双向双流根芯片用于植物初生根在不对称胁迫下的生理分析。

Claudia Allan, Blake Elliot, Volker Nock, Claudia-Nicole Meisrimler
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摘要

由于技术上的限制,迄今为止的研究主要集中在非生物和生物应激信号分子在植物地上器官中的作用,包括整个茎、茎和叶。新的实验平台,包括双流rootchip (dfRC), PlantChip和RootArray已经将其扩展到植物根细胞分析。dfRC基于微流控平台在尖端生长的生物上进行流形和力传感,进一步扩展为双向双流rootchip (bi-dfRC),包含第二个相邻的入口/出口,实现对植物根系的双向不对称灌注处理(枝对根或根对茎)。本协议详细概述了bi-dfRC平台的设计和使用。芯片上的植物培养结合了引导根生长和控制主根暴露于溶质变化的方法。表面处理对根系生长和防御信号的影响可以通过响应非生物和生物胁迫或两者的组合效应来追踪。该协议特别强调了该平台在芯片上培养多种植物的能力,如拟南芥、烟芥和番茄茄。这表明,通过简单地改变bi-dfRC的尺寸,可以在微流体下研究具有不同主根大小的理想植物物种。Stanley等人(2018a)开发的方法的扩展,用于研究响应局部治疗的防御信号的方向性。微流控平台的描述,允许培养的植物原根长达40毫米长,550 μm宽,500 μm高。用聚乙烯吡咯烷酮(PVP)处理,永久保留部分疏水性的双dfrc微通道的亲水性,使其能够与表面敏感的植物品系一起使用。新型油管阵列装置,配备可旋转阀门,用于切换处理试剂和定向,同时在bi-dfRC上进行实时成像。图形概述bi-dfRC制造、植株培养和根系生理分析设置的图形概述。(a)用于制作PDMS设备的光刻和复制成型示意图。(b)离片种子培养示意图,随后是4日龄植株在片上的继代培养。(c)显微镜和成像装置示意图,配备了介质输送系统,用于在不同条件下将不对称处理引入bi-dfRC微通道根生理分析。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Bi-directional Dual-flow-RootChip for Physiological Analysis of Plant Primary Roots Under Asymmetric Perfusion of Stress Treatments.

Due to technical limitations, research to date has mainly focused on the role of abiotic and biotic stress-signalling molecules in the aerial organs of plants, including the whole shoot, stem, and leaves. Novel experimental platforms including the dual-flow-RootChip (dfRC), PlantChip, and RootArray have since expanded this to plant-root cell analysis. Based on microfluidic platforms for flow stream shaping and force sensing on tip-growing organisms, the dfRC has further been expanded into a bi-directional dual-flow-RootChip (bi-dfRC), incorporating a second adjacent pair of inlets/outlet, enabling bi-directional asymmetric perfusion of treatments towards plant roots (shoot-to-root or root-to-shoot). This protocol outlines, in detail, the design and use of the bi-dfRC platform. Plant culture on chip is combined with guided root growth and controlled exposure of the primary root to solute changes. The impact of surface treatment on root growth and defence signals can be tracked in response to abiotic and biotic stress or the combinatory effect of both. In particular, this protocol highlights the ability of the platform to culture a variety of plants, such as Arabidopsis thaliana, Nicotiana benthamiana, and Solanum lycopersicum, on chip. It demonstrates that by simply altering the dimensions of the bi-dfRC, a broad application basis to study desired plant species with varying primary root sizes under microfluidics is achieved. Key features Expansion of the method developed by Stanley et al. (2018a) to study the directionality of defence signals responding to localised treatments. Description of a microfluidic platform allowing culture of plants with primary roots up to 40 mm length, 550 μm width, and 500 μm height. Treatment with polyvinylpyrrolidone (PVP) to permanently retain the hydrophilicity of partially hydrophobic bi-dfRC microchannels, enabling use with surface-sensitive plant lines. Description of novel tubing array setup equipped with rotatable valves for switching treatment reagent and orientation, while live-imaging on the bi-dfRC. Graphical overview Graphical overview of bi-dfRC fabrication, plantlet culture, and setup for root physiological analysis.(a) Schematic diagram depicting photolithography and replica molding, to produce a PDMS device. (b) Schematic diagram depicting seed culture off chip, followed by sub-culture of 4-day-old plantlets on chip. (c) Schematic diagram depicting microscopy and imaging setup, equipped with a media delivery system for asymmetric treatment introduction into the bi-dfRC microchannel root physiological analysis under varying conditions.

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