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Author

Nils Stein

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Open access Jul 2026

Comparative epigenomics across the barley pangenome links structural variation to regulatory genome function

Structural variants (SVs) are abundant in plant genomes and influence agronomic traits, yet their regulatory interpretation remains challenging. Here, we combine pangenome-wide profiling of DNA methylation and chromatin accessibility across 20 barley genotypes, complemented by histone modification and chromatin interaction data in a subset of 10 genotypes. Comparative analysis of genotype-specific epigenomes reveals a globally conserved DNA methylation landscape across the barley pangenome alongside extensive regulatory variability at orthologous genes. We show that SVs do not broadly remodel global chromatin landscapes but instead act through context-dependent rewiring of local regulatory interactions. Despite this epigenomic stability, SVs may contribute to gene expression changes via chromatin contacts. Tissue-specific chromatin accessibility demonstrates that SV effects depend on developmental context. Integrating chromatin state variation with SVs at key vernalization genes explains epigenetic contributions to growth habit diversity. Together, these results provide a framework for interpreting the regulatory consequences of structural variation in crop genomes.

Zihao Zhu, Erwang Chen, Pavla Navrátilová et al. · 0 citations
Open access Aug 2026

Unveiling centromeric retrotransposon dynamics through a high-quality rye genome assembly

Rye (Secale cereale L.) is an important cereal crop known for its high yield potential and tolerance to biotic and abiotic stresses. However, its large, repeat-rich, and heterozygous genome has posed challenges for assembly compared to related species such as wheat and barley. Here, we present a high-quality, chromosome-scale genome assembly of the inbred line Lo7, generated using PacBio HiFi, Oxford Nanopore, Hi-C, and BioNano technologies with the TRITEX pipeline. The resulting Lo7_V3 assembly spans 6.76 Gb with a contig N50 of 128 Mb, correcting previous misorientations and fully assembling all seven centromeres. Repetitive clusters containing rye-specific satellite sequences (pSc200 and pSc250) are contiguously assembled. Their chromosomal positions are validated using FISH. Centromeric retrotransposon analysis reveals RLG_Abia and RLG_Abigail as abundant, recently active elements, unlike in wheat. Collectively, the Lo7_V3 genome assembly provides an improved genomic resource for future genomic research in rye and related cereal species. The large, repeat-rich, and highly heterozygous rye (Secale cereale L.) genome has posed significant challenges for genome assembly. Here, the authors present an improved rye genome assembly and uncover unique retrotransposon organizations within its centromeres.

Erwang Chen, Carlotta Marie Wehrkamp, Srijan Jhingan et al. · 0 citations