ArticleMobile DNA2024
Evolution of Einkorn wheat centromeres is driven by the mutualistic interplay of two LTR retrotransposons.
Article in Mobile DNA, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 13 papers.
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Who cites it
13 citing papers in PubMed.
- Hide and seek: de novo identification in sugar beet reveals impact of non-autonomous LTR retrotransposons.Mobile DNA · 2026Article
- Unveiling centromeric retrotransposon dynamics through a high-quality rye genome assembly.Nature communications · 2026Article
- Transposable element dynamics drive rapid evolution of centromere architecture in the Avena genus.Genome biology · 2026Article
- Telomere-to-telomere genome assembly and a mutant library empower functional genomics and genetic improvement in Cucurbita moschata.Plant communications · 2026Article
- Telomere-to-telomere genome assembly of Microsporidia sp. MB, a microsporidian symbiont of Anopheles coluzzii isolated from Burkina Faso.BMC genomics · 2026Article
- Host Factors Promoting the LTR Retrotransposon Life Cycle in Plant Cells: Current Knowledge and Future Directions.International journal of molecular sciences · 2025Review
- Development of wheat D genome-specific molecular markers based on subgenome-specific repeats.Chromosome research : an international journal on the molecular, supramolecular and evolutionary aspects of chromosome biology · 2025Article
- A reference metagenome sequence of the lichen Cladonia rangiformis.BMC biology · 2025Article
- Factors determining chromosomal localization of transposable elements in plants.Plant biology (Stuttgart, Germany) · 2025Review
- High-resolution genome assembly reveals retrotransposon-mediated centromere dynamics in rye.Genome biology · 2025Article
- Distinct evolutionary trajectories of subgenomic centromeres in polyploid wheat.Genome biology · 2025Article
- Dynamic patterns of repeats and retrotransposons in the centromeres of Humulus lupulus L.The New phytologist · 2025Article
- Controlling and controlled elements: highlights of the year in mobile DNA research.Mobile DNA · 2024Article
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8 authors.
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Abstract
backgroundCentromere function is highly conserved across eukaryotes, but the underlying centromeric DNA sequences vary dramatically between species. Centromeres often contain a high proportion of repetitive DNA, such as tandem repeats and/or transposable elements (TEs). Einkorn wheat centromeres lack tandem repeat arrays and are instead composed mostly of the two long terminal repeat (LTR) retrotransposon families RLG_Cereba and RLG_Quinta which specifically insert in centromeres. However, it is poorly understood how these two TE families relate to each other and if and how they contribute to centromere function and evolution.
resultsBased on conservation of diagnostic motifs (LTRs, integrase and primer binding site and polypurine-tract), we propose that RLG_Cereba and RLG_Quinta are a pair of autonomous and non-autonomous partners, in which the autonomous RLG_Cereba contributes all the proteins required for transposition, while the non-autonomous RLG_Quinta contributes GAG protein. Phylogenetic analysis of predicted GAG proteins showed that the RLG_Cereba lineage was present for at least 100 million years in monocotyledon plants. In contrast, RLG_Quinta evolved from RLG_Cereba between 28 and 35 million years ago in the common ancestor of oat and wheat. Interestingly, the integrase of RLG_Cereba is fused to a so-called CR-domain, which is hypothesized to guide the integrase to the functional centromere. Indeed, ChIP-seq data and TE population analysis show only the youngest subfamilies of RLG_Cereba and RLG_Quinta are found in the active centromeres. Importantly, the LTRs of RLG_Quinta and RLG_Cereba are strongly associated with the presence of the centromere-specific CENH3 histone variant. We hypothesize that the LTRs of RLG_Cereba and RLG_Quinta contribute to wheat centromere integrity by phasing and/or placing CENH3 nucleosomes, thus favoring their persistence in the competitive centromere-niche.
conclusionOur data show that RLG_Cereba cross-mobilizes the non-autonomous RLG_Quinta retrotransposons. New copies of both families are specifically integrated into functional centromeres presumably through direct binding of the integrase CR domain to CENH3 histone variants. The LTRs of newly inserted RLG_Cereba and RLG_Quinta elements, in turn, recruit and/or phase new CENH3 deposition. This mutualistic interplay between the two TE families and the plant host dynamically maintains wheat centromeres.
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