Instituto de Biología Molecular y Celular de Plantas, Consejo Superior de Investigaciones Científicas, Universidad Politécnica de Valencia (IBMCP-CSIC-UPV), Valencia, Spain.
Department of Botany and Plant Sciences, Institute for Integrative Genome Biology, University of California, Riverside, Riverside, CA, USA.
Methods Mol Biol. 2021;2213:113-121. doi: 10.1007/978-1-0716-0954-5_10.
Plant stress tolerance relies on intricate signaling networks that are not fully understood. Several plant hormones are involved in the adaptation to different environmental conditions. Abscisic acid (ABA) has an essential role in stress tolerance, especially in the adaptation to drought. During the last years, chemical genomics has gained attention as an alternative approach to decipher complex traits. Additionally, chemical-based strategies have been very useful to untangle genetic redundancy, which is hard to address by other approaches such as classical genetics. Here, we describe the use of an ABA-inducible luciferase (LUC) reporter line for the high-throughput identification of chemical activators of the ABA signaling pathway. In this assay, seven-day-old pMAPKKK18-LUC seedlings are grown on 96-well plates and treated with test compounds. Next, the activity of the LUC reporter is quantified semiautomatically by image analysis. Candidate compounds able to activate the reporter are thus identified and subjected to a secondary screen by analyzing their effect on ABA-related phenotypes (e.g., inhibition of seed germination). This assay is fast, high-throughput, nondestructive, semiquantitative and can be applied to any other luciferase reporter lines, making it ideal for forward chemical genetic screenings.
植物的应激耐受依赖于复杂的信号网络,这些网络尚未被完全理解。几种植物激素参与了对不同环境条件的适应。脱落酸(ABA)在应激耐受中起着至关重要的作用,尤其是在适应干旱方面。在过去几年中,化学基因组学作为一种破译复杂性状的替代方法引起了人们的关注。此外,基于化学的策略在解决遗传冗余方面非常有用,而遗传冗余是其他方法(如经典遗传学)难以解决的问题。在这里,我们描述了使用 ABA 诱导型荧光素酶(LUC)报告基因系进行高通量鉴定 ABA 信号通路化学激活剂的方法。在该测定中,将 7 天大的 pMAPKKK18-LUC 幼苗在 96 孔板上生长,并用测试化合物处理。然后,通过图像分析半自动定量 LUC 报告基因的活性。能够激活报告基因的候选化合物被鉴定出来,并通过分析它们对 ABA 相关表型(例如,抑制种子萌发)的影响进行二次筛选。该测定快速、高通量、非破坏性、半定量,可应用于任何其他荧光素酶报告基因系,非常适合正向化学遗传学筛选。