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Yongming Chen

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Open access Jul 2026

A pangenome of tetraploid wheat reveals the genetic architecture underlying domestication and genomic diversity for breeding

Tetraploid wheat (Triticum turgidum L., BBAA), a key pasta crop, serves as an untapped genetic resource with rich genomic diversity for hexaploid bread wheat improvement. Here we de novo assembled 12 genomes spanning all 10 recognized tetraploid wheat (genome BBAA) subspecies, and a graph-based pangenome was constructed. Chromosome rearrangements drove subgenome asymmetry and shaped genomic divergence, with an average of 0.25 million structural variations per accession, predominantly attributable to transposon activity. Using 736 globally distributed tetraploid wheat accessions, we identified locally adapted subgroups with untapped breeding potential and discovered a novel retrotransposon‑induced loss‑of‑function Btr1-A allele responsible for convergent adaptation of non-brittle rachis. Genome-wide association studies identified 287 loci associated with 32 traits. A homeodomain-leucine zipper transcription factor HAT14-B that enhances both spikelet number and grain size was identified. This subspecies-wide pangenome enriches Triticeae AB subgenome resources and facilitates the discovery and application of agronomically important genetic variations. A pangenome of tetraploid wheat constructed from 12 de novo genome assemblies spanning 10 subspecies, integrating with whole-genome sequencing data, highlights genetic variation associated with agricultural traits.

Jianxin Bian, Guang Yang, Dong Xu et al. · 0 citations
Open access Jul 2026

Dissecting wheat epitranscriptome and proteome under salt stress characterizes an m6A reader gene vital for salinity adaptation

Abstract Soil salinization is a major abiotic stress limiting wheat production. Although transcriptional responses to salt stress are well-studied, the role of posttranscriptional regulation, particularly through RNA modifications, remains unclear in wheat (Triticum aestivum L.). Here, we present an integrated analysis of the early salt stress response using Nanopore direct RNA sequencing and quantitative proteomics. We generated genome-wide maps of N6-methyladenosine (m6A) modifications, concurrently profiling alternative polyadenylation events and poly(A) tail length dynamics. This multiomics approach characterizes coordinated epitranscriptomic reprogramming and enabled the construction of a regulatory network linking m6A marks to proteomic changes. Furthermore, we identified and functionally validated the putative m6A reader protein EVOLUTIONARILY CONSERVED C-TERMINAL REGION 5 (TaECT5) as a positive regulator of wheat salt tolerance. Our study provides a systems-level view of posttranscriptional regulation during salt stress in wheat and identifies potential targets for enhancing salt tolerance.

J. Zang, Qian Zhang, Yuyu Zhang et al. · 0 citations