The TaSOC1‐TaVRN1 module integrates photoperiod and vernalization signals to regulate wheat flowering

春化 生物 MADS箱 光周期性 基因 转录因子 遗传学 调节器 转录组 拟南芥 基因表达 植物 突变体
作者
Xumei Luo,Bingyan Liu,Li Xie,Ke Wang,Dengan Xu,Xiuling Tian,Lina Xie,Lingli Li,Xingguo Ye,Zhonghu He,Xianchun Xia,Liuling Yan,Shuanghe Cao
出处
期刊:Plant Biotechnology Journal [Wiley]
卷期号:22 (3): 635-649 被引量:5
标识
DOI:10.1111/pbi.14211
摘要

Summary Wheat needs different durations of vernalization, which accelerates flowering by exposure to cold temperature, to ensure reproductive development at the optimum time, as that is critical for adaptability and high yield. TaVRN1 is the central flowering regulator in the vernalization pathway and encodes a MADS‐box transcription factor (TF) that usually works by forming hetero‐ or homo‐dimers. We previously identified that TaVRN1 bound to an MADS‐box TF TaSOC1 whose orthologues are flowering activators in other plants. The specific function of TaSOC1 and the biological implication of its interaction with TaVRN1 remained unknown. Here, we demonstrated that TaSOC1 was a flowering repressor in the vernalization and photoperiod pathways by overexpression and knockout assays. We confirmed the physical interaction between TaSOC1 and TaVRN1 in wheat protoplasts and in planta , and further validated their genetic interplay. A Flowering Promoting Factor 1‐ like gene TaFPF1‐2B was identified as a common downstream target of TaSOC1 and TaVRN1 through transcriptome and chromatin immunoprecipitation analyses. TaSOC1 competed with TaVRT2, another MADS‐box flowering regulator, to bind to TaVRN1; their coding genes synergistically control TaFPF1‐2B expression and flowering initiation in response to photoperiod and low temperature. We identified major haplotypes of TaSOC1 and found that TaSOC1‐Hap1 conferred earlier flowering than TaSOC1‐Hap2 and had been subjected to positive selection in wheat breeding. We also revealed that wheat SOC1 family members were important domestication loci and expanded by tandem and segmental duplication events. These findings offer new insights into the regulatory mechanism underlying flowering control along with useful genetic resources for wheat improvement.
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