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基因枪介导的瞬时基因表达在植物免疫功能研究中的应用。

Gene Gun-Mediated Transient Gene Expression for Functional Studies in Plant Immunity.

机构信息

RWTH Aachen University, Institute for Biology I, Unit of Plant Molecular Cell Biology, Aachen, Germany.

出版信息

Methods Mol Biol. 2022;2523:63-77. doi: 10.1007/978-1-0716-2449-4_5.

Abstract

One major threat to plant cultivation are fungal pathogens, which can cause substantial yield losses in agriculture. As an example, cereal powdery mildew fungi such as the barley (Hordeum vulgare) pathogen, Blumeria graminis f. sp. hordei (Bgh), are among the ten most relevant fungal plant pathogens in molecular plant pathology and can lead to yield losses of up to 30%. Plant Mildew resistance Locus O (MLO) genes are required for successful colonization of plants by powdery mildew fungi. Accordingly, loss-of-function mlo mutants confer durable resistance against powdery mildew fungi in many plant species. In the case of barley, mlo-based resistance has been used for more than 40 years in agriculture without powdery mildew fungi effectively overcoming this kind of immunity. However, the molecular basis of mlo resistance and function(s) of the transmembrane Mlo protein(s) are still incompletely understood. The generation of transgenic barley plants to study the plant immune response and the involvement of Mlo therein is time-consuming and challenging. Therefore, transient gene expression via gene gun-mediated particle bombardment became a popular, easy, and efficient tool to investigate different aspects of plant defense responses in barley. Since Bgh fails to penetrate leaf epidermal cells of mlo mutants, single-cell complementation upon biolistic transformation resulting in (over-)expression of Mlo can be used to characterize the Mlo protein functionally in vivo. In this chapter, we describe in detail the gene gun-mediated transient expression of Mlo in barley leaf epidermal cells followed by powdery mildew inoculation and the subsequent microscopic evaluation. However, gene gun-mediated transient gene expression may be also used to address other research questions or to transform the epidermal tissues of other plant organs and/or species.

摘要

一种对植物栽培的主要威胁是真菌病原体,它会导致农业中的大量产量损失。例如,谷物白粉病真菌,如大麦(Hordeum vulgare)病原体,布氏白粉菌(Blumeria graminis f. sp. hordei)(Bgh),是分子植物病理学中十大相关真菌植物病原体之一,可导致高达 30%的产量损失。植物白粉病抗性 Locus O(MLO)基因是白粉病真菌成功定殖植物所必需的。因此,功能丧失的 mlo 突变体在许多植物物种中赋予对白粉病真菌的持久抗性。在大麦的情况下,基于 mlo 的抗性已在农业中使用了 40 多年,而白粉病真菌并未有效地克服这种免疫。然而,mlo 抗性的分子基础和跨膜 Mlo 蛋白的功能仍不完全清楚。生成转基因大麦植物来研究植物免疫反应及其与 Mlo 的关系既耗时又具有挑战性。因此,通过基因枪介导的粒子轰击进行瞬时基因表达已成为一种流行、简单且高效的工具,可用于研究大麦中不同的植物防御反应。由于 Bgh 无法穿透 mlo 突变体的叶片表皮细胞,因此在生物弹转化后导致(过度)表达 Mlo 的单细胞互补可用于在体内对 Mlo 蛋白进行功能表征。在本章中,我们详细描述了基因枪介导的大麦叶片表皮细胞中 Mlo 的瞬时表达,随后进行白粉病接种和随后的显微镜评估。然而,基因枪介导的瞬时基因表达也可用于解决其他研究问题或转化其他植物器官和/或物种的表皮组织。

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