Aufrecht Jayde A, Ryan Jennifer M, Hasim Sahar, Allison David P, Nebenführ Andreas, Doktycz Mitchel J, Retterer Scott T
Bredesen Center for Interdisciplinary Research and Graduate Education, University of Tennessee; Bioscience Division and Center for Nanophase Materials Sciences, Oak Ridge national Laboratory.
Department of Biochemistry and Cellular and Molecular Biology, University of Tennessee.
J Vis Exp. 2017 Aug 15(126):55971. doi: 10.3791/55971.
Root hairs increase root surface area for better water uptake and nutrient absorption by the plant. Because they are small in size and often obscured by their natural environment, root hair morphology and function are difficult to study and often excluded from plant research. In recent years, microfluidic platforms have offered a way to visualize root systems at high resolution without disturbing the roots during transfer to an imaging system. The microfluidic platform presented here builds on previous plant-on-a-chip research by incorporating a two-layer device to confine the Arabidopsis thaliana main root to the same optical plane as the root hairs. This design enables the quantification of root hairs on a cellular and organelle level and also prevents z-axis drifting during the addition of experimental treatments. We describe how to store the devices in a contained and hydrated environment, without the need for fluidic pumps, while maintaining a gnotobiotic environment for the seedling. After the optical imaging experiment, the device may be disassembled and used as a substrate for atomic force or scanning electron microscopy while keeping fine root structures intact.
根毛增加了根的表面积,有助于植物更好地吸收水分和养分。由于根毛体积小,且常被自然环境遮挡,其形态和功能难以研究,在植物研究中也常被忽视。近年来,微流控平台提供了一种在不干扰根系转移至成像系统的情况下,以高分辨率可视化根系的方法。本文介绍的微流控平台是在先前的植物芯片研究基础上构建的,它采用了两层装置,将拟南芥主根限制在与根毛相同的光学平面上。这种设计能够在细胞和细胞器水平上对根毛进行定量分析,并且在添加实验处理时防止z轴漂移。我们描述了如何将这些装置保存在封闭且湿润的环境中,无需流体泵,同时为幼苗维持无菌环境。光学成像实验完成后,该装置可以拆卸,并用作原子力显微镜或扫描电子显微镜的样本载体,同时保持精细的根系结构完整。