Institute of Plant and Food Science, Department of Biology, Southern University of Science and Technology, Shenzhen 518055, China.
State Key Laboratory of Plant Physiology and Biochemistry, Department of Plant Sciences, College of Biological Sciences, China Agricultural University, Beijing 100193, China.
J Integr Plant Biol. 2018 Sep;60(9):864-877. doi: 10.1111/jipb.12666. Epub 2018 Jun 30.
Microtubule reorientation is a long-standing observation that has been implicated in regulating the inhibitory effect of ethylene on axial elongation of plant cells. However, the signaling mechanism underlying ethylene-induced microtubule reorientation has remained elusive. Here, we reveal, by live confocal imaging and kinetic root elongation assays, that the time courses of ethylene-induced microtubule reorientation and root elongation inhibition are highly correlated, and that microtubule reorientation is required for the full responsiveness of root elongation to ethylene treatment. Our genetic analysis demonstrated that the effect of ethylene on microtubule orientation and root elongation is mainly transduced through the canonical linear ethylene signaling pathway. By using pharmacological and genetic analyses, we demonstrate further that the TIR1/AFBs-Aux/IAAs-ARFs auxin signaling pathway, but not the ABP1-ROP6-RIC1 auxin signaling branch, is essential for ethylene-induced microtubule reorientation and root elongation inhibition. Together, these findings offer evidence for the functional significance and elucidate the signaling mechanism for ethylene-induced microtubule reorientation in fast root elongation inhibition in Arabidopsis.
微管重排是一个长期存在的观察结果,它被认为参与调节乙烯对植物细胞轴向伸长的抑制作用。然而,乙烯诱导的微管重排的信号机制仍然难以捉摸。在这里,我们通过活细胞共聚焦成像和动态根伸长测定揭示,乙烯诱导的微管重排和根伸长抑制的时间进程高度相关,并且微管重排是根伸长对乙烯处理完全响应所必需的。我们的遗传分析表明,乙烯对微管取向和根伸长的影响主要通过经典的线性乙烯信号通路传递。通过药理学和遗传分析,我们进一步证明,TIR1/AFBs-Aux/IAAs-ARFs 生长素信号通路,而不是 ABP1-ROP6-RIC1 生长素信号分支,对于乙烯诱导的微管重排和根伸长抑制是必不可少的。总之,这些发现为乙烯诱导的微管重排在拟南芥快速根伸长抑制中的功能意义提供了证据,并阐明了信号机制。