State Key Laboratory of Crop Gene Resources and Breeding, Institute of Crop Science, Chinese Academy of Agricultural Sciences (CAAS), Beijing, 100081, China.
College of Agronomy, Qingdao Agricultural University, Qingdao, 266109, China; State Key Laboratory of Crop Gene Resources and Breeding, Institute of Crop Science, Chinese Academy of Agricultural Sciences (CAAS), Beijing, 100081, China.
Plant Physiol Biochem. 2024 Oct;215:109011. doi: 10.1016/j.plaphy.2024.109011. Epub 2024 Aug 8.
Phosphate deficiency and drought are significant environmental constraints that impact both the productivity and quality of wheat. The interaction between phosphorus and water facilitates their mutual absorption processes in plants. Under conditions of both phosphorus deficiency and drought stress, we observed a significant upregulation in the expression of wheat MYB-CC transcription factors through the transcriptome analysis. 52 TaMYB-CC genes in wheat were identified and analyzed their evolutionary relationships, structures, and expression patterns. The TaMYB-CC5 gene exhibited specific expression in roots and demonstrated significant upregulation under phosphorus deficiency and drought stress compared to other TaMYB-CC genes. The overexpression of TaMYB-CC5A in Arabidopsis resulted in a significant increase of root length under stress conditions, thereby enhancing tolerance to phosphate starvation and drought stress. The wheat lines with silenced TaMYB-CC5 genes exhibited reduced root length under stress conditions and increased sensitivity to phosphate deficiency and drought stress. In addition, silencing the TaMYB-CC5 genes resulted in altered phosphorus content in leaves but did not lead to a reduction in phosphorus content in roots. Enrichment analysis the co-expression genes of TaMYB-CC5 transcription factors, we found the zinc-induced facilitator-like (ZIFL) genes were prominent associated with TaMYB-CC5 gene. The TaZIFL1, TaZIFL2, and TaZIFL5 genes were verified specifically expressed in roots and regulated by TaMYB-CC5 transcript factor. Our study reveals the pivotal role of the TaMYB-CC5 gene in regulating TaZIFL genes, which is crucial for maintaining normal root growth under phosphorus deficiency and drought stress, thereby enhanced resistance to these abiotic stresses in wheat.
缺磷和干旱是影响小麦生产力和品质的重要环境限制因素。磷和水之间的相互作用促进了它们在植物中的相互吸收过程。在缺磷和干旱胁迫条件下,我们通过转录组分析观察到小麦 MYB-CC 转录因子的表达显著上调。在小麦中鉴定了 52 个 TaMYB-CC 基因,并分析了它们的进化关系、结构和表达模式。TaMYB-CC5 基因在根部特异性表达,与其他 TaMYB-CC 基因相比,在缺磷和干旱胁迫下表达显著上调。在拟南芥中过表达 TaMYB-CC5A 可显著增加胁迫条件下的根长,从而增强对磷饥饿和干旱胁迫的耐受性。沉默 TaMYB-CC5 基因的小麦品系在胁迫条件下根长变短,对缺磷和干旱胁迫的敏感性增加。此外,沉默 TaMYB-CC5 基因导致叶片磷含量改变,但根部磷含量并未降低。对 TaMYB-CC5 转录因子的共表达基因进行富集分析,我们发现锌诱导的 facilitator-like (ZIFL) 基因与 TaMYB-CC5 基因显著相关。TaZIFL1、TaZIFL2 和 TaZIFL5 基因在根部特异性表达,并受 TaMYB-CC5 转录因子调控。我们的研究揭示了 TaMYB-CC5 基因在调节 TaZIFL 基因中的关键作用,这对于维持正常的根生长在缺磷和干旱胁迫下至关重要,从而增强了小麦对这些非生物胁迫的抗性。