Low endemism, continued deep-shallow interchanges, and evidence for cosmopolitan distributions in free-living marine nematodes (order Enoplida)

被引:51
作者
Bik, Holly M. [1 ,2 ,4 ]
Thomas, W. Kelley [2 ]
Lunt, David H. [3 ]
Lambshead, P. John D. [4 ]
机构
[1] Nat Hist Museum, Dept Zool, Nematode Res Grp, London SW7 5BD, England
[2] Univ New Hampshire, Hubbard Ctr Genome Studies, Durham, NH 03824 USA
[3] Univ Hull, Dept Biol Sci, Kingston Upon Hull HU6 7RX, N Humberside, England
[4] Natl Oceanog Ctr, Sch Ocean & Earth Sci, Southampton SO14 3ZH, Hants, England
来源
BMC EVOLUTIONARY BIOLOGY | 2010年 / 10卷
关键词
GENE FLOW; SEA; OXYGEN; DNA; BIODIVERSITY; DISPERSAL; MEIOFAUNA; INVERTEBRATES; PHYLOGENY; ALGAE;
D O I
10.1186/1471-2148-10-389
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Background: Nematodes represent the most abundant benthic metazoa in one of the largest habitats on earth, the deep sea. Characterizing major patterns of biodiversity within this dominant group is a critical step towards understanding evolutionary patterns across this vast ecosystem. The present study has aimed to place deep-sea nematode species into a phylogenetic framework, investigate relationships between shallow water and deep-sea taxa, and elucidate phylogeographic patterns amongst the deep-sea fauna. Results: Molecular data (18 S and 28 S rRNA) confirms a high diversity amongst deep-sea Enoplids. There is no evidence for endemic deep-sea lineages in Maximum Likelihood or Bayesian phylogenies, and Enoplids do not cluster according to depth or geographic location. Tree topologies suggest frequent interchanges between deep-sea and shallow water habitats, as well as a mixture of early radiations and more recently derived lineages amongst deep-sea taxa. This study also provides convincing evidence of cosmopolitan marine species, recovering a subset of Oncholaimid nematodes with identical gene sequences (18 S, 28 S and cox1) at trans-Atlantic sample sites. Conclusions: The complex clade structures recovered within the Enoplida support a high global species richness for marine nematodes, with phylogeographic patterns suggesting the existence of closely related, globally distributed species complexes in the deep sea. True cosmopolitan species may additionally exist within this group, potentially driven by specific life history traits of Enoplids. Although this investigation aimed to intensively sample nematodes from the order Enoplida, specimens were only identified down to genus (at best) and our sampling regime focused on an infinitesimal small fraction of the deep-sea floor. Future nematode studies should incorporate an extended sample set covering a wide depth range (shelf, bathyal, and abyssal sites), utilize additional genetic loci (e.g. mtDNA) that are informative at the species level, and apply high-throughput sequencing methods to fully assay community diversity. Finally, further molecular studies are needed to determine whether phylogeographic patterns observed in Enoplids are common across other ubiquitous marine groups (e. g. Chromadorida, Monhysterida).
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页数:10
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共 57 条
[1]  
[Anonymous], 1988, Echinoderm Biology
[2]   OCCURRENCE OF MEIOFAUNA IN PHAEOCYSTIS SEAFOAM [J].
ARMONIES, W .
MARINE ECOLOGY PROGRESS SERIES, 1989, 53 (03) :305-309
[3]   Drifting algae as a means of re-colonizing defaunated sediments in the Baltic Sea. A short-term microcosm study [J].
Arroyo, NL ;
Aarnio, K ;
Bonsdorff, E .
HYDROBIOLOGIA, 2006, 554 (1) :83-95
[4]   Drifting plastic and its consequences for sessile organism dispersal in the Atlantic Ocean [J].
Barnes, DKA ;
Milner, P .
MARINE BIOLOGY, 2005, 146 (04) :815-825
[5]   Evaluation of combined morphological and molecular techniques for marine nematode (Terschellingia spp.) identification [J].
Bhadury, P. ;
Austen, M. C. ;
Bilton, D. T. ;
Lambshead, P. J. D. ;
Rogers, A. D. ;
Smerdon, G. R. .
MARINE BIOLOGY, 2008, 154 (03) :509-518
[6]   A molecular evolutionary framework for the phylum Nematoda [J].
Blaxter, ML ;
De Ley, P ;
Garey, JR ;
Liu, LX ;
Scheldeman, P ;
Vierstraete, A ;
Vanfleteren, JR ;
Mackey, LY ;
Dorris, M ;
Frisse, LM ;
Vida, JT ;
Thomas, WK .
NATURE, 1998, 392 (6671) :71-75
[7]   The biodiversity of the deep Southern Ocean benthos [J].
Brandt, A. ;
De Broyer, C. ;
De Mesel, I. ;
Ellingsen, K. E. ;
Gooday, A. J. ;
Hilbig, B. ;
Linse, K. ;
Thomson, M. R. A. ;
Tyler, P. A. .
PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY B-BIOLOGICAL SCIENCES, 2007, 362 (1477) :39-66
[8]   Do Antarctic benthic invertebrates show an extended level of eurybathy? [J].
Brey, T ;
Dahm, C ;
Gorny, M ;
Klages, M ;
Stiller, M ;
Arntz, WE .
ANTARCTIC SCIENCE, 1996, 8 (01) :3-6
[9]  
Bussau C., 1993, Taxonomische und okologische Untersuchungen an Nematoden des Peru-Beckens
[10]   Nematode abundance at the oxygen minimum zone in the Arabian Sea [J].
Cook, AA ;
Lambshead, PJD ;
Hawkins, LE ;
Mitchell, N ;
Levin, LA .
DEEP-SEA RESEARCH PART II-TOPICAL STUDIES IN OCEANOGRAPHY, 2000, 47 (1-2) :75-85