多倍体小麦亚基因组着丝粒的不同进化轨迹

IF 10.1 1区 生物学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Yuhong Huang, Yang Liu, Chang Liu, Congyang Yi, Jinsheng Lai, Hongqing Ling, Handong Su, Fangpu Han
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引用次数: 0

摘要

着丝粒在细胞分裂过程中对染色体的精确分离和维持基因组的稳定起着至关重要的作用。然而,它们的进化动力学,特别是在具有复杂基因组结构的多倍体生物中,在很大程度上仍然是谜。异源多倍体小麦具有明确的等级倍性序列和近期的多倍体化历史,是研究着丝粒进化的良好模型。在这项研究中,我们利用最新的综合参考基因组组装,对普通小麦及其相应祖先物种的着丝粒进行了系统的比较分析。我们的研究结果表明,小麦着丝粒主要由五种类型的着丝粒特异性反转录转座子元件(CRWs)组成,其中CRW1和CRW2最为普遍。我们在每个亚基因组的功能着丝粒中确定了不同的进化轨迹,其特征是拷贝数、插入年龄和CRW组成的变化。通过利用不同倍性水平的CENH3-ChIP数据,我们揭示了一系列CRW入侵事件,这些事件塑造了AA亚基因组着丝粒的进化。相反,DD亚基因组着丝粒的进化过程涉及它们从二倍体向六倍体的扩展,促进了对更大基因组环境的适应。整合完整的玉米着丝粒组装和陶氏虾泛基因组进一步揭示了亚基因组特异性着丝粒的进化轨迹。通过包括S2-S3代的合成六倍体,以及2x/6 ×自然加入,我们证明了DD亚基因组着丝粒扩增是一个渐进的进化过程,而不是对多倍体的直接反应。我们的研究提供了着丝粒适应、进化和成熟的全面图景,以及对逆转录转座子入侵如何驱动多倍体小麦着丝粒进化的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Distinct evolutionary trajectories of subgenomic centromeres in polyploid wheat
Centromeres are crucial for precise chromosome segregation and maintaining genome stability during cell division. However, their evolutionary dynamics, particularly in polyploid organisms with complex genomic architectures, remain largely enigmatic. Allopolyploid wheat, with its well-defined hierarchical ploidy series and recent polyploidization history, serves as an excellent model to explore centromere evolution. In this study, we perform a systematic comparative analysis of centromeres in common wheat and its corresponding ancestral species, utilizing the latest comprehensive reference genome assembly available. Our findings reveal that wheat centromeres predominantly consist of five types of centromeric-specific retrotransposon elements (CRWs), with CRW1 and CRW2 being the most prevalent. We identify distinct evolutionary trajectories in the functional centromeres of each subgenome, characterized by variations in copy number, insertion age, and CRW composition. By utilizing CENH3-ChIP data across various ploidy levels, we uncover a series of CRW invasion events that have shaped the evolution of AA subgenome centromeres. Conversely, the evolutionary process of the DD subgenome centromeres involves their expansion from diploid to hexaploid wheat, facilitating adaptation to a larger genomic context. Integration of complete einkorn centromere assemblies and Aegilops tauschii pan-genomes further revealed subgenome-specific centromere evolutionary trajectories. By inclusion of synthetic hexaploid from S2-S3 generations, alongside 2x/6 × natural accessions, we demonstrate that DD subgenome centromere expansion represents a gradual evolutionary process rather than an immediate response to polyploidization. Our study provides a comprehensive landscape of centromere adaptation, evolution, and maturation, along with insights into how retrotransposon invasions drive centromere evolution in polyploid wheat.
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来源期刊
Genome Biology
Genome Biology Biochemistry, Genetics and Molecular Biology-Genetics
CiteScore
21.00
自引率
3.30%
发文量
241
审稿时长
2 months
期刊介绍: Genome Biology stands as a premier platform for exceptional research across all domains of biology and biomedicine, explored through a genomic and post-genomic lens. With an impressive impact factor of 12.3 (2022),* the journal secures its position as the 3rd-ranked research journal in the Genetics and Heredity category and the 2nd-ranked research journal in the Biotechnology and Applied Microbiology category by Thomson Reuters. Notably, Genome Biology holds the distinction of being the highest-ranked open-access journal in this category. Our dedicated team of highly trained in-house Editors collaborates closely with our esteemed Editorial Board of international experts, ensuring the journal remains on the forefront of scientific advances and community standards. Regular engagement with researchers at conferences and institute visits underscores our commitment to staying abreast of the latest developments in the field.
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