Tomato SlBES1.8 Influences Leaf Morphogenesis by Mediating Gibberellin Metabolism and Signaling.

Deding Su, Wei Xiang, Qin Liang, Ling Wen, Yuan Shi, Bangqian Song, Yudong Liu, Zhiqiang Xian, Zhengguo Li
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引用次数: 3

Abstract

Leaf morphogenetic activity determines its shape diversity. However, our knowledge of the regulatory mechanism in maintaining leaf morphogenetic capacity is still limited. In tomato, gibberellin (GA) negatively regulates leaf complexity by shortening the morphogenetic window. We here report a tomato BRI1-EMS-suppressor 1 transcription factor, SlBES1.8, that promoted the simplification of leaf pattern in a similar manner as GA functions. OE-SlBES1.8 plants exhibited reduced sensibility to exogenous GA3 treatment whereas showed increased sensibility to the application of GA biosynthesis inhibitor, paclobutrazol. In line with the phenotypic observation, the endogenous bioactive GA contents were increased in OE-SlBES1.8 lines, which certainly promoted the degradation of the GA signaling negative regulator, SlDELLA. Moreover, transcriptomic analysis uncovered a set of overlapping genomic targets of SlBES1.8 and GA, and most of them were regulated in the same way. Expression studies showed the repression of SlBES1.8 to the transcriptions of two GA-deactivated genes, SlGA2ox2 and SlGA2ox6, and one GA receptor, SlGID1b-1. Further experiments confirmed the direct regulation of SlBES1.8 to their promoters. On the other hand, SlDELLA physically interacted with SlBES1.8 and further inhibited its transcriptional regulation activity by abolishing SlBES1.8-DNA binding. Conclusively, by mediating GA deactivation and signaling, SlBES1.8 greatly influenced tomato leaf morphogenesis.

番茄SlBES1.8通过介导赤霉素代谢和信号传导影响叶片形态发生
叶片的形态发生活性决定了其形状多样性。然而,我们对维持叶片形态发生能力的调控机制的了解仍然有限。在番茄中,赤霉素(GA)通过缩短形态发生窗口负向调控叶片复杂性。我们在此报道了一个番茄bri1 - ems抑制因子1转录因子SlBES1.8,它以类似于GA功能的方式促进了叶片模式的简化。OE-SlBES1.8植株对外源GA3处理的敏感性降低,而对GA生物合成抑制剂多效唑的敏感性增加。表型观察表明,OE-SlBES1.8的内源生物活性GA含量增加,促进了GA信号负调控因子SlDELLA的降解。此外,转录组学分析揭示了SlBES1.8和GA的一组重叠的基因组靶点,并且大多数都以相同的方式调节。表达研究表明,SlBES1.8抑制了两个GA失活基因SlGA2ox2和SlGA2ox6以及一个GA受体SlGID1b-1的转录。进一步的实验证实了SlBES1.8对其启动子的直接调控。另一方面,SlDELLA与SlBES1.8发生物理相互作用,通过破坏SlBES1.8- dna结合进一步抑制SlBES1.8的转录调控活性。综上所述,SlBES1.8通过介导GA失活和信号转导,对番茄叶片形态发生有较大影响。
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