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Beyond Junk-Variable Tandem Repeats as Facilitators of Rapid Evolution of Regulatory and Coding Sequences

机译:超越垃圾变量串联重复序列促进调节序列和编码序列的快速发展

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摘要

Copy Number Variations (CNVs) and Single Nucleotide Polymorphisms (SNPs) have been the major focus of most large-scale comparative genomics studies to date. Here, we discuss a third, largely ignored, type of genetic variation, namely changes in tandem repeat number. Historically, tandem repeats have been designated as non functional “junk” DNA, mostly as a result of their highly unstable nature. With the exception of tandem repeats involved in human neurodegenerative diseases, repeat variation was often believed to be neutral with no phenotypic consequences. Recent studies, however, have shown that as many as 10% to 20% of coding and regulatory sequences in eukaryotes contain an unstable repeat tract. Contrary to initial suggestions, tandem repeat variation can have useful phenotypic consequences. Examples include rapid variation in microbial cell surface, tuning of internal molecular clocks in flies and the dynamic morphological plasticity in mammals. As such, tandem repeats can be useful functional elements that facilitate evolvability and rapid adaptation.
机译:迄今为止,拷贝数变异(CNV)和单核苷酸多态性(SNP)已成为大多数大规模比较基因组学研究的主要重点。在这里,我们讨论了第三种被广泛忽略的遗传变异类型,即串联重复数的变化。从历史上看,串联重复序列被指定为无功能的“垃圾” DNA,主要是由于其高度不稳定的特性。除了涉及人类神经退行性疾病的串联重复序列外,通常认为重复序列变异是中性的,没有表型后果。然而,最近的研究表明,真核生物中多达10%至20%的编码和调控序列包含不稳定的重复序列。与最初的建议相反,串联重复变异可能会产生有用的表型后果。例子包括微生物细胞表面的快速变化,果蝇内部分子钟的调节以及哺乳动物的动态形态可塑性。这样,串联重复序列可以是有助于进化和快速适应的有用功能元件。

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