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解码可变剪接:植物生物胁迫抗性的关键因素

Decoding alternative splicing: A key player in plant biotic stress resistance.

作者信息

Zhu Jiayu, Guo Wenbin, Chen Jianping, Sun Zongtao

机构信息

State Key Laboratory for Quality and Safety of Agro-Products, Key Laboratory of Biotechnology in Plant Protection of MARA, Zhejiang Key Laboratory of Green Plant Protection, Institute of Plant Virology, Ningbo University, Ningbo, 315211, China.

Higentec Breeding Innovation (ZheJiang) Co. Ltd., Lishui, 323000, China.

出版信息

J Integr Plant Biol. 2025 Sep;67(9):2294-2319. doi: 10.1111/jipb.13951. Epub 2025 Jun 20.

Abstract

Alternative splicing (AS) is a crucial post-transcriptional mechanism in plants, significantly contributing to the diversification of biological processes and adaptive responses. Distinct splice isoforms are generated by exon skipping (ES), intron retention (IR) and other mechanisms, enabling plants to adapt to a range of biotic stresses, including those posed by bacteria, fungi and viruses. Advances in bioinformatics have greatly improved the detection and characterization of AS events, revealing their critical roles in plant immunity. This review highlights the involvement of AS in regulating RNA interference (RNAi), hormone signaling pathways, and immune responses such as pattern-triggered immunity (PTI) and effector-triggered immunity (ETI). In addition, pathogens exploit AS to produce effectors that subvert plant immunity. Beyond its role in natural immunity, AS also holds promise for pesticide development, offering opportunities to enhance plant disease resistance by targeting pest-associated or immunity-related genes. Future research on AS under biotic stress is expected to uncover novel regulatory mechanisms and provide new strategies for crop improvement and sustainable agriculture.

摘要

可变剪接(AS)是植物中一种关键的转录后机制,对生物过程的多样化和适应性反应有重大贡献。外显子跳跃(ES)、内含子保留(IR)和其他机制产生不同的剪接异构体,使植物能够适应一系列生物胁迫,包括由细菌、真菌和病毒造成的胁迫。生物信息学的进展极大地改善了对AS事件的检测和表征,揭示了它们在植物免疫中的关键作用。本综述强调了AS在调节RNA干扰(RNAi)、激素信号通路以及模式触发免疫(PTI)和效应子触发免疫(ETI)等免疫反应中的作用。此外,病原体利用AS产生破坏植物免疫的效应子。除了在天然免疫中的作用外,AS在农药开发方面也有前景,通过靶向害虫相关或免疫相关基因提供增强植物抗病性的机会。预计未来在生物胁迫下对AS的研究将揭示新的调控机制,并为作物改良和可持续农业提供新策略。

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