Shih Han-Wei, DePew Cody L, Miller Nathan D, Monshausen Gabriele B
Department of Biology, Pennsylvania State University, University Park, PA 16802, USA.
Department of Botany, University of Wisconsin-Madison, Madison, WI 53706, USA.
Curr Biol. 2015 Dec 7;25(23):3119-25. doi: 10.1016/j.cub.2015.10.025. Epub 2015 Nov 19.
In plant roots, auxin inhibits cell expansion, and an increase in cellular auxin levels on the lower flanks of gravistimulated roots suppresses growth and thereby causes downward bending. These fundamental features of root growth responses to auxin were first described over 80 years ago, but our understanding of the underlying molecular mechanisms has remained scant. Here, we report that CYCLIC NUCLEOTIDE-GATED CHANNEL 14 (CNGC14) is essential for the earliest phase of auxin-induced ion signaling and growth inhibition in Arabidopsis roots. Using a fluorescence-imaging-based genetic screen, we found that cngc14 mutants exhibit a complete loss of rapid Ca(2+) and pH signaling in response to auxin treatment. Similarly impaired ion signaling was observed upon gravistimulation. We further developed a kinematic analysis approach to study dynamic root growth responses to auxin at high spatiotemporal resolution. These analyses revealed that auxin-induced growth inhibition and gravitropic bending are significantly delayed in cngc14 compared to wild-type roots, where auxin suppresses cell expansion within 1 min of treatment. Finally, we demonstrate that auxin-induced cytosolic Ca(2+) changes are required for rapid growth inhibition. Our results support a direct role for CNGC14-dependent Ca(2+) signaling in regulating the early posttranscriptional phase of auxin growth responses in Arabidopsis roots.
在植物根系中,生长素会抑制细胞扩张,重力刺激后根下部侧翼细胞内生长素水平的增加会抑制生长,从而导致向下弯曲。根系对生长素生长反应的这些基本特征早在80多年前就已被描述,但我们对其潜在分子机制的了解仍然很少。在此,我们报道环核苷酸门控通道14(CNGC14)对于拟南芥根中生长素诱导的离子信号传导和生长抑制的最早阶段至关重要。通过基于荧光成像的遗传筛选,我们发现cngc14突变体在生长素处理后表现出快速Ca(2+)和pH信号传导的完全丧失。在重力刺激下也观察到类似的离子信号受损。我们进一步开发了一种运动学分析方法,以高时空分辨率研究根系对生长素的动态生长反应。这些分析表明,与野生型根相比,cngc14中生长素诱导的生长抑制和向重力性弯曲显著延迟,在野生型根中,生长素在处理后1分钟内就会抑制细胞扩张。最后,我们证明生长素诱导的胞质Ca(2+)变化是快速生长抑制所必需的。我们的结果支持CNGC14依赖性Ca(2+)信号在调节拟南芥根中生长素生长反应的转录后早期阶段的直接作用。