Complete mitochondrial genomes of two cockroaches, Blattella germanica and Periplaneta americana, and the phylogenetic position of termites

被引:0
作者
Bo Xiao
Ai-Hui Chen
Yan-Yan Zhang
Guo-Fang Jiang
Chao-Chao Hu
Chao-Dong Zhu
机构
[1] Nanjing Normal University,Jiangsu Key Laboratory for Biodiversity and Biotechnology, College of Life Sciences
[2] Chinese Academy of Sciences,Key Laboratory of Zoological Systematics and Evolution, Institute of Zoology
来源
Current Genetics | 2012年 / 58卷
关键词
Mitogenome; Phylogenetic analysis; Cockroach; Blattaria; Dictyoptera; Isoptera;
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学科分类号
摘要
The mitochondrial genomes are one of the most information-rich markers in phylogenetics. The relationships within superorder Dictyoptera have been debated in the literature. However, the closely related termites (Isoptera) are retained as unranked taxon within the order Blattaria (cockroaches). In this work, we sequenced the complete mitogenomes of two cockroaches, reconstructed the molecular phylogeny and attempted to infer the phylogenetic position of termites in Blattaria more reliably. The complete mtDNA nucleotide sequences of the peridomestic American cockroach (Periplaneta americana L.) and the domestic German cockroach (Blattella germanica L.) are 15,025 and 15,584 bp in size, respectively. The genome shares the gene order and orientation with previously known Blattaria mitogenomes. Most tRNAs could be folded into the typical cloverleaf secondary structure, but the tRNA-Ser (AGN) of P. americana appears to be missing the dihydrouridine arm. Using nucleotide and amino acid sequences as phylogenetic markers, we proposed that termites should be treated as a superfamily (Termitoidea) of cockroaches. We suggested that Polyphagoidea was the sister group of Termitoidea in Blattaria and supported that the suborder Caelifera is more closely related to the Phasmatodea than to the suborder Ensifera of Orthoptera.
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页码:65 / 77
页数:12
相关论文
共 251 条
[1]  
Abascal F(2005)ProtTest: selection of best-fit models of protein evolution Bioinformatics 21 2104-2105
[2]  
Zardoya R(2007)MtArt: a new model of amino acid replacement for arthropoda Mol Biol Evol 24 1-5
[3]  
Posada D(1981)Sequence and organization of the human mitochondrial genome Nature 290 457-465
[4]  
Abascal F(1998)Gene translocation links insects and crustaceans Nature 392 667-668
[5]  
Posada D(1999)Papilio phylogeny based on mitochondrial cytochrome oxidase I and II genes Mol Phylogenet Evol 11 122-137
[6]  
Zardoya R(1982)Drosophila mitochondrial DNA: a novel gene order Nucleic Acids Res 10 6619-6637
[7]  
Anderson S(2011)Characterization of mitochondrial mRNAs in codfish reveals unique features compared to mammals Curr Genet 57 213-222
[8]  
Bankier AT(1999)The complete sequence of the mitochondrial genome of Gene 233 88-99
[9]  
Barrell BG(1993) (Cladocera: Crustacea) Genetics 133 97-117
[10]  
de Bruijn MH(1999)The mitochondrial genome of the honeybee Trends Ecol Evol 14 394-398