Institute of Plant Sciences, University of Bern, Bern, Switzerland.
PLoS One. 2013;8(3):e57813. doi: 10.1371/journal.pone.0057813. Epub 2013 Mar 12.
How instructive signals are translated into robust and predictable changes in growth is a central question in developmental biology. Recently, much interest has centered on the feedback between chemical instructions and mechanical changes for pattern formation in development. In plants, the patterned arrangement of aerial organs, or phyllotaxis, is instructed by the phytohormone auxin; however, it still remains to be seen how auxin is linked, at the apex, to the biochemical and mechanical changes of the cell wall required for organ outgrowth. Here, using Atomic Force Microscopy, we demonstrate that auxin reduces tissue rigidity prior to organ outgrowth in the shoot apex of Arabidopsis thaliana, and that the de-methyl-esterification of pectin is necessary for this reduction. We further show that development of functional organs produced by pectin-mediated ectopic wall softening requires auxin signaling. Lastly, we demonstrate that coordinated localization of the auxin transport protein, PIN1, is disrupted in a naked-apex produced by increasing cell wall rigidity. Our data indicates that a feedback loop between the instructive chemical auxin and cell wall mechanics may play a crucial role in phyllotactic patterning.
信号如何被转化为生长的稳健且可预测的变化,这是发育生物学的一个核心问题。最近,人们对化学指令与机械变化之间的反馈在发育中的模式形成方面产生了浓厚的兴趣。在植物中,空中器官的模式排列,或叶序,由植物激素生长素指导;然而,生长素如何在顶端与细胞外基质的生化和机械变化相联系,以促进器官的生长,这仍然需要进一步研究。在这里,我们使用原子力显微镜(AFM)表明,生长素在拟南芥茎尖器官生长之前降低组织硬度,并且果胶的脱甲酯化对于这种降低是必要的。我们进一步表明,由果胶介导的异位壁软化产生的功能性器官的发育需要生长素信号。最后,我们证明,在通过增加细胞壁硬度产生的裸露顶端中,生长素运输蛋白 PIN1 的协调定位被破坏。我们的数据表明,在叶序模式形成中,生长素的指令性化学物质和细胞壁力学之间的反馈环可能起着至关重要的作用。