Pan-phylum genomes of hornworts reveal conserved autosomes but dynamic accessory and sex chromosomes

IF 15.8 1区 生物学 Q1 PLANT SCIENCES Nature Plants Pub Date : 2025-01-03 DOI:10.1038/s41477-024-01883-w
Peter Schafran, Duncan A. Hauser, Jessica M. Nelson, Xia Xu, Lukas A. Mueller, Samarth Kulshrestha, Isabel Smalley, Sophie de Vries, Iker Irisarri, Jan de Vries, Kevin Davies, Juan Carlos A. Villarreal, Fay-Wei Li
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Abstract

Hornworts, one of the three bryophyte phyla, show some of the deepest divergences in extant land plants, with some families separated by more than 300 million years. Previous hornwort genomes represented only one genus, limiting the ability to infer evolution within hornworts and their early land plant ancestors. Here we report ten new chromosome-scale genomes representing all hornwort families and most of the genera. We found that, despite the deep divergence, synteny was surprisingly conserved across all hornwort genomes, a pattern that might be related to the absence of whole-genome duplication. We further uncovered multiple accessory and putative sex chromosomes that are highly repetitive and CpG methylated. In contrast to autosomes, these chromosomes mostly lack syntenic relationships with one another and are evolutionarily labile. Notable gene retention and losses were identified, including those responsible for flavonoid biosynthesis, stomata patterning and phytohormone reception, which have implications in reconstructing the evolution of early land plants. Together, our pan-phylum genomes revealed an array of conserved and divergent genomic features in hornworts, highlighting the uniqueness of this deeply diverged lineage. This study presents 11 new hornwort (Anthocerotophyta) genomes that clarify the structure and evolution of sex and accessory chromosomes in bryophytes and shed new light on the early evolution of land plants.

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角苔属植物的泛门基因组显示出保守的常染色体和动态的辅助染色体和性染色体
作为三个苔藓植物门之一的角苔,在现存的陆地植物中表现出了一些最深的分歧,其中一些科的差异超过3亿年。以前的角苔基因组只代表一个属,限制了在角苔及其早期陆地植物祖先中推断进化的能力。在这里,我们报告了10个新的染色体尺度基因组,代表了所有角苔科和大多数属。我们发现,尽管存在深度差异,但所有角苔基因组的同音性令人惊讶地保守,这种模式可能与全基因组复制的缺失有关。我们进一步发现了多个辅助和假定的性染色体高度重复和CpG甲基化。与常染色体不同的是,这些染色体大多彼此之间缺乏共系关系,并且在进化上不稳定。我们发现了一些重要的基因保留和丢失,包括那些负责类黄酮生物合成、气孔模式和植物激素接收的基因,这对重建早期陆地植物的进化具有重要意义。总之,我们的泛门基因组揭示了角苔的一系列保守和不同的基因组特征,突出了这一深度分化谱系的独特性。
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来源期刊
Nature Plants
Nature Plants PLANT SCIENCES-
CiteScore
25.30
自引率
2.20%
发文量
196
期刊介绍: Nature Plants is an online-only, monthly journal publishing the best research on plants — from their evolution, development, metabolism and environmental interactions to their societal significance.
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