Literature DB >> 28681105

Chimeras Linked to Tandem Repeats and Transposable Elements in Tetraploid Hybrid Fish.

Lihai Ye1,2, Ni Jiao1,2, Xiaojun Tang1,2, Yiyi Chen1,2, Xiaolan Ye1,2, Li Ren1,2, Fangzhou Hu1,2, Shi Wang1,2, Ming Wen1,2, Chun Zhang1,2, Min Tao1,2, Shaojun Liu3,4.   

Abstract

The formation of the allotetraploid hybrid lineage (4nAT) encompasses both distant hybridization and polyploidization processes. The allotetraploid offspring have two sets of sub-genomes inherited from both parental species, and therefore, it is important to explore its genetic structure. Herein, we construct a bacterial artificial chromosome library of allotetraploids, and then sequence and analyze the full-length sequences of 19 bacterial artificial chromosomes. Sixty-eight DNA chimeras are identified, which are divided into four models according to the distribution of the genomic DNA derived from the parents. Among the 68 genetic chimeras, 44 (64.71%) are linked to tandem repeats (TRs) and 23 (33.82%) are linked to transposable elements (TEs). The chimeras linked to TRs are related to slipped-strand mispairing and double-strand break repair while the chimeras linked to TEs benefit from the intervention of recombinases. In addition, TRs and TEs can also result in insertions/deletions of DNA segments. We conclude that DNA chimeras accompanied by TRs and TEs coordinate a balance between the sub-genomes derived from the parents. It is the first report on the relationship between formation of the DNA chimeras and TRs and TEs in the polyploid animals.

Keywords:  Chimeras; Tandem repeats; Tetraploid hybrid fish; Transposable elements

Mesh:

Substances:

Year:  2017        PMID: 28681105     DOI: 10.1007/s10126-017-9764-6

Source DB:  PubMed          Journal:  Mar Biotechnol (NY)        ISSN: 1436-2228            Impact factor:   3.619


  51 in total

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