线粒体tRNAs的补偿进化导航了低健康水平的山谷
Margarita V Meer1, Alexey S Kondrashov, Yael Artzy-Randrup
1Bioinformatics and Genomics Programme, Centre for Genomic Regulation, C/Dr Aiguader 88, Barcelona Biomedical Research Park Building, 08003 Barcelona, Spain.
Nature
|February 26, 2010
概括
进化血统可以通过补偿进化穿越健身谷. 这发生在哺乳动物线粒体tRNA中的罕见,中间变异中,这表明有害等位基因的同时固定是常见的.
科学领域:
- 进化生物学 进化生物学
- 分子进化分子进化
- 遗传学 是一个遗传学.
背景情况:
- 进化生物学中的一个关键问题是,血统是否可以克服低健身状态,达到更高的健身峰值.
- 健身景观说明了进化轨迹,山谷代表了有害的基因型.
研究的目的:
- 研究哺乳动物线粒体tRNA干区域中沃森-克里克开关的进化动态.
- 量化这些进化过渡期间与中间状态相关的健康成本.
主要方法:
- 在83种哺乳动物物种的互补tRNA位点对沃森-克里克核酸对替代 (AU/GC) 的分析.
- 估计适应性谷深度和分析人类群体中中间等位基因频率 (GU,AC).
- 检查线粒体tRNA中的替代相关性.
主要成果:
- 沃森-克里克交换机比中性替换要慢得多 (30-40倍).
- 中间GU和AC等位基因在人类群体中存在的频率很低.
- 对于这些开关,估计适应度大约为10-3到10-2的深度,AC中间体更有害.
结论:
- 哺乳动物线粒体tRNA的补偿进化通过罕见的,非固定中间变体进行.
- 这个过程的无处不在表明,单独有害的等位基因的同时固定是一种常见的分子进化机制.
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