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SA和NHP的生物合成及其在植物SAR中的调控机制

Biosynthesis and regulation of salicylic acid and N-hydroxypipecolic acid in systemic acquired resistance

  • 摘要: 系统获得性抗性(Systemic acquired resistance,SAR)是一种能够诱导植物对病原体产生持久抗性的防御机制,由原发感染部位产生的移动信号触发植物免疫反应,可保护植物远端未感染的部分免受继发感染。水杨酸(Salicylic acid,SA)是植物体内一种核心免疫信号分子,对于基础防御和SAR至关重要。N-羟基哌啶酸(N-hydroxypipecolic acid,NHP)是最近发现的一种植物代谢产物,在SAR中也发挥着关键作用。在病原体感染后,这两种化合物的水平都急剧上升以诱导SAR。基于此,本文阐述了SA和NHP生物合成途径及其在植物局部防御和系统防御中的作用,重点详述了植物防御过程中SA-NHP如何协同调节SAR及SA、NHP作为系统免疫的移动调节因子诱导SAR,介绍了SA和NHP与其他信号分子在SAR中的互作机制,并对今后的研究方向进行了展望。

     

    Abstract: Systemic acquired resistance (SAR) is a defense mechanism that can induce plants to develop persistent resistance to pathogens. Local pathogen recognition generates mobile immune signals that trigger defense responses in distal, uninfected tissues and thereby establish whole-plant resistance. Salicylic acid (SA) is a central regulator of basal immunity and SAR, whereas N-hydroxypipecolic acid (NHP), a recently characterized plant metabolite, has emerged as a pivotal amplifier of systemic immune signaling. Pathogen infection triggers marked accumulation of both SA and NHP, indicating that these metabolites function as core components of the SAR regulatory network. This review summarizes the biosynthetic pathways of SA and NHP and their roles in local and systemic plant defense. Particular attention is given to the coordinated regulation of SAR by SA and NHP, the function of these metabolites as mobile or systemic immune regulators, and their interactions with other defense-related signaling molecules. This review aims to provide a theoretical basis for exploiting defense hormone pathways to improve crop disease resistance and develop environmentally sustainable strategies for pathogen control, with important implications for food security in China.

     

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