Moniezia benedeni and Moniezia expansa are distinct cestode species based on complete mitochondrial genomes

文献类型: 外文期刊

第一作者: Guo, Aijiang

作者: Guo, Aijiang;Guo, Aijiang

作者机构:

关键词: Moniezia benedeni;M. expansa;Mitochondrial genome;Phylogeny

期刊名称:ACTA TROPICA ( 影响因子:3.112; 五年影响因子:3.002 )

ISSN: 0001-706X

年卷期: 2017 年 166 卷

页码:

收录情况: SCI

摘要: Moniezia spp. parasitize the intestines of ruminants, causing monieziasis. In this study, the complete mitochondrial (mt) genomes of M. benedeni and M. expansa have been determined, characterized and employed to test the hypothesis that M. benedeni and M. expansa are distinct species by phylogenetic analysis based on the concatenated amino acid sequences derived from 12 protein-coding genes, inferred with Bayesian and Maximum-likelihood methods. The complete mt genomes of M. benedeni and M. expansa were 13,958 bp and 13,934 bp in size, respectively. Nucleotide sequence identity between the two mt genomes was 83.4%. Each of the two circular mt genomes encodes 36 genes including two ribosomal RNA genes, 22 transfer RNA genes and 12 protein-coding genes, which are transcribed from the same direction. The gene orders of the two mt genomes are identical to those of Anoplocephala spp. (Anoplocephalidae), Hymenolepis spp. (Hymenolepididae) and Dipylidium caninum (Dipylidiidae), but distinct from the species of the Taeniidae family. Phylogenetic analysis confirmed that M. benedeni and M. expansa are taxonomically valid species and have a sister relationship, regardless of the analytical method employed. Furthermore, comparing the cox1 gene sequences of Moniezia spp. from the NCBI deposited sequences and the ones obtained in the present study revealed that the nucleotide sequence differences were 12.5% for M. benedeni and 6.2% for M. expansa, respectively, suggesting the existence of cryptic species in these parasites. The complete mt genome sequences reported herein will be valuable in further studies of diagnoses, molecular ecology and population genetics of Moniezia spp. of socio-economic importance. (C) 2016 Elsevier B.V. All rights reserved.

分类号:

  • 相关文献

[1]Next-generation sequencing of the yellowfin tuna mitochondrial genome reveals novel phylogenetic relationships within the genus Thunnus. Guo, Liang,Li, Mingming,Yang, Sen,Chen, Xinghan,Meng, Zining,Lin, Haoran,Zhang, Heng. 2016

[2]The complete mitochondrial genome of the grey bamboo shark (Chiloscyllium griseum) (Orectolobiformes: Hemiscylliidae): genomic characterization and phylogenetic application. Chen Xiao,Chen Xiao,Lin Chongwen,Ai Weiming,Ye Le,Wang Xuehui,Yang Shengyun. 2013

[3]The complete mitochondrial genome of Eleotris oxycephala (Perciformes: Eleotridae). Meng, Yongyong,Ma, Hongyu,Ma, Chunyan,Wei, Hongqing,Liu, Yuexing,Zhang, Fengying,Wang, Wei,Chen, Wei,Zhao, Mengdi,Chen, Fenfang,Ma, Lingbo,Meng, Yongyong,Wei, Hongqing,Liu, Yuexing,Zhao, Mengdi,Chen, Fenfang. 2016

[4]The complete mitochondrial genome of the tapeworm Cladotaenia vulturi (Cestoda: Paruterinidae): gene arrangement and phylogenetic relationships with other cestodes. Guo, Aijiang,Guo, Aijiang. 2016

[5]Two mitochondrial genomes from the families Bethylidae and Mutillidae: Independent rearrangement of protein-coding genes and higher-level phylogeny of the Hymenoptera. Wei, Shu-Jun,Li, Qian,Chen, Xue-Xin,Wei, Shu-Jun,Li, Qian,Chen, Xue-Xin,Wei, Shu-Jun,van Achterberg, Kees.

[6]Characterization of the Macropodus opercularis complete mitochondrial genome and family Channidae taxonomy using Illumina-based de novo transcriptome sequencing. Mu, Xidong,Liu, Yi,Lai, Mingxin,Song, Hongmei,Wang, Xuejie,Hu, Yinchang,Luo, Jianren.

[7]The complete mitochondrial genome of the Atylotus miser (Diptera: Tabanomorpha: Tabanidae), with mitochondrial genome phylogeny of lower Brachycera (Orthorrhapha). Li, Xuankun,Ding, Shuangmei,Wang, Ning,Wang, Mengqing,Yang, Ding,Wang, Ning,Mao, Meng,Wang, Mengqing.

[8]An unusual mitochondrial genome structure of the tonguefish, Cynoglossus trigrammus: Control region translocation and a long additional non-coding region inversion. Mu, Xidong,Wang, Xuejie,Liu, Yi,Song, Hongmei,Liu, Chao,Luo, Jianren,Hu, Yinchang,Gu, Dangen,Wei, Hui,Luo, Jianren,Hu, Yinchang.

