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减数分裂、基因组和果蝇 yakuba 中交叉分布的进化特性。

Meiotic, genomic and evolutionary properties of crossover distribution in Drosophila yakuba.

机构信息

Interdisciplinary Program in Genetics, University of Iowa, Iowa City, Iowa, United States of America.

Department of Biology, University of Iowa, Iowa City, Iowa, United States of America.

出版信息

PLoS Genet. 2022 Mar 23;18(3):e1010087. doi: 10.1371/journal.pgen.1010087. eCollection 2022 Mar.

Abstract

The number and location of crossovers across genomes are highly regulated during meiosis, yet the key components controlling them are fast evolving, hindering our understanding of the mechanistic causes and evolutionary consequences of changes in crossover rates. Drosophila melanogaster has been a model species to study meiosis for more than a century, with an available high-resolution crossover map that is, nonetheless, missing for closely related species, thus preventing evolutionary context. Here, we applied a novel and highly efficient approach to generate whole-genome high-resolution crossover maps in D. yakuba to tackle multiple questions that benefit from being addressed collectively within an appropriate phylogenetic framework, in our case the D. melanogaster species subgroup. The genotyping of more than 1,600 individual meiotic events allowed us to identify several key distinct properties relative to D. melanogaster. We show that D. yakuba, in addition to higher crossover rates than D. melanogaster, has a stronger centromere effect and crossover assurance than any Drosophila species analyzed to date. We also report the presence of an active crossover-associated meiotic drive mechanism for the X chromosome that results in the preferential inclusion in oocytes of chromatids with crossovers. Our evolutionary and genomic analyses suggest that the genome-wide landscape of crossover rates in D. yakuba has been fairly stable and captures a significant signal of the ancestral crossover landscape for the whole D. melanogaster subgroup, even informative for the D. melanogaster lineage. Contemporary crossover rates in D. melanogaster, on the other hand, do not recapitulate ancestral crossovers landscapes. As a result, the temporal stability of crossover landscapes observed in D. yakuba makes this species an ideal system for applying population genetic models of selection and linkage, given that these models assume temporal constancy in linkage effects. Our studies emphasize the importance of generating multiple high-resolution crossover rate maps within a coherent phylogenetic context to broaden our understanding of crossover control during meiosis and to improve studies on the evolutionary consequences of variable crossover rates across genomes and time.

摘要

在减数分裂过程中,基因组之间交叉点的数量和位置受到高度调控,但控制这些交叉点的关键成分进化速度很快,这阻碍了我们对交叉率变化的机制原因和进化后果的理解。黑腹果蝇作为研究减数分裂的模式生物已有一个多世纪的历史,具有可用的高分辨率交叉图谱,但在密切相关的物种中却缺失,从而无法提供进化背景。在这里,我们应用了一种新颖且高效的方法,在 D. yakuba 中生成全基因组高分辨率交叉图谱,以解决多个问题,这些问题在适当的系统发育框架内综合考虑将受益,在我们的案例中是 D. melanogaster 物种亚组。对超过 1600 个个体减数分裂事件的基因分型使我们能够识别出相对于 D. melanogaster 的几个关键特性。我们表明,D. yakuba 除了比 D. melanogaster 具有更高的交叉率外,还具有比迄今为止分析的任何果蝇物种更强的着丝粒效应和交叉保证。我们还报告了 X 染色体上存在一种活跃的与交叉相关的减数分裂驱动机制,该机制导致带有交叉的染色单体优先包含在卵母细胞中。我们的进化和基因组分析表明,D. yakuba 中的全基因组交叉率景观相当稳定,并捕捉到了整个 D. melanogaster 亚组的祖先交叉率景观的重要信号,甚至对 D. melanogaster 谱系也有信息。另一方面,D. melanogaster 的当代交叉率不能再现祖先的交叉率景观。因此,D. yakuba 中观察到的交叉率时空稳定性使该物种成为应用选择和连锁遗传模型的理想系统,因为这些模型假设连锁效应在时间上是恒定的。我们的研究强调了在连贯的系统发育背景下生成多个高分辨率交叉率图谱的重要性,以拓宽我们对减数分裂过程中交叉控制的理解,并改善对基因组和时间上可变交叉率的进化后果的研究。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e678/8979470/81d247a536cd/pgen.1010087.g001.jpg

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