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ABSTRACT Recently, it was proposed that alternative splicing may act as a mechanism for opening |
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accelerated paths of evolution, by reducing negative selection pressure. What fraction of new gene features is |
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attributable to such a mechanism, and how can we assess whether they are biologically functional? To answer |
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these questions, we have analyzed metrics of very different types of evolutionary selection pressures (e.g. against |
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amino acid mutations (Ka/Ks); against mutations at synonymous sites (Ks); and for protein reading-frame |
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preservation: exons that are an exact multiple of 3nt in length can be spliced in or out without affecting the |
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downstream protein reading frame) to address this question via genome-wide analyses of human, chimpanzee, |
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mouse, and rat. These data show that alternative splicing relaxes Ka/Ks selection pressure up to seven-fold, but |
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intriguingly that this effect is accompanied by a strong increasein selection pressure against synonymous |
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mutations, which propagates into the adjacent intron, and correlates strongly with the alternative splicing level |
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observed for each exon. These effects are highly local to the alternatively spliced exon. Comparisons of these four |
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genomes consistently show an increase in the density of amino acid mutations (Ka) in alternatively spliced exons, |
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and a decrease in the density of synonymous mutations (Ks). This selection pressure against synonymous |
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mutations in alternatively spliced exons was accompanied in all four genomes by a striking increase in selection |
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pressure for protein reading-frame preservation, and both increased markedly with increasing evolutionary age. |
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Restricting our analysis to a subset of exons with strong evidence for biologically functional alternative splicing |
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produced identical results. Thus alternative splicing apparently can create evolutionary “hotspots” within a protein |
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sequence, and these events have evidently been selected for during mammalian evolution. Analysis of microarray |
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data for 3126 alternatively spliced exons across 10 mouse tissues generated by Pan and coworkers reveals that |
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frame-preserving exons are strongly associated with tissue-specific regulation of alternative splicing. Exons that |
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are alternatively spliced at uniformly high transcript inclusion levels or uniformly low levels show no preference for |
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protein frame-preservation. In contrast, alternatively spliced exons with dramatic changes of inclusion levels |
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across mouse tissues (referred to as “tissue-switched” exons) are both strikingly biased to be frame-preserving, |
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and are strongly conserved between human and mouse. |