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Humidity assay for studying plant-pathogen interactions in miniature controlled discrete humidity environments with good throughput

机译:湿度测定法,用于在小型受控离散湿度环境中以良好的通量研究植物与病原体的相互作用

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摘要

This paper reports a highly economical and accessible approach to generate different discrete relative humidity conditions in spatially separated wells of a modified multi-well plate for humidity assay of plant-pathogen interactions with good throughput. We demonstrated that a discrete humidity gradient could be formed within a few minutes and maintained over a period of a few days inside the device. The device consisted of a freeway channel in the top layer, multiple compartmented wells in the bottom layer, a water source, and a drying agent source. The combinational effects of evaporation, diffusion, and convection were synergized to establish the stable discrete humidity gradient. The device was employed to study visible and molecular disease phenotypes of soybean in responses to infection by Phytophthora sojae, an oomycete pathogen, under a set of humidity conditions, with two near-isogenic soybean lines, Williams and Williams 82, that differ for a Phytophthora resistance gene (Rps1-k). Our result showed that at 63% relative humidity, the transcript level of the defense gene GmPR1 was at minimum in the susceptible soybean line Williams and at maximal level in the resistant line Williams 82 following P. sojae CC5C infection. In addition, we investigated the effects of environmental temperature, dimensional and geometrical parameters, and other configurational factors on the ability of the device to generate miniature humidity environments. This work represents an exploratory effort to economically and efficiently manipulate humidity environments in a space-limited device and shows a great potential to facilitate humidity assay of plant seed germination and development, pathogen growth, and plant-pathogen interactions. Since the proposed device can be easily made, modified, and operated, it is believed that this present humidity manipulation technology will benefit many laboratories in the area of seed science, plant pathology, and plant-microbe biology, where humidity is an important factor that influences plant disease infection, establishment, and development.
机译:本文报道了一种非常经济且易于使用的方法,可以在改进的多孔板的空间分隔的孔中生成不同的离散相对湿度条件,从而以良好的通量对植物-病原体相互作用进行湿度测定。我们证明了可以在几分钟内形成离散的湿度梯度,并在设备内部保持几天的时间。该设备由顶层的高速公路通道,底层的多个隔间井,水源和干燥剂源组成。蒸发,扩散和对流的组合效应被协同建立了稳定的离散湿度梯度。该设备用于研究在一定的湿度条件下,对卵菌病原体大豆疫霉的感染,大豆的可见和分子疾病表型,其中包括两个近等基因的大豆株Williams和Williams 82,这与疫霉菌有所不同抗性基因(Rps1-k)。我们的结果表明,在大豆疫霉CC5C感染后,在63%相对湿度下,防御基因GmPR1的转录水平在易感大豆系Williams中最低,而在抗性Williams 82中最高。此外,我们研究了环境温度,尺寸和几何参数以及其他配置因素对设备生成微型湿度环境的能力的影响。这项工作代表了在有限空间的设备中经济有效地控制湿度环境的探索性努力,并且显示了促进植物种子发芽和发育,病原体生长以及植物-病原体相互作用的湿度测定的巨大潜力。由于所提出的装置可以容易地制造,修改和操作,因此可以相信,目前的湿度控制技术将使种子科学,植物病理学和植物微生物生物学领域的许多实验室受益,在这些领域中,湿度是影响环境质量的重要因素。影响植物病害的感染,建立和发展。

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