丁香假单胞菌
茉莉酸
生物
水杨酸
猕猴桃
植物抗病性
猕猴桃
病菌
免疫
基因沉默
植物免疫
细胞生物学
脱落酸
NPR1
系统获得性抵抗
免疫系统
先天免疫系统
微生物学
栽培
调节器
转录因子
植物
基因表达调控
遗传学
灰葡萄孢菌
重编程
拟南芥
作者
Shunyuan Wu,Wenli Yue,Junyu Huang,Peipei Sun,Guanghui Zheng,Jing Xu,Hanyao Zhang,Faming Wang,Damin Chen,Xueren Yin,Yue Huang,Pu Liu
出处
期刊:Plant Journal
[Wiley]
日期:2026-03-01
卷期号:125 (5): e70775-e70775
摘要
MicroRNAs (miRNAs) are key regulators of plant growth, development, and immunity. However, their role in kiwifruit and other perennial fruit trees remains poorly characterized. Here, we demonstrate that Ac-miR156a functions as a negative regulator of kiwifruit resistance to Pseudomonas syringae pv. actinidiae (Psa). In the resistant cultivar "Jinkui," Ac-miR156a expression was significantly suppressed upon Psa infection, whereas it was markedly induced in the susceptible cultivar "Hongyang." Overexpression of miR156a increased kiwifruit susceptibility to Psa, while silencing miR156a via short-tandem target mimic (STTM) constructs enhanced resistance. We identified 14 SQUAMOSA-PROMOTER-BINDING PROTEIN-LIKE (SPL) transcription factors as direct targets of Ac-miR156a, among which AcSPL6c and AcSPL14c were rapidly upregulated in the resistant cultivar and shown to positively regulate immunity against Psa. Furthermore, we revealed that the Ac-miR156a-SPL module regulates kiwifruit immunity by reprogramming the hormonal levels between salicylic acid (SA) and jasmonic acid (JA) signaling pathways, favoring SA-dominated defense against the biotrophic pathogen Psa. Collectively, our study elucidates a complete Ac-miR156a-AcSPL6c/14c regulatory pathway that fine-tunes kiwifruit immune outcomes through hormonal redistribution, providing both mechanistic insights and potential genetic targets for improving disease resistance in kiwifruit breeding programs.
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