Graduate School of Bioagricultural Sciences, Nagoya University, Nagoya 464-8601, Japan.
Key Laboratory of Horticultural Plant Biology, Huazhong Agricultural University, Wuhan 430070, China.
J Exp Bot. 2022 Dec 8;73(22):7312-7325. doi: 10.1093/jxb/erac352.
Fruit shape is an important trait that attracts consumers, and the regulation of genes related to cell division is crucial for shaping multicellular organs. In Arabidopsis, MYB3R transcription factors, which harbor three imperfect repeats in the N-terminus, control organ growth by regulating cell division. However, the function of MYB3Rs in tomato remains unknown. Here, we characterized tomato SlMYB3R3, which was preferentially expressed in flowers and placed in a subclade with two Arabidopsis cell cycle suppressors (MYB3R3/5). slmyb3r3 knockout mutants were generated using the CRISPR/Cas9 system. Morphological observation of the slmyb3r3 mutants showed that fruits that were elongated and occasionally peanut-like in shape were formed, which was caused by significantly increased cell numbers in the longitudinal direction. Transcriptome and yeast one-hybrid assay results suggested that SlMYB3R3 acted as a suppressor of cell-cycle-related genes by binding to the mitosis-specific activator (MSA) motifs in their promoters. Taken together, knock out of the suppressor SlMYB3R3 leads to elongated fruit, which results from the altered cell division pattern at the ovary stage, by regulating cell-cycle-related genes in an MSA-dependent manner. Our results suggest that SlMYB3R3 and its orthologs have the potential to change fruit shape as part of the molecular breeding of fruit crops.
果实形状是吸引消费者的一个重要特征,而与细胞分裂相关的基因的调控对于多细胞器官的形成至关重要。在拟南芥中,含有三个不完全重复的 N 端的 MYB3R 转录因子通过调节细胞分裂来控制器官的生长。然而,MYB3R 在番茄中的功能尚不清楚。在这里,我们对番茄 SlMYB3R3 进行了表征,该基因在花中优先表达,并与两个拟南芥细胞周期抑制物(MYB3R3/5)位于一个亚科中。利用 CRISPR/Cas9 系统生成了 slmyb3r3 敲除突变体。 slmyb3r3 突变体的形态观察表明,果实伸长,偶尔呈花生状,这是由于纵向细胞数量显著增加所致。转录组和酵母单杂交实验结果表明,SlMYB3R3 通过结合其启动子中与有丝分裂特异性激活物(MSA)基序,作为细胞周期相关基因的抑制物发挥作用。综上所述,通过调节细胞周期相关基因的表达,抑制物 SlMYB3R3 的敲除导致果实伸长,这是由于在子房阶段细胞分裂模式的改变所致。我们的研究结果表明,SlMYB3R3 及其同源物有可能通过改变果实形状来作为果实作物分子育种的一部分。