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Qixin Sun

Publications and source records attributed to Qixin Sun.

2 recordsLinked to original sources

Epigenetic-epitranscriptomic crosstalk through TaHAG1-TaNSUN2 coordinates thermotolerance in wheat.

High temperature is a primary abiotic stress that severely constrains crop productivity. Deciphering the regulatory pathways underlying heat responses is essential for breeding heat-tolerant crops with stable yields. Although both epigenetic and epitranscriptomic regulations are involved in plant heat adaptation, their mechanistic interplay remains unclear. Here, integrated epigenomic (H3K9Ac/H3K14Ac) and transcriptomic profiling under heat stress identifies the mRNA m⁵C methyltransferase TaNSUN2 as a key regulator of thermotolerance in wheat. We demonstrate that TaNSUN2 is transcriptionally activated by the histone acetyltransferase TaHAG1, which deposits H3K9Ac at the TaNSUN2 promoter and transcription start site. This recruitment is facilitated by the transcription factors TaE2F1 and TaDP1, which interact with TaHAG1 to form a functional complex. Functional assays revealthat TaNSUN2 operates downstream of TaHAG1 and enhances thermotolerance through m⁵C‑dependent mRNA methylation and stabilization of transcripts involved in chloroplast organization. Furthermore, field trials show that TaNSUN2-overexpressing lines exhibit higher grain yield under normal conditions and reduced yield loss under heat stress. Our findings elucidate an integrated regulatory network linking histone acetylation to RNA m⁵C methylation in heat stress adaptation, providing promising targets for molecular breeding of heat‑resilient wheat.

Triticum

The TaCEP15 peptide signaling cascade modulates primary root length and drought tolerance in wheat.

Drought stress poses an environmental challenge affecting crop yield. Small signaling peptides play crucial roles in the regulation of stress responses in plants. Here, we unveil that the TaCEP15 peptide interacts with the leucine-rich repeat receptor-like kinase TaCEPRL. Knockout of TaCEP15 or TaCEPRL increases primary root length and enhances drought tolerance in wheat. TaCEPRL interacts with and phosphorylates TaSnRK1α, leading to the degradation of TaSnRK1α. The presence of TaCEP15 intensifies the phosphorylation and degradation of TaSnRK1α. Consistently, overexpressing TaSnRK1α boosts primary root elongation and augments drought tolerance. In addition, we identify the transcription factor TabZIP9, which binds to the TaCEP15 promoter and suppresses its transcription. A-to-T substitution in the TaCEP15 promoter decreases the binding affinity of TabZIP9. As expected, transgenic plants with TabZIP9 knockout or overexpression exhibit noteworthy changes in primary root length and drought tolerance. Our findings shed light on the importance of the peptide signaling pathway in regulating primary root length and responding to drought stress in wheat.

Triticum