How oxymonads lost their groove:: An ultrastructural comparison of Monocercomonoides and excavate taxa

被引:28
作者
Simpson, AGB [1 ]
Radek, R
Dacks, JB
O'Kelly, CJ
机构
[1] Dalhousie Univ, Dept Biochem & Mol Biol, Program Evolutionary Biol, Canadian Inst Adv Res, Halifax, NS B3H 4H7, Canada
[2] Free Univ Berlin, Inst Zool, Dept Protozool, D-14195 Berlin, Germany
[3] Bigelow Lab Ocean Sci, Boothbay Harbor, ME 04575 USA
关键词
archezoa; cytoskeleton; eukaryote evolution; flagellates; Giardia; jakobids; metamonads; protozoa; Reclinomonas; Trimastix;
D O I
10.1111/j.1550-7408.2002.tb00529.x
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Despite being amongst the more familiar groups of heterotrophic flagellates. the evolutionary affinities of oxymonads remain poorly understood. A re-interpretation of the cytoskeleton of the oxymonad Monocercomonoides hausmanni suggests that this organism has a similar ultrastructural organisation to members of the informal assemblage 'excavate taxa'. The preaxostyle, 'R1' root, and 'R2' root of M. hausmanni are proposed to be homologous to the right. left, and anterior roots respectively of excavate taxa. The 'paracrystalline' portion of the preaxostyle. previously treated as unique to oxymonads, is proposed to be homologous to the I fibre of excavate taxa. Other non-microtubular fibres are identified that have both positional and substructural similarity to the distinctive B and C fibres of excavate taxa. A homologue to the 'singlet root', otherwise distinctive for excavate taxa, is also proposed. The preaxostyle and C fibre homologue in Monocercomonoides are most similar to the homologous structures in Trimastix, suggesting a particularly close relationship. This supports and extends recent molecular phylogenetic findings that Trimastix and oxymonads form a clade. We conclude that oxymonads have an excavate ancestry, and that the 'excavate taxa' sensu stricto form a paraphyletic assemblage.
引用
收藏
页码:239 / 248
页数:10
相关论文
共 51 条
[11]   FLAGELLAR AND CYTOSKELETAL SYSTEMS IN AMITOCHONDRIAL FLAGELLATES - ARCHAMOEBA, METAMONADA AND PARABASALA [J].
BRUGEROLLE, G .
PROTOPLASMA, 1991, 164 (1-3) :70-90
[12]   A revised six-kingdom system of life [J].
Cavalier-Smith, T .
BIOLOGICAL REVIEWS, 1998, 73 (03) :203-266
[13]   The phagotrophic origin of eukaryotes and phylogenetic classification of protozoa [J].
Cavalier-Smith, T .
INTERNATIONAL JOURNAL OF SYSTEMATIC AND EVOLUTIONARY MICROBIOLOGY, 2002, 52 :297-354
[14]   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
[15]  
Cavalier-Smith T, 2000, SYST ASSOC SPEC VOL, V59, P361
[16]  
Cavalier-Smith T, 1993, ENDOCYTOBIOLOGY, P399
[17]   EUKARYOTE KINGDOMS - 7 OR 9 [J].
CAVALIERSMITH, T .
BIOSYSTEMS, 1981, 14 (3-4) :461-481
[18]   MOLECULAR EVOLUTION - EUKARYOTES WITH NO MITOCHONDRIA [J].
CAVALIERSMITH, T .
NATURE, 1987, 326 (6111) :332-333
[19]  
CAVALIERSMITH T, 1983, ENDOCYTOBIOLOGY, V2, P1027
[20]  
CORLISS JO, 1994, ACTA PROTOZOOL, V33, P1