氨基酸重复与蛋白质的结构和进化。

Genome dynamics Pub Date : 2007-01-01 DOI:10.1159/000107607
M M Albà, P Tompa, R A Veitia
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引用次数: 37

摘要

许多蛋白质有重复或单氨基酸序列。一些重复扩增的致病性推动了蛋白质组学、基因组学和结构的探索,不仅在人类中,而且在许多其他生物中。其他类型的氨基酸重复结构表现出比同肽更复杂的模式。不论其精确组织,重复序列被定义为低复杂性或简单序列,因为一个或几个残基特别丰富。与真核生物相比,原核生物的简单序列频率相对较低。在后者中,含有均聚体的蛋白质的百分比在不同的组中差别很大。例如,在脊椎动物中,哺乳动物的氨基酸重复频率比两栖动物、鸟类或鱼类高得多。对于某些重复序列,这与含有相应基因的区域的gc丰富度相关。同肽往往出现在转录因子或发育蛋白的紊乱区域。它们可以触发蛋白质聚集体的形成,特别是在“疾病”蛋白质中。简单的序列似乎比蛋白质/基因的其他部分进化得更快,并可能对功能产生影响。因此,它们是促进快速进化变化的良好候选者。所有这些不同方面的均聚体运行探讨在这篇综述。
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Amino acid repeats and the structure and evolution of proteins.

Many proteins have repeats or runs of single amino acids. The pathogenicity of some repeat expansions has fueled proteomic, genomic and structural explorations of homopolymeric runs not only in human but in a wide variety of other organisms. Other types of amino acid repetitive structures exhibit more complex patterns than homopeptides. Irrespective of their precise organization, repetitive sequences are defined as low complexity or simple sequences, as one or a few residues are particularly abundant. Prokaryotes show a relatively low frequency of simple sequences compared to eukaryotes. In the latter the percentage of proteins containing homopolymeric runs varies greatly from one group to another. For instance, within vertebrates, amino acid repeat frequency is much higher in mammals than in amphibians, birds or fishes. For some repeats, this is correlated with the GC-richness of the regions containing the corresponding genes. Homopeptides tend to occur in disordered regions of transcription factors or developmental proteins. They can trigger the formation of protein aggregates, particularly in 'disease' proteins. Simple sequences seem to evolve more rapidly than the rest of the protein/gene and may have a functional impact. Therefore, they are good candidates to promote rapid evolutionary changes. All these diverse facets of homopolymeric runs are explored in this review.

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