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植物 NLR 免疫的激活和执行:生化视角。

Plant NLR immunity activation and execution: a biochemical perspective.

机构信息

Department of Plant-Microbe Interactions, Max-Planck Institute for Plant Breeding Research, Carl-von-Linné-Weg 10, 50829 Cologne, Germany.

Cologne-Düsseldorf Cluster of Excellence on Plant Sciences (CEPLAS), 40225 Düsseldorf, Germany.

出版信息

Open Biol. 2024 Jan;14(1):230387. doi: 10.1098/rsob.230387. Epub 2024 Jan 24.

Abstract

Plants deploy cell-surface and intracellular receptors to detect pathogen attack and trigger innate immune responses. Inside host cells, families of nucleotide-binding/leucine-rich repeat (NLR) proteins serve as pathogen sensors or downstream mediators of immune defence outputs and cell death, which prevent disease. Established genetic underpinnings of NLR-mediated immunity revealed various strategies plants adopt to combat rapidly evolving microbial pathogens. The molecular mechanisms of NLR activation and signal transmission to components controlling immunity execution were less clear. Here, we review recent protein structural and biochemical insights to plant NLR sensor and signalling functions. When put together, the data show how different NLR families, whether sensors or signal transducers, converge on nucleotide-based second messengers and cellular calcium to confer immunity. Although pathogen-activated NLRs in plants engage plant-specific machineries to promote defence, comparisons with mammalian NLR immune receptor counterparts highlight some shared working principles for NLR immunity across kingdoms.

摘要

植物利用细胞表面和细胞内受体来检测病原体的攻击,并触发先天免疫反应。在宿主细胞内,核苷酸结合/富含亮氨酸重复(NLR)蛋白家族作为病原体传感器或免疫防御输出和细胞死亡的下游介质,从而防止疾病的发生。已确立的 NLR 介导免疫的遗传基础揭示了植物采用的各种策略,以对抗快速进化的微生物病原体。NLR 激活的分子机制以及向控制免疫执行的成分传递信号的机制尚不清楚。在这里,我们回顾了植物 NLR 传感器和信号转导功能的最新蛋白质结构和生化见解。总的来说,这些数据表明,不同的 NLR 家族,无论是传感器还是信号转导器,如何基于核苷酸的第二信使和细胞内钙汇聚,赋予免疫功能。尽管植物中被病原体激活的 NLR 利用植物特有的机制来促进防御,但与哺乳动物 NLR 免疫受体对应物的比较突出了 NLR 免疫在不同生物界中一些共同的工作原理。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ed1d/10805603/b647ba66f59f/rsob230387f01.jpg

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