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Organelle Genome Complexity Scales Positively with Organism Size in Volvocine Green Algae

机译:细胞器基因组复杂性与沃尔沃辛绿藻的生物体大小呈正比

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摘要

It has been argued that for certain lineages, noncoding DNA expansion is a consequence of the increased random genetic drift associated with long-term escalations in organism size. But a lack of data has prevented the investigation of this hypothesis in most plastid-bearing protists. Here, using newly sequenced mitochondrial and plastid genomes, we explore the relationship between organelle DNA noncoding content and organism size within volvocine green algae. By looking at unicellular, colonial, and differentiated multicellular algae, we show that organelle DNA complexity scales positively with species size and cell number across the volvocine lineage. Moreover, silent-site genetic diversity data suggest that the volvocine species with the largest cell numbers and most bloated organelle genomes have the smallest effective population sizes. Together, these findings support the view that nonadaptive processes, like random genetic drift, promote the expansion of noncoding regions in organelle genomes.
机译:有人认为,对于某些谱系,非编码DNA扩增是与生物体大小长期增加相关的随机遗传漂移增加的结果。但是,由于缺乏数据,大多数质体原生生物都无法研究这一假设。在这里,使用新测序的线粒体和质体基因组,我们探索了 volvocine 绿藻中细胞器 DNA 非编码含量与生物体大小之间的关系。通过观察单细胞、群落和分化的多细胞藻类,我们发现细胞器 DNA 复杂性随着物种大小和细胞数量在整个 volvocine 谱系中呈正向扩展。此外,沉默位点遗传多样性数据表明,细胞数量最多、细胞器基因组最臃肿的沃尔沃辛物种的有效种群规模最小。总之,这些发现支持了这样一种观点,即非适应性过程,如随机遗传漂移,促进细胞器基因组中非编码区域的扩增。

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