中心粒驱动可能会推动植物染色体和基因组大小的进化。

IF 3.6 2区 生物学 Q1 PLANT SCIENCES
Klára Plačková, Petr Bureš, Martin A Lysak, František Zedek
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引用次数: 0

摘要

背景:基因组大小受自然选择和遗传漂变的影响,多倍体和重复 DNA 序列会产生变异。我们推测,减数分裂过程中中心粒竞争加入功能配子的中心粒驱动也可能影响基因组和染色体的大小。这种竞争发生在不对称减数分裂中,即四个减数产物中只有一个成为配子。如果中心粒驱动影响了染色体大小的进化,那么它也可能影响多倍体后的二倍体化,在二倍体化过程中,多倍体基因组通过染色体重排(包括融合)被重组,使其功能更像二倍体。我们测试了与只进行对称减数分裂的植物品系相比,进行非对称减数分裂的植物品系是否会表现出更快的染色体大小进化,因为对称减数分裂的四个减数产物都会成为配子,从而缺乏中心粒驱动力。我们还研究了中心粒组蛋白 H3(CENH3)的正向选择是否在这些不对称系中更为频繁:我们分析了具有不同减数分裂模式的植物类群:裸子植物和被子植物的非对称模式,以及叶绿体植物、石蒜科植物和蕨类植物的对称模式。我们根据现有的 CENH3 基因序列和染色体大小数据选择物种。利用奥恩斯坦-乌伦贝克进化模型和系统进化回归,我们评估了这些支系中染色体大小的进化速度和 CENH3 的正选择频率:我们的分析表明,与对称支系相比,减数分裂不对称的支系对CENH3的正选择频率更高,染色体大小的进化速度也更快:我们的研究结果支持这样的假设:中心粒驱动加速了染色体和基因组大小的进化,并有可能影响多倍体后二倍体化的过程。我们提出的模型有助于解释染色体大小在对称类群(裸子植物、石蒜科植物和蕨类植物)中的稳定性及其在不对称类群(裸子植物和被子植物)中的可变性,为未来植物基因组进化研究奠定了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Centromere drive may propel the evolution of chromosome and genome size in plants.

Background: Genome size is influenced by natural selection and genetic drift acting on variations from polyploidy and repetitive DNA sequences. We hypothesized that centromere drive, where centromeres compete for inclusion in the functional gamete during meiosis, may also affect genome and chromosome size. This competition occurs in asymmetric meiosis, where only one of the four meiotic products becomes a gamete. If centromere drive influences chromosome size evolution, it may also impact post-polyploid diploidization, where a polyploid genome is restructured to function more like a diploid through chromosomal rearrangements, including fusions. We tested if plant lineages with asymmetric meiosis exhibit faster chromosome size evolution compared to those with only symmetric meiosis, which lack centromere drive as all four meiotic products become gametes. We also examined if positive selection on centromeric histone H3 (CENH3), a protein that can suppress centromere drive, is more frequent in these asymmetric lineages.

Methods: We analyzed plant groups with different meiotic modes: asymmetric in gymnosperms and angiosperms, and symmetric in bryophytes, lycophytes, and ferns. We selected species based on available CENH3 gene sequences and chromosome size data. Using Ornstein-Uhlenbeck evolutionary models and phylogenetic regressions, we assessed the rates of chromosome size evolution and the frequency of positive selection on CENH3 in these clades.

Results: Our analyses showed that clades with asymmetric meiosis have a higher frequency of positive selection on CENH3 and increased rates of chromosome size evolution compared to symmetric clades.

Conclusions: Our findings support the hypothesis that centromere drive accelerates chromosome and genome size evolution, potenatially also influencing the process of post-polyploid diploidization. We propose a model which in a single famework helps explain the stability of chromosome size in symmetric lineages (bryophytes, lycophytes, and ferns) and its variability in asymmetric lineages (gymnosperms and angiosperms), providing a foundation for future research in plant genome evolution.

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来源期刊
Annals of botany
Annals of botany 生物-植物科学
CiteScore
7.90
自引率
4.80%
发文量
138
审稿时长
3 months
期刊介绍: Annals of Botany is an international plant science journal publishing novel and rigorous research in all areas of plant science. It is published monthly in both electronic and printed forms with at least two extra issues each year that focus on a particular theme in plant biology. The Journal is managed by the Annals of Botany Company, a not-for-profit educational charity established to promote plant science worldwide. The Journal publishes original research papers, invited and submitted review articles, ''Research in Context'' expanding on original work, ''Botanical Briefings'' as short overviews of important topics, and ''Viewpoints'' giving opinions. All papers in each issue are summarized briefly in Content Snapshots , there are topical news items in the Plant Cuttings section and Book Reviews . A rigorous review process ensures that readers are exposed to genuine and novel advances across a wide spectrum of botanical knowledge. All papers aim to advance knowledge and make a difference to our understanding of plant science.
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