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首页> 外文期刊>BioEssays : >GC-biased gene conversion links the recombination landscape and demography to genomic base composition GC-biased gene conversion drives genomic base composition across a wide range of species
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GC-biased gene conversion links the recombination landscape and demography to genomic base composition GC-biased gene conversion drives genomic base composition across a wide range of species

机译:GC偏向的基因转换将重组图景和人口统计学与基因组基础组成联系起来GC偏向的基因转换驱动了广泛物种中的基因组基本组成

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摘要

The origin and evolutionary dynamics of the spatial heterogeneity in genomic base composition have been debated since its discovery in the 1970s. With the recent availability of numerous genome sequences from a wide range of species it has been possible to address this question from a comparative perspective, and similarities and differences in base composition between groups of organisms are becoming evident. Ample evidence suggests that the contrasting dynamics of base composition are driven by GC-biased gene conversion (gBGC), a process that is associated with meiotic recombination. In line with this hypothesis, base composition is associated with the rate of recombination and the evolutionary dynamics of the recombination landscape, therefore, governs base composition. In addition, and at first sight perhaps surprisingly, the relationship between demography and genomic base composition is in agreement with the gBGC hypothesis: organisms with larger populations have higher GC content than those with smaller populations.
机译:自从1970年代发现基因组基础组成中的空间异质性的起源和进化动力学以来,就一直存在争议。随着最近来自广泛物种的众多基因组序列的可用性,从比较的角度来解决这个问题成为可能,并且生物群之间碱基组成的相似性和差异变得显而易见。大量证据表明,碱基组成的对比动力学是由GC偏向基因转化(gBGC)驱动的,该过程与减数分裂重组相关。根据这一假设,碱基组成与重组率和重组态势的进化动力学相关,因此支配着碱基组成。此外,乍看之下,人口统计学与基因组基础组成之间的关系乍一看可能与gBGC假设相符:种群较大的生物比种群较小的生物具有更高的GC含量。

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