[9]Analysis of the complete mitochondrial genome of Pochonia chlamydosporia suggests a close relationship to the invertebrate-pathogenic fungi in Hypocreales. Lin, Runmao,Liu, Chichuan,Shen, Baoming,Ling, Jian,Chen, Guohua,Mao, Zhenchuan,Xie, Bingyan,Shen, Baoming,Bai, Miao,Cheng, Xinyue. 2015

[10]The complete mitochondrial genome of Mong Cai pig (Sus scrofa) in Vietnam. Thuy Nhien Thi Tran,Ni, Pan,Chen, Jianhai,Wang, Haiyan,Zhao, Shuhong,Thuy Thi Le,Steve, Kemp,Han, Jianlin,Han, Jianlin,Zhao, Shuhong. 2016

[11]Phylogenetic analysis of the Mongolian gerbil (Meriones unguiculatus) from China based on mitochondrial genome. Li, C. L.,Du, X. Y.,Wang, C.,An, W.,Chen, Z. W.,Guo, H. G.,Dai, F. W.,Sa, X. Y.,Gao, J.. 2016

[12]The complete mitochondrial genomes of three parasitic nematodes of birds: a unique gene order and insights into nematode phylogeny. Liu, Guo-Hua,Li, Jia-Yuan,Zhou, Dong-Hui,Zhu, Xing-Quan,Liu, Guo-Hua,Zhu, Xing-Quan,Shao, Renfu,Li, Hu. 2013

[13]Mitochondrial genes and genomes support a cryptic species of tapeworm within Taenia taeniaeformis. Jia, Wanzhong,Yan, Hongbin,Lou, Zhongzi,Ni, Xingwei,Li, Hongmin,Dyachenko, Viktor,Littlewood, D. Timothy J.. 2012

[14]Complete mitochondrial genome of Cervus elaphus songaricus (Cetartiodactyla: Cervinae) and a phylogenetic analysis with related species. Li, Yiqing,Ba, Hengxing,Yang, Fuhe,Li, Yiqing,Ba, Hengxing,Yang, Fuhe.

[15]The mitochondrial genome of Tenthredo tienmushana (Takeuchi) and a related phylogenetic analysis of the sawflies (Insecta: Hymenoptera). Song, Sheng-Nan,Chen, Xue-Xin,Song, Sheng-Nan,Chen, Xue-Xin,Song, Sheng-Nan,Wang, Ze-Hua,Wei, Shu-Jun,Li, Yue.

[16]The complete mitochondrial genome of the butterfly Apatura metis (Lepidoptera: Nymphalidae). Cao, Tianwen,Wang, Juping,Zhang, Min,Nie, Xinping,Li, Tao,Ma, Enbo,Zhang, Min,Zhang, Xiaonan,Guo, Yaping,Zhong, Yang.

[17]The complete mitochondrial genome sequence of Rastrelliger kanagurta (Perciformes: Scombridae). Chen, Ying,Cheng, Qiqun,Qiao, Huiying,Zhu, Yuxia,Chen, Wenming,Chen, Ying,Qiao, Huiying,Zhu, Yuxia,Chen, Wenming.

[18]Complete mitochondrial genomes of two Oriental dobsonflies, Neoneuromus tonkinensis (van der Weele) and Nevromus exterior (Navas) (Megaloptera: Corydalidae), and phylogenetic implications of Corydalinae. Zhou, Yajun,Wang, Yiran,Yue, Lu,Yan, Yan,Liu, Xingyue,Wang, Mengqing.

[19]Complete mitochondrial genome of Pelteobagrus fulvidraco (Siluriformes: Bagridae): genome description and related phylogenetic analyses. Wan, Quan,Qiao, Huiying,Cheng, Qiqun,Chen, Ying,Qiao, Huiying,Chen, Ying.

[20]Fungal Biodiversity Profiles 21-30. Buyck, Bart,Duhem, Bernard,Hofstetter, Valerie,Das, Kanad,Parihar, Arvind,Jayawardena, Ruvishika S.,Niveiro, Nicolas,Michlig, Andrea,Fabian Popoff, Orlando,Andrea Ramirez, Natalia,Niveiro, Nicolas,Michlig, Andrea,Fabian Popoff, Orlando,Andrea Ramirez, Natalia,Lewish, David P.,Pereira, Olinto L.,da Silva, Meiriele,Prasher, Indu B.,Verma, Rajnish K.,Adhikari, Sinchan,Omar Alberto, Edgardo,Bulgakov, Timur S.,Castareda-Ruiz, Rafael F.,Hembrom, Manoj E.,Hyde, Kevin D.,Hyde, Kevin D.,Buyck, Bart,Nuytinck, Jorinde.

作者其他论文 更多>>