Tian Yanchen, Zhao Na, Wang Minmin, Zhou Wenying, Guo Jieqiong, Han Chao, Zhou Chuanen, Wang Wenfei, Wu Shuang, Tang Wenqiang, Fan Min, Bai Ming-Yi
The Key Laboratory of Plant Development and Environmental Adaptation Biology, Ministry of Education, School of Life Science, Shandong University, Qingdao, 266237, China.
College of Horticulture, College of Life Sciences, Hai xia Institute of Science and Technology, Fujian Agriculture and Forestry University, Fuzhou, 350002, China.
New Phytol. 2022 Jan;233(2):795-808. doi: 10.1111/nph.17824. Epub 2021 Nov 16.
The timing and extent of cell division are crucial for the correct patterning of multicellular organism. In Arabidopsis, root ground tissue maturation involves the periclinal cell division of the endodermis to generate two cell layers: endodermis and middle cortex. However, the molecular mechanism underlying this pattern formation remains unclear. Here, we report that phytohormone brassinosteroid (BR) and redox signal hydrogen peroxide (H O ) interdependently promote periclinal division during root ground tissue maturation by regulating the activity of SHORT-ROOT (SHR), a master regulator of root growth and development. BR-activated transcription factor BRASSINAZOLE RESISTANT1 (BZR1) directly binds to the promoter of SHR to induce its expression, and physically interacts with SHR to increase the transcripts of RESPIRATORY BURST OXIDASE HOMOLOGs (RBOHs) and elevate the levels of H O , which feedback enhances the interaction between BZR1 and SHR. Additionally, genetic analysis shows that SHR is required for BZR1-promoted periclinal division, and BZR1 enhances the promoting effects of SHR on periclinal division. Together, our finding reveals that the transcriptional module of BZR1-SHR fine-tunes periclinal division during root ground tissue maturation in response to hormone and redox signals.
细胞分裂的时间和程度对于多细胞生物体的正确模式形成至关重要。在拟南芥中,根基本组织成熟涉及内皮层的平周细胞分裂,以产生两层细胞:内皮层和中皮层。然而,这种模式形成背后的分子机制仍不清楚。在这里,我们报道植物激素油菜素类固醇(BR)和氧化还原信号过氧化氢(H₂O₂)通过调节根生长和发育的主要调节因子SHORT-ROOT(SHR)的活性,在根基本组织成熟过程中相互依赖地促进平周分裂。BR激活的转录因子BRASSINAZOLE RESISTANT1(BZR1)直接与SHR的启动子结合以诱导其表达,并与SHR发生物理相互作用以增加呼吸爆发氧化酶同源物(RBOHs)的转录本并提高H₂O₂的水平,这反过来增强了BZR1与SHR之间的相互作用。此外,遗传分析表明SHR是BZR1促进平周分裂所必需的,并且BZR1增强了SHR对平周分裂的促进作用。总之,我们的发现揭示了BZR1-SHR转录模块在根基本组织成熟过程中响应激素和氧化还原信号微调平周分裂。