卫星DNA进化。

Genome dynamics Pub Date : 2012-01-01 Epub Date: 2012-06-25 DOI:10.1159/000337122
M Plohl, N Meštrović, B Mravinac
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引用次数: 163

摘要

卫星dna代表了几乎所有真核生物物种基因组中最丰富的重复序列。长阵列的卫星DNA单体形成密集排列的异染色质基因组室,也跨越功能重要的着丝粒位点。许多特定的特征可以归因于串联重复的基因组成分的进化。本章的重点是卫星dna的结构和进化动力学,以及它们构成的基因组区域快速变化的潜在分子机制。卫星DNA的单体序列通过分子驱动过程协同进化,在该过程中突变在基因组中均质化并在群体中固定。这一过程导致生殖隔离的生物群体中卫星序列的分化。然而,一些卫星DNA序列在漫长的进化过程中是保守的。由于基因组中存在许多卫星DNA,物种特异性卫星DNA组成的进化可以通过一组物种共同的卫星序列文库中的拷贝数变化来指导。这些卫星dna有两个重要特征:长时间序列保守性,同时,易于通过拷贝数改变而快速变化。序列保守性可以通过诸如对卫星DNA分子的功能基序和/或结构特征施加的约束而增强。这些特征可以限制能够在基因组中持续存在的序列的选择,并可以指导跨越功能着丝粒的卫星dna的进化过程。
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Satellite DNA evolution.

Satellite DNAs represent the most abundant fraction of repetitive sequences in genomes of almost all eukaryotic species. Long arrays of satellite DNA monomers form densely packed heterochromatic genome compartments and also span over the functionally important centromere locus. Many specific features can be ascribed to the evolution of tandemly repeated genomic components. This chapter focuses on the structural and evolutionary dynamics of satellite DNAs and the potential molecular mechanisms responsible for rapid changes of the genomic areas they constitute. Monomer sequences of a satellite DNA evolve concertedly through a process of molecular drive in which mutations are homogenized in a genome and fixed in a population. This process results in divergence of satellite sequences in reproductively isolated groups of organisms. However, some satellite DNA sequences are conserved over long evolutionary periods. Since many satellite DNAs exist in a genome, the evolution of species-specific satellite DNA composition can be directed by copy number changes within a library of satellite sequences common for a group of species. There are 2 important features of these satellite DNAs: long time sequence conservation and, at the same time, proneness to rapid changes through copy number alterations. Sequence conservation may be enhanced by constraints such as those imposed on functional motifs and/or architectural features of a satellite DNA molecule. Such features can limit the selection of sequences able to persist in a genome, and can direct the evolutionary course of satellite DNAs spanning the functional centromeres.

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The evolutionary dynamics of transposable elements in eukaryote genomes. SINEs as driving forces in genome evolution. Unstable microsatellite repeats facilitate rapid evolution of coding and regulatory sequences. Satellite DNA evolution. Satellite DNA-mediated effects on genome regulation.
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