Chavarría-Krauser Andrés, Nagel Kerstin A, Palme Klaus, Schurr Ulrich, Walter Achim, Scharr Hanno
ICG-3 (Phytosphäre), Forschungszentrum Jülich, D-52425 Jülich, Germany.
Institut für Angewandte Mathematik, Universität Heidelberg, INF 294, D-69120 Heidelberg, Germany.
New Phytol. 2008;177(3):811-821. doi: 10.1111/j.1469-8137.2007.02299.x. Epub 2007 Dec 5.
Differential growth processes in root and shoot growth zones are governed by the transport kinetics of auxin and other plant hormones. While gene expression and protein localization of hormone transport facilitators are currently being unraveled using state-of-the-art techniques of live cell imaging, the quantitative analysis of growth reactions is lagging behind because of a lack of suitable methods. A noninvasive technique, based on digital image sequence processing, for visualizing and quantifying highly resolved spatio-temporal root growth processes was applied in the model plant Arabidopsis thaliana and was adapted to provide precise information on differential curvature production activity within the root growth zone. Comparison of root gravitropic curvature kinetics in wild-type and mutant plants altered in a facilitator for auxin translocation allowed the determination of differences in the location and in the temporal response of curvature along the growth zone between the investigated plant lines. The findings of the quantitative growth analysis performed here confirm the proposed action of the investigated transport facilitator. The procedure developed here for the investigation of differential growth processes is a valuable tool for characterizing the phenomenology of a wide range of shoot and root growth movements and hence facilitates elucidation of their molecular characterization.
根和茎生长区的差异生长过程受生长素和其他植物激素的运输动力学调控。虽然目前正在使用先进的活细胞成像技术来揭示激素运输促进因子的基因表达和蛋白质定位,但由于缺乏合适的方法,生长反应的定量分析仍滞后。一种基于数字图像序列处理的非侵入性技术,用于可视化和量化高度解析的时空根生长过程,已应用于模式植物拟南芥,并进行了改进,以提供根生长区内差异曲率产生活性的精确信息。通过比较野生型和生长素转运促进因子发生改变的突变体植物的根向重力性曲率动力学,确定了所研究植物系之间沿生长区曲率位置和时间响应的差异。此处进行的定量生长分析结果证实了所研究运输促进因子的作用机制。这里开发的用于研究差异生长过程的程序是表征各种茎和根生长运动现象学的宝贵工具,因此有助于阐明其分子特征。