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来自黑麦 6RS 染色体的两个功能 CC-NBS-LRR 蛋白赋予小麦对年龄相关白粉病的不同抗性。

Two functional CC-NBS-LRR proteins from rye chromosome 6RS confer differential age-related powdery mildew resistance to wheat.

机构信息

Center for Agricultural Resources Research, Institute of Genetics and Developmental Biology, Chinese Academy of Sciences, Shijiazhuang, China.

School of Life Sciences, Jiangsu University, Zhenjiang, China.

出版信息

Plant Biotechnol J. 2024 Jan;22(1):66-81. doi: 10.1111/pbi.14165. Epub 2023 Aug 24.

Abstract

Rye (Secale cereale), a valuable relative of wheat, contains abundant powdery mildew resistance (Pm) genes. Using physical mapping, transcriptome sequencing, barley stripe mosaic virus-induced gene silencing, ethyl methane sulfonate mutagenesis, and stable transformation, we isolated and validated two coiled-coil, nucleotide-binding site and leucine-rich repeat (CC-NBS-LRR) alleles, PmTR1 and PmTR3, located on rye chromosome 6RS from different triticale lines. PmTR1 confers age-related resistance starting from the three-leaf stage, whereas its allele, PmTR3, confers typical all-stage resistance, which may be associated with their differential gene expression patterns. Overexpression in Nicotiana benthamiana showed that the CC, CC-NBS, and CC-LRR fragments of PMTR1 induce cell death, whereas in PMTR3 the CC and full-length fragments perform this function. Luciferase complementation imaging and pull-down assays revealed distinct interaction activities between the CC and NBS fragments. Our study elucidates two novel rye-derived Pm genes and their derivative germplasm resources and provides novel insights into the mechanism of age-related resistance, which can aid the improvement of resistance against wheat powdery mildew.

摘要

黑麦(Secale cereale)是小麦的一个有价值的近缘种,含有丰富的抗粉状叶斑病(Pm)基因。本研究利用物理作图、转录组测序、大麦黄花叶病毒诱导的基因沉默、甲基磺酸乙酯诱变和稳定转化等方法,从不同黑麦-小麦易位系中分离并验证了位于 6RS 染色体上的两个卷曲螺旋、核苷酸结合位点和富含亮氨酸重复序列(CC-NBS-LRR)等位基因 PmTR1 和 PmTR3。PmTR1 从三叶期开始表现出与年龄相关的抗性,而其等位基因 PmTR3 则表现出典型的全生育期抗性,这可能与其差异表达模式有关。在本氏烟中的过表达表明,PMTR1 的 CC、CC-NBS 和 CC-LRR 片段诱导细胞死亡,而在 PMTR3 中 CC 和全长片段具有此功能。荧光素酶互补成像和 pull-down 实验揭示了 CC 和 NBS 片段之间不同的相互作用活性。本研究阐明了两个新的黑麦来源的 Pm 基因及其衍生的种质资源,并为与年龄相关的抗性机制提供了新的见解,这有助于提高小麦抗粉状叶斑病的能力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4856/11373974/10d57d13f1ab/PBI-22-66-g005.jpg

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