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Featured researches published by Xuejie Wang.


Gene | 2012

Mitochondrial DNA as effective molecular markers for the genetic variation and phylogeny of the family Osteoglossidae

Xidong Mu; Xuejie Wang; Hongmei Song; Yexin Yang; Du Luo; Dangen Gu; Chao Liu; Jianren Luo; Yinchang Hu

The present study examined the genetic variation of the family Osteoglossidae from different geographical locations based on the mitochondrial NADH dehydrogenase subunit 2 (ND2) and ATPase subunit 6 (ATPase6) genes; we then re-constructed the phylogenetic relationships using the two sequences in combination. The results showed that the partial sequences of mitochondrial ND2 and ATPase6 of the family Osteoglossidae were 813 bp and 669 bp, respectively. A total of 42 species-specific nucleotide positions of the family Osteoglossidae were found to be useful for molecular identification. The sequence variation showed greater differences (8.3%~28.1% for the combined sequences, 8.3%~26.7% for the ND2 gene, and 9.3%~28.7% for the ATPase6 gene) among the different species of Osteoglossidae, and there was a significant association between the genetic difference and geographical location. Phylogenetic analyses using neighbor-joining, Bayesian inference, and maximum parsimony (MP) methods based on the combined sequences of the two genes were able to distinguish the different species and were in agreement with the existing taxonomy based on morphological characters and in association with the geographical distribution among seven species of the family Osteoglossidae.


Gene | 2015

Characterization of the Macropodus opercularis complete mitochondrial genome and family Channidae taxonomy using Illumina-based de novo transcriptome sequencing

Xidong Mu; Yi Liu; Mingxin Lai; Hongmei Song; Xuejie Wang; Yinchang Hu; Jianren Luo

In this study, the complete mitochondrial genome of Macropodus opercularis was sequenced using Illumina-based de novo transcriptome technology and annotated using bioinformatic tools. The circular mitochondrial genome was 16,496bp in length and contained two ribosomal RNAs, 13 protein-coding genes, 22 transfer RNA genes, and the control region. The gene composition and order were similar to suborder Anabantoidei. Phylogenetic analyses using concatenated amino acid and nucleotide sequences of the 13 protein-coding genes with two different methods (Neighbor-joining and Bayesian analysis) both highly supported the close relationship of M. opercularis to M. ocellatus, consistent with previous classifications based on morphological and molecular studies. Furthermore, family Channidae and Parachanna insignis were clustered in the same clade. Our results supported the inclusion of family Channidae in suborder Channoidei. The complete mitochondrial genome of M. opercularis will provide genetic markers for better understanding species identification, population genetics and phylogeographics of freshwater fishes.


Gene | 2015

An unusual mitochondrial genome structure of the tonguefish, Cynoglossus trigrammus: Control region translocation and a long additional non-coding region inversion

Xidong Mu; Xuejie Wang; Yi Liu; Hongmei Song; Chao Liu; Dangen Gu; Hui Wei; Jianren Luo; Yinchang Hu

Flatfishes (Pleuronectiformes) exhibit different types of large-scale gene rearrangements. In the present study, the mitochondrial (mt) genome (18,369bp) of a tonguefish, Cynoglossus trigrammus, was determined using de novo mitochondrion genome sequencing. Compared with other flatfishes, the mt genome of C. trigrammus revealed distinct mitogenome architectures that primarily included two striking findings: 1) insertion of an additional long non-coding region (1647bp) making it the second largest genome length among Pleuronectiformes and 2) the translocation of the control region. The reconstructed phylogenetic tree based on 13 mt protein-coding gene sequences recovered the monophyletic suborder Pleuronectoidei and the family Cynoglossidae. These data provide useful information for a better understanding of the mitogenomic diversities and evolution in fish as well as novel genetic markers for studying population genetics and species identification.


