All-Russia Research Institute of Agricultural Biotechnology, Moscow, 127550, Russia.
Moscow Institute of Physics and Technology, Dolgoprudny, 141701, Russia.
J Integr Plant Biol. 2023 Oct;65(10):2242-2261. doi: 10.1111/jipb.13555. Epub 2023 Sep 13.
Transposable element insertions (TEIs) are an important source of genomic innovation by contributing to plant adaptation, speciation, and the production of new varieties. The often large, complex plant genomes make identifying TEIs from short reads difficult and expensive. Moreover, rare somatic insertions that reflect mobilome dynamics are difficult to track using short reads. To address these challenges, we combined Cas9-targeted Nanopore sequencing (CANS) with the novel pipeline NanoCasTE to trace both genetically inherited and somatic TEIs in plants. We performed CANS of the EVADÉ (EVD) retrotransposon in wild-type Arabidopsis thaliana and rapidly obtained up to 40× sequence coverage. Analysis of hemizygous T-DNA insertion sites and genetically inherited insertions of the EVD transposon in the ddm1 (decrease in DNA methylation 1) genome uncovered the crucial role of DNA methylation in shaping EVD insertion preference. We also investigated somatic transposition events of the ONSEN transposon family, finding that genes that are downregulated during heat stress are preferentially targeted by ONSENs. Finally, we detected hypomethylation of novel somatic insertions for two ONSENs. CANS and NanoCasTE are effective tools for detecting TEIs and exploring mobilome organization in plants in response to stress and in different genetic backgrounds, as well as screening T-DNA insertion mutants and transgenic plants.
转座元件插入(TEIs)是基因组创新的重要来源,通过促进植物适应、物种形成和新品种的产生。由于植物基因组通常较大且复杂,因此从短读长中识别 TEIs 既困难又昂贵。此外,反映移动组动力学的罕见体细胞插入也很难使用短读长进行跟踪。为了解决这些挑战,我们结合 Cas9 靶向纳米孔测序(CANS)和新型 NanoCasTE 管道来追踪植物中的遗传继承和体细胞 TEIs。我们对野生型拟南芥中的 EVADÉ(EVD)逆转录转座子进行了 CANS,快速获得了高达 40×的序列覆盖度。对半合子 T-DNA 插入位点和 ddm1(decrease in DNA methylation 1)基因组中 EVD 转座子遗传继承插入的分析揭示了 DNA 甲基化在塑造 EVD 插入偏好中的关键作用。我们还研究了 ONESN 转座子家族的体细胞转座事件,发现热应激期间下调的基因是 ONESN 优先靶向的。最后,我们检测到两个 ONESN 的新体细胞插入的低甲基化。CANS 和 NanoCasTE 是检测 TEIs 并探索植物在应对压力和不同遗传背景下的移动组组织、筛选 T-DNA 插入突变体和转基因植物的有效工具。