vancouver, BC V6T 1Z4, Canada
关键词
D O I
10.1128/EC.3.5.1169-1175.2004
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Plastids (photosynthetic organelles of plants and algae) are known to have spread between eukaryotic lineages by secondary endosymbiosis, that is, by the uptake of a eukaryotic alga by another eukaryote. But the number of times this has taken place is controversial. This is particularly so in the case of eukaryotes with plastids derived from red algae, which are numerous and diverse. Despite their diversity, it has been suggested that all these eukaryotes share a recent common ancestor and that their plastids originated in a single endosymbiosis, the so-called "chromalveolate hypothesis." Here we describe a novel molecular character that supports the chromalveolate hypothesis. Fructose-1,6-bisphosphate aldolase (FBA) is a glycolytic and Calvin cycle enzyme that exists as two nonhomologous types, class I and class II. Red algal plastid-targeted FBA is a class I enzyme related to homologues from plants and green algae, and it would be predicted that the plastid-targeted FBA from algae with red algal secondary endosymbionts should be related to this class I enzyme. However, we show that plastid-targeted FBA of heterokonts, cryptomonads, haptophytes, and dinoflagellates (all photosynthetic chromalveolates) are class II plastid-targeted enzymes, completely unlike those of red algal plastids. The chromalveolate enzymes form a strongly supported group in FBA phylogeny, and their common possession of this unexpected plastid characteristic provides new evidence for their close relationship and a common origin for their plastids.
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页码:1169 / 1175
页数:7
相关论文
共 33 条
[1]   Recycled plastids: a 'green movement' in eukaryotic evolution [J].
Archibald, JM ;
Keeling, PJ .
TRENDS IN GENETICS, 2002, 18 (11) :577-584
[2]   Improved prediction of signal peptides: SignalP 3.0 [J].
Bendtsen, JD ;
Nielsen, H ;
von Heijne, G ;
Brunak, S .
JOURNAL OF MOLECULAR BIOLOGY, 2004, 340 (04) :783-795
[3]   Weighted neighbor joining: A likelihood-based approach to distance-based phylogeny reconstruction [J].
Bruno, WJ ;
Socci, ND ;
Halpern, AL .
MOLECULAR BIOLOGY AND EVOLUTION, 2000, 17 (01) :189-197
[4]   A revised six-kingdom system of life [J].
Cavalier-Smith, T .
BIOLOGICAL REVIEWS, 1998, 73 (03) :203-266
[5]   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
[6]   Phylogenetic analyses of the rbcL sequences from haptophytes and heterokont algae suggest their chloroplasts are unrelated [J].
Daugbjerg, N ;
Andersen, RA .
MOLECULAR BIOLOGY AND EVOLUTION, 1997, 14 (12) :1242-1251
[7]   Tracing the thread of plastid diversity through the tapestry of life [J].
Delwiche, CF .
AMERICAN NATURALIST, 1999, 154 :S164-S177
[8]   The phylogeny of glyceraldehyde-3-phosphate dehydrogenase indicates lateral gene transfer from cryptomonads to dinoflagellates [J].
Fagan, T ;
Hastings, JW ;
Morse, D .
JOURNAL OF MOLECULAR EVOLUTION, 1998, 47 (06) :633-639
[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]  
Felsenstein J., 1993, PHYLIP PHYLOGENY INF