Mitochondrial DNA | 2016

Complete mitochondrial genome of Zebra tilapia, Tilapia buttikoferi

Xidong Mu; Chao Liu; Xuejie Wang; Yi Liu; Yinchang Hu; Jianren Luo

Abstract We determined the complete mitochondrial genome of Tilapia buttikoferi, which was 16,577 bp in length with an A + T content of 53.0%, containing 13 protein-coding genes, 2 rRNAs, 22 tRNAs and a complete control region. The gene arrangement was similar to that of typical fishes. The total base composition of the mitogenome was 25.6% T, 30.8% C, 27.4% A and 16.2% G. Of the 13 protein-coding genes, 12 genes start with an ATG codon, except for COX1 with GTG. Seven (ND1, ND2, COX1, ATPase8, ATPase6, ND4L and ND6) used TAA or AGA as the termination codon, whereas six (COX2, COX3, ND3, ND4, ND5 and cyt b) had incomplete stop codon T. Its control region was atypical in being short at 861 bp, and contained TACAT motif and one microsatellite-like region (TA)7. This mitogenome sequence data may be useful for phylogenetic and systematic analyses within the family Cichlaidae.


Mitochondrial DNA | 2015

Complete mitochondrial genome of the ocellate river stingray (Potamotrygon motoro)

Hongmei Song; Xidong Mu; Min-Xia Wei; Xuejie Wang; Jianren Luo; Yinchang Hu

Abstract We determined the first complete mitochondrial genome sequence of Potamotrygon motoro from South American freshwater stingrays. The total length of P. motoro mitogenome is 17,448 bp, which consists of 13 protein-coding genes, 22 tRNA genes, 2 rRNA genes and a control region, with the genome organization and gene order being identical to that of the typical vertebrate. The overall nucleotide composition is 32.3% A, 24.4% T, 30.5% C and 12.8% G. These data will provide useful molecular information for phylogenetic relationships within the family Potamotrygonidae species.


Biologia | 2014

Characterization of the mitochondrial genome and phylogeny of the black arowana (Osteoglossum ferreirai)

Xidong Mu; Yi Liu; Xuejie Wang; Chao Liu; Hongmei Song; Yinchang Hu; Jianren Luo

In this study, we sequenced and assembled the mitochondrial (mt) genome of Osteoglossum ferreirai to re-assess the phylogenetic relationship of the family Osteoglossidae. We determined that the mitogenome of O. ferreirai contains the entire set of 37 mt genes, and the nucleotide composition and gene arrangement were similar to those of other bonytongues. Our phylogenetic analyses exhibited monophyly of the family Osteoglossidae with high bootstrap support, which is in agreement with the currently accepted phylogenetic viewpoint that is based on both morphological and molecular approaches. These findings provide additional informative data for the further study of phylogenetic relationships and help to elucidate a key component of the species radiation process within the family Osteoglossidae.


International Journal of Biology | 2009

Preliminary Study on Mitochondrial DNA Cytochrome B Sequences and Genetic Relationship of Three Asian Arowana Scleropages Formosus

Yinchang Hu; Xidong Mu; Xuejie Wang; Chao Liu; Peixin Wang; Jianren Luo


Archive | 2011

Single-tank circulation purification culture system

Yinchang Hu; Xidong Mou; Jianren Luo; Xingguo Liu; Peixin Wang; Xuejie Wang; Hongmei Song; Xiaohui Li; Yexin Yang


Archive | 2009

Aquacultural water purifying and recycling system

Yinchang Hu; Xidong Mou; Xuejie Wang; Jianren Luo


Archive | 2012

Water heating system for fishpond

Yinchang Hu; Xidong Mou; Xuejie Wang; Chao Liu; Jianren Luo; Hongmei Song; Yexin Yang

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Yinchang Hu

Chinese Academy of Fishery Sciences

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Jianren Luo

Chinese Academy of Fishery Sciences

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Hongmei Song

Chinese Academy of Fishery Sciences

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Xidong Mu

Chinese Academy of Fishery Sciences

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Chao Liu

Chinese Academy of Fishery Sciences

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Yexin Yang

Chinese Academy of Fishery Sciences

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Yi Liu

Chinese Academy of Fishery Sciences

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Dangen Gu

Chinese Academy of Fishery Sciences

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Du Luo

Chinese Academy of Fishery Sciences

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Hui Wei

Chinese Academy of Fishery Sciences

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