Landscape and evolutionary dynamics of Helitron transposons in plant genomes as well as construction of online database HelDB

IF 3.7 1区 生物学 Q1 Agricultural and Biological Sciences
Shu-Fen Li, Xin-Yu Zhang, Long-Long Yang, Ke-Li Jia, Jia-Rong Li, Li-Na Lan, Yu-Lan Zhang, Ning Li, Chuan-Liang Deng, Wu-Jun Gao
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Abstract

Helitron transposons play an important role in host genome evolution due to their ability to capture genes and regulatory elements. In this study, we developed a pipeline to identify and annotate Helitrons systematically from 358 plant and 178 animal high-quality genomes. All these data were organized into HelDB, a database where Helitrons can be explored with a user-friendly Web interface and related software. Based on these data, further analysis showed that the number or the cumulative length of Helitrons is positively correlated with genome size. Helitrons had experienced two expansion periods in plants, with the first occurring 20–30 Ma and peaking at approximately 24 Ma. The second expansion occurred in the last 4 million years. The expansions might be due to stimulation of paleogeographic environment. Detailed investigation of gene capture by Helitrons in Brassicaceae and Solanaceae plants showed that the captured genes showed diverse functions. Interestingly, metal ion binding function was enriched in these captured genes in most species. This phenomenon might be due to the need for binding of divalent metal ions to the Rep domain required for Helitron transposition. This study improves our knowledge of the landscape and evolution of Helitron transposons in plants and paves a way for further functional studies of this kind of transposable element.

Abstract Image

植物基因组中Helitron转座子的景观和进化动力学以及在线数据库HelDB的构建
Helitron转座子由于其捕获基因和调控元件的能力,在宿主基因组进化中发挥着重要作用。在这项研究中,我们开发了一条从358个植物和178个动物高质量基因组中系统识别和注释螺旋体的管道。所有这些数据都被组织到HelDB中,这是一个可以通过用户友好的Web界面和相关软件来探索Helitron的数据库。基于这些数据,进一步的分析表明螺旋体的数量或累积长度与基因组大小呈正相关。Helitron在植物中经历了两个扩张期,第一个发生在20-30 Ma,峰值约为24 马。第二次扩张发生在过去的四百万年里。扩张可能是由于古地理环境的刺激。对十字花科和茄科植物Helitron基因捕获的详细研究表明,捕获的基因具有多种功能。有趣的是,在大多数物种中,这些捕获的基因中都富集了金属离子结合功能。这种现象可能是由于需要将二价金属离子结合到Helitron转座所需的Rep结构域。这项研究提高了我们对Helitron转座子在植物中的景观和进化的认识,并为进一步研究这种转座子的功能铺平了道路。
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来源期刊
Journal of Systematics and Evolution
Journal of Systematics and Evolution Agricultural and Biological Sciences-Ecology, Evolution, Behavior and Systematics
CiteScore
7.40
自引率
8.10%
发文量
1368
审稿时长
6-12 weeks
期刊介绍: Journal of Systematics and Evolution (JSE, since 2008; formerly Acta Phytotaxonomica Sinica) is a plant-based international journal newly dedicated to the description and understanding of the biological diversity. It covers: description of new taxa, monographic revision, phylogenetics, molecular evolution and genome evolution, evolutionary developmental biology, evolutionary ecology, population biology, conservation biology, biogeography, paleobiology, evolutionary theories, and related subjects.
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