ArticlePlant biotechnology journal2024
Light control of three-dimensional chromatin organization in soybean.
Article in Plant biotechnology journal, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 7 papers.
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Who cites it
7 citing papers in PubMed.
- Integrated Comparative Genomics and Population Genomics Reveal the Genomic and Epigenomic Basis of Barley (Plants (Basel, Switzerland) · 2026Article
- Power-law penalties correct distance bias in single-cell co-accessibility and deep-learning chromatin interaction predictions.NAR genomics and bioinformatics · 2026Article
- A high-resolution 3D genome map of kiwifruit provides insights into chromatin architecture and transcriptional activity.Horticulture research · 2026Article
- DNA methylation contributes to plant acclimation to naturally fluctuating light.The New phytologist · 2025Article
- Epigenomics and Non-Coding RNAs in Soybean Adaptation to Abiotic Stresses.International journal of molecular sciences · 2025Review
- Dynamic 3D chromatin organization and epigenetic regulation of gene expression in peanut nodules.Journal of integrative plant biology · 2025Article
- The Association Between DNA Methylation and Three-Dimensional Genome During Whole Genome Doubling inPlants (Basel, Switzerland) · 2025Article
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Authors and funding
6 authors.
Funding
Abstract
Higher-order chromatin structure is critical for regulation of gene expression. In plants, light profoundly affects the morphogenesis of emerging seedlings as well as global gene expression to ensure optimal adaptation to environmental conditions. However, the changes and functional significance of chromatin organization in response to light during seedling development are not well documented. We constructed Hi-C contact maps for the cotyledon, apical hook and hypocotyl of soybean subjected to dark and light conditions. The resulting high-resolution Hi-C contact maps identified chromosome territories, A/B compartments, A/B sub-compartments, TADs (Topologically Associated Domains) and chromatin loops in each organ. We observed increased chromatin compaction under light and we found that domains that switched from B sub-compartments in darkness to A sub-compartments under light contained genes that were activated during photomorphogenesis. At the local scale, we identified a group of TADs constructed by gene clusters consisting of different numbers of Small Auxin-Upregulated RNAs (SAURs), which exhibited strict co-expression in the hook and hypocotyl in response to light stimulation. In the hypocotyl, RNA polymerase II (RNAPII) regulated the transcription of a SAURs cluster under light via TAD condensation. Our results suggest that the 3D genome is involved in the regulation of light-related gene expression in a tissue-specific manner.
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Registered trials
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