利用表达水平、高通量转化和大规模表型分析发现功能性nlr。

IF 13.6 1区 生物学 Q1 PLANT SCIENCES
Helen J Brabham, Inmaculada Hernández-Pinzón, Chizu Yanagihara, Noriko Ishikawa, Toshiyuki Komori, Oadi N Matny, Amelia Hubbard, Kamil Witek, Alexis Feist, Hironobu Numazawa, Phon Green, Antonín Dreiseitl, Naoki Takemori, Toshihiko Komari, Roger P Freedman, Brian Steffenson, H Peter van Esse, Matthew J Moscou
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引用次数: 0

摘要

保护作物免受病害对粮食安全所需的可持续农业系统至关重要。引入功能性抗性基因来增强植物的免疫系统对抗病性是非常有效的,但寻找新的免疫受体需要大量的资源。我们观察到,核苷结合域富亮氨酸重复序列(NLR)类的功能性免疫受体在单子叶植物和双子叶植物中均表现出高表达的特征。通过利用这一特征结合高通量转化,我们从不同的禾本科植物中获得了995个NLRs的小麦转基因序列,以鉴定小麦的新抗性基因。为了证实这一概念,我们发现了新的抗小麦茎秆锈病和小麦叶锈病的基因,这两种病原菌都是小麦生产的主要威胁。该管道有助于候选NLRs的快速鉴定,并提供植物抗性基因验证。从大量多样和非驯化植物物种的基因库中加速发现新的nlr将促进抗病作物的发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Discovery of functional NLRs using expression level, high-throughput transformation and large-scale phenotyping.

Protecting crops from diseases is vital for the sustainable agricultural systems that are needed for food security. Introducing functional resistance genes to enhance the plant immune system is highly effective for disease resistance, but identifying new immune receptors is resource intensive. We observed that functional immune receptors of the nucleotide-binding domain leucine-rich repeat (NLR) class show a signature of high expression in uninfected plants across both monocot and dicot species. Here, by exploiting this signature combined with high-throughput transformation, we generated a wheat transgenic array of 995 NLRs from diverse grass species to identify new resistance genes for wheat. Confirming this proof of concept, we identified new resistance genes against the stem rust pathogen Puccinia graminis f. sp. tritici and the leaf rust pathogen Puccinia triticina, both major threats to wheat production. This pipeline facilitates the rapid identification of candidate NLRs and provides in planta gene validation of resistance. The accelerated discovery of new NLRs from a large gene pool of diverse and non-domesticated plant species will enhance the development of disease-resistant crops.

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来源期刊
Nature Plants
Nature Plants PLANT SCIENCES-
CiteScore
25.30
自引率
2.20%
发文量
196
期刊介绍: Nature Plants is an online-only, monthly journal publishing the best research on plants — from their evolution, development, metabolism and environmental interactions to their societal significance.
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