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Phylomitogenomics of Malacostraca(Arthropoda: Crustacea)

Phylomitogenomics of Malacostraca(Arthropoda: Crustacea)
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摘要 Along with the sequencing technology development and continual enthusiasm of researchers on the mitochondrial genomes, the number of metazoan mitochondrial genomes reported has a tremendous growth in the past decades. Phylomitogenomics—reconstruction of phylogenetic relationships based on mitochondrial genomic data—is now possible across large animal groups. Crustaceans in the class Malacostraca display a high diversity of body forms and include large number of ecologically and commercially important species. In this study, comprehensive and systematic analyses of the phylogenetic relationships within Malacostraca were conducted based on 86 mitochondrial genomes available from Gen Bank. Among 86 malacostracan mitochondrial genomes, 54 species have identical major gene arrangement(excluding t RNAs) to pancrustacean ground pattern,including six species from Stomatopoda, three species from Amphipoda, two krill, seven species from Dendrobranchiata(Decapoda), and 36 species from Pleocyemata(Decapoda). However, the other 32 mitochondrial genomes reported exhibit major gene rearrangements. Phylogenies based on Bayesian analyses of nucleotide sequences of the protein-coding genes produced a robust tree with 100% posterior probability at almost all nodes. The results indicate that Amphipoda and Isopoda cluster together(Edriophthalma)(BPP=100).Phylomitogenomic analyses strong support that Euphausiacea is nested within Decapoda, and closely related to Dendrobranchiata, which is also consistent with the evidence from developmental biology. Yet the taxonomic sampling of mitochondrial genome from Malacostraca is very biased to the order Decapoda, with no complete mitochondrial genomes reported from 11 of the 16 orders. Future researches on sequencing the mitochondrial genomes from a wide variety of malacostracans are necessary to further elucidate the phylogeny of this important group of animals. With the increase in mitochondrial genomes available, phylomitogenomics will emerge as an important component in the Tree of Life researches. Along with the sequencing technology development and continual enthusiasm of researchers on the mitochondrial genomes, the number of metazoan mitochondrial genomes reported has a tremendous growth in the past decades. Phylomitogenomics—reconstruction of phylogenetic relationships based on mitochondrial genomic data—is now possible across large animal groups. Crustaceans in the class Malacostraca display a high diversity of body forms and include large number of ecologically and commercially important species. In this study, comprehensive and systematic analyses of the phylogenetic relationships within Malacostraca were conducted based on 86 mitochondrial genomes available from Gen Bank. Among 86 malacostracan mitochondrial genomes, 54 species have identical major gene arrangement(excluding t RNAs) to pancrustacean ground pattern,including six species from Stomatopoda, three species from Amphipoda, two krill, seven species from Dendrobranchiata(Decapoda), and 36 species from Pleocyemata(Decapoda). However, the other 32 mitochondrial genomes reported exhibit major gene rearrangements. Phylogenies based on Bayesian analyses of nucleotide sequences of the protein-coding genes produced a robust tree with 100% posterior probability at almost all nodes. The results indicate that Amphipoda and Isopoda cluster together(Edriophthalma)(BPP=100).Phylomitogenomic analyses strong support that Euphausiacea is nested within Decapoda, and closely related to Dendrobranchiata, which is also consistent with the evidence from developmental biology. Yet the taxonomic sampling of mitochondrial genome from Malacostraca is very biased to the order Decapoda, with no complete mitochondrial genomes reported from 11 of the 16 orders. Future researches on sequencing the mitochondrial genomes from a wide variety of malacostracans are necessary to further elucidate the phylogeny of this important group of animals. With the increase in mitochondrial genomes available, phylomitogenomics will emerge as an important component in the Tree of Life researches.
出处 《Acta Oceanologica Sinica》 SCIE CAS CSCD 2015年第2期84-92,共9页 海洋学报(英文版)
基金 The National Natural Science Foundation of China under contract Nos 41476146 and 40906067 Hong Kong Scholars Program under contract No.XJ2012056 China Postdoctoral Science Foundation under contract Nos 2012M510054 and 2012T50218 a project funded by the Priority Academic Program Development of Jiangsu Higher Education Institutions(PAPD)
关键词 Malacostraca Crustacea Phylomitogenomics gene arrangement mitochondrial genome Malacostraca,Crustacea,Phylomitogenomics,gene arrangement,mitochondrial genome
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参考文献65

  • 1Anderson S, Bankier A T, Barrell B G, et al. 1981. Sequence and or- ganization of the human mitochondrial genome. Nature, 290(5806): 457-465.
  • 2Bauza-Ribot M M, Jaume D, luan C, et al. 2009. The complete mito- chondrial genome of the subterranean crustacean Metacran- gonyx longipes (Amphipoda): a unique gene order and ex- tremely short control region. Mitochondrial DNA, 20(4): 88-99.
  • 3Bauza-Ribot M M, luan C, Nardi F, et al. 2012. Mitogenomic phylo- genetic analysis supports continental-scale vicariance in sub- terranean thalassoid crustaceans. Curr Biol, 22(21): 2069-2074.
  • 4Bibb M 1, Van Etten R A, Wright C T, et al. 1981. Sequence and gene organization of mouse mitochondrial DNA. Cell, 26(2): 167-180.
  • 5Boore 1 L, Lavrov D V, Brown W M. 1998. Gene translocation links in- sects and crustaceans. Nature, 392(6677): 667-668.
  • 6Caiman W T. 1904. On the classification of the Crustacea Malacostraca. Ann Mag Nat Hist, 13(74): 144-158.
  • 7Casanova B. 2003. Ordre des Euphausiacea Dana, 1852. Crustaceana, 76(9): 1083-1121.
  • 8Cook C E. 2005. The complete mitochondrial genome of the stomato- pod crustacean Squilla mantis. BMC Genomics, 6: 105.
  • 9Darriba D, Taboada G L, Doallo R, et al. 2012. jModelTest 2: more models, new heuristics and parallel computing. Nat Methods, 9(8): 772.
  • 10Gillett C P D T, Crampton-Platt A, Timmermans M I T N, et al. 2014. Bulk de novo mitogenome assembly from pooled total DNA elucidates the phylogeny of weevils (coleoptera: curculion- oidea). Mol Biol Evol, 31(8): 2223-2237.

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