Graduate School of Life Sciences, Tohoku University, Sendai 980-8577, Miyagi, Japan.
Plant Physiol. 2011 Nov;157(3):1209-20. doi: 10.1104/pp.111.186270. Epub 2011 Sep 22.
Plant organ development is important for adaptation to a changing environment. Genetic and physiological studies have revealed that plant hormones play key roles in lateral root formation. In this study, we show that MIZU-KUSSEI1 (MIZ1), which was identified originally as a regulator of hydrotropism, functions as a novel regulator of hormonally mediated lateral root development. Overexpression of MIZ1 (MIZ1OE) in roots resulted in a reduced number of lateral roots being formed; however, this defect could be recovered with the application of auxin. Indole-3-acetic acid quantification analyses showed that free indole-3-acetic acid levels decreased in MIZ1OE roots, which indicates that alteration of auxin level is critical for the inhibition of lateral root formation in MIZ1OE plants. In addition, MIZ1 negatively regulates cytokinin sensitivity on root development. Application of cytokinin strongly induced the localization of MIZ1-green fluorescent protein to lateral root primordia, which suggests that the inhibition of lateral root development by MIZ1 occurs downstream of cytokinin signaling. Surprisingly, miz2, a weak allele of gnom, suppressed developmental defects in MIZ1OE plants. Taken together, these results suggest that MIZ1 plays a role in lateral root development by maintaining auxin levels and that its function requires GNOM activity. These data provide a molecular framework for auxin-dependent organ development in Arabidopsis (Arabidopsis thaliana).
植物器官发育对于适应不断变化的环境非常重要。遗传和生理学研究表明,植物激素在侧根形成中发挥着关键作用。在这项研究中,我们发现最初被鉴定为向水性调节剂的 MIZU-KUSSEI1(MIZ1),作为一种新型激素介导的侧根发育调节剂发挥作用。在根中过量表达 MIZ1(MIZ1OE)会导致侧根数量减少;然而,这种缺陷可以通过施加生长素来恢复。吲哚-3-乙酸定量分析表明,MIZ1OE 根中的游离吲哚-3-乙酸水平降低,这表明生长素水平的改变对于抑制 MIZ1OE 植物侧根形成至关重要。此外,MIZ1 负调控细胞分裂素对根发育的敏感性。细胞分裂素的应用强烈诱导 MIZ1-绿色荧光蛋白向侧根原基的定位,这表明 MIZ1 通过细胞分裂素信号转导抑制侧根发育。令人惊讶的是,gnom 的弱等位基因 miz2 抑制了 MIZ1OE 植物的发育缺陷。总之,这些结果表明,MIZ1 通过维持生长素水平在侧根发育中发挥作用,并且其功能需要 GNOM 活性。这些数据为拟南芥中生长素依赖性器官发育提供了分子框架。