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果胶-FERONIA 复合物通过机械转导激活拟南芥 pavement 细胞形态发生中的 ROP6 GTP 酶信号转导。

Mechano-transduction via the pectin-FERONIA complex activates ROP6 GTPase signaling in Arabidopsis pavement cell morphogenesis.

机构信息

FAFU-UCR Joint Center for Horticultural Biology and Metabolomics Center, Haixia Institute of Science and Technology, Fujian Agriculture and Forestry University, Fuzhou, Fujian, China; Institute of Integrative Genome Biology and Department of Botany and Plant Sciences, University of California, Riverside, Riverside, CA 92521, USA.

Institute of Integrative Genome Biology and Department of Botany and Plant Sciences, University of California, Riverside, Riverside, CA 92521, USA.

出版信息

Curr Biol. 2022 Feb 7;32(3):508-517.e3. doi: 10.1016/j.cub.2021.11.031. Epub 2021 Dec 6.

Abstract

During growth and morphogenesis, plant cells respond to mechanical stresses resulting from spatiotemporal changes in the cell wall that bear high internal turgor pressure. Microtubule (MT) arrays are reorganized to align in the direction of maximal tensile stress, presumably reinforcing the local cell wall by guiding the synthesis of cellulose. However, how mechanical forces regulate MT reorganization remains largely unknown. Here, we demonstrate that mechanical signaling that is based on the Catharanthus roseus RLK1-like kinase (CrRLK1L) subfamily receptor kinase FERONIA (FER) regulates the reorganization of cortical MT in cotyledon epidermal pavement cells (PCs) in Arabidopsis. Recessive mutations in FER compromised MT responses to mechanical perturbations, such as single-cell ablation, compression, and isoxaben treatment, in these PCs. These perturbations promoted the activation of ROP6 guanosine triphosphatase (GTPase) that acts directly downstream of FER. Furthermore, defects in the ROP6 signaling pathway negated the reorganization of cortical MTs induced by these stresses. Finally, reduction in highly demethylesterified pectin, which binds the extracellular malectin domains of FER and is required for FER-mediated ROP6 activation, also impacted mechanical induction of cortical MT reorganization. Taken together, our results suggest that the FER-pectin complex senses and/or transduces mechanical forces to regulate MT organization through activating the ROP6 signaling pathway in Arabidopsis.

摘要

在生长和形态发生过程中,植物细胞会对外壁的时空变化所产生的机械应力做出响应,这种变化会导致细胞壁内部产生高渗透压。微管(MT)阵列会重新组织,以沿着最大拉伸应力的方向排列,这可能通过引导纤维素的合成来增强局部细胞壁。然而,机械力如何调节 MT 的重组在很大程度上仍然未知。在这里,我们证明了基于长春花 RLK1 样激酶(CrRLK1L)亚家族受体激酶 FERONIA(FER)的机械信号转导调节了拟南芥子叶表皮平铺细胞(PC)中皮质 MT 的重组。FER 的隐性突变削弱了 MT 对机械扰动的反应,例如单细胞消融、压缩和异恶唑啉处理。这些扰动促进了 ROP6 鸟嘌呤三磷酸酶(GTPase)的激活,ROP6 直接作用于 FER 的下游。此外,ROP6 信号通路的缺陷消除了这些应激诱导的皮质 MT 重组。最后,高度脱甲氧基果胶的减少也影响了皮质 MT 重组的机械诱导,该果胶与 FER 的细胞外甘露糖结合域结合,是 FER 介导的 ROP6 激活所必需的。总之,我们的结果表明,FER-果胶复合物通过激活 ROP6 信号通路来感知和/或转导机械力,从而调节拟南芥中 MT 的组织。

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