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Combinatorial DNA Rearrangement Facilitates the Origin of New Genes in Ciliates

机译:组合DNA重排促进纤毛虫新基因的起源

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摘要

Programmed genome rearrangements in the unicellular eukaryote Oxytricha trifallax produce a transcriptionally active somatic nucleus from a copy of its germline nucleus during development. This process eliminates noncoding sequences that interrupt coding regions in the germline genome, and joins over 225,000 remaining DNA segments, some of which require inversion or complex permutation to build functional genes. This dynamic genomic organization permits some single DNA segments in the germline to contribute to multiple, distinct somatic genes via alternative processing. Like alternative mRNA splicing, the combinatorial assembly of DNA segments contributes to genetic variation and facilitates the evolution of new genes. In this study, we use comparative genomic analysis to demonstrate that the emergence of alternative DNA splicing is associated with the origin of new genes. Short duplications give rise to alternative gene segments that are spliced to the shared gene segments. Alternative gene segments evolve faster than shared, constitutive segments. Genes with shared segments frequently have different expression profiles, permitting functional divergence. This study reports alternative DNA splicing as a mechanism of new gene origination, illustrating how the process of programmed genome rearrangement gives rise to evolutionary innovation.
机译:单细胞真核生物Oxytricha trifallax中程序化的基因组重排在发育过程中从其种系核的拷贝中产生了转录活性的体核。此过程消除了中断种系基因组中编码区的非编码序列,并连接了超过225,000个剩余的DNA片段,其中一些片段需要进行反转或复杂置换才能构建功能性基因。这种动态的基因组组织允许种系中的某些单个DNA片段通过替代加工而有助于多个独特的体细胞基因。像其他的mRNA剪接一样,DNA片段的组合装配有助于遗传变异并促进新基因的进化。在这项研究中,我们使用比较基因组分析来证明替代性DNA剪接的出现与新基因的起源有关。短的重复产生了剪接至共享基因片段的替代基因片段。替代性基因区段的进化比共享的组成性区段更快。具有共享区段的基因通常具有不同的表达谱,从而允许功能差异。这项研究报告了替代性的DNA剪接作为新基因起源的机制,说明了程序化的基因组重排过程如何引起进化创新。

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