ChnagG在异养蜗水杨酸代谢中5-水杨酸羟化酶的作用

IF 4.8 1区 农林科学 Q1 PLANT SCIENCES
Yadi Xu, He Wei, Haixiao Li, Fanli Zeng, Ning Liu, Zhiyan Cao, Jingao Dong
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引用次数: 0

摘要

水杨酸(SA)在植物对真菌病原体的防御策略中起着至关重要的作用。为了规避植物免疫,病原体利用水杨酸羟化酶等代谢酶降解SA,从而促进感染后的成功致病性。这一现象在异养蜗中未见报道。我们的研究表明,高浓度的SA可以抑制生长和孢子萌发;然而,在低于1 mM的浓度下,SA对C. heterostrophus的生长和孢子萌发没有显著影响,因为C. heterostrophus能够代谢外源SA。转录组和LC-MS分析表明,C. heterostrophus通过遗传酸(GA)途径代谢外源SA,涉及5-水杨酸羟化酶(ChnagG)等基因。ChnagG的原核表达证实了其将SA转化为GA的能力。此外,我们创建了ChnagG基因缺失和互补突变体,揭示了ChnagG影响黑素合成和致病性。真菌侵染过程中植物中SA信号通路的分析表明,ChnagG基因敲除突变体没有改变寄主玉米中SA的合成;然而,与野生型相比,它导致下游信号通路ZmPR1基因上调。这些结果表明,异角棘球虫通过SA代谢阻断玉米免疫信号通路,从而增强其侵染性和致病性。本研究为进一步阐明玉米与异花蓟马相互作用的机制奠定了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
ChnagG Plays the Role of 5-Salicylate Hydroxylase in the Gentisic Acid Pathway of Salicylic Acid Metabolism in Cochliobolus heterostrophus.

Salicylic acid (SA) plays a crucial role in the defence strategies of plants against fungal pathogens. To circumvent plant immunity, pathogens use metabolic enzymes such as salicylate hydroxylase to degrade SA, thereby facilitating successful pathogenicity after infection. This phenomenon has not been previously reported in Cochliobolus heterostrophus. Our study demonstrates that high concentrations of SA can inhibit both growth and spore germination; however, at concentrations below 1 mM, SA does not significantly impact the growth and spore germination of C. heterostrophus, which is capable of metabolising exogenously supplied SA. Transcriptome and LC-MS analyses indicated that C. heterostrophus metabolises exogenous SA via the gentisic acid (GA) pathway, involving genes such as 5-salicylate hydroxylase (ChnagG). Prokaryotic expression of ChnagG confirmed its ability to convert SA into GA. Additionally, we created ChnagG gene deletion and complementation mutants, revealing that ChnagG influences melanin synthesis and the pathogenicity of C. heterostrophus. Analysis of the SA signalling pathway in plants during fungal infection indicated that the ChnagG knockout mutant did not alter the synthesis of SA in its host maize; however, it led to the upregulation of the downstream signalling pathway ZmPR1 gene compared to the wild type. These findings suggest that C. heterostrophus obstructs the immune signalling pathway of maize through SA metabolism, thereby enhancing its infection and pathogenicity. This study lays the groundwork for further elucidating the mechanisms underlying the interaction between maize and C. heterostrophus.

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来源期刊
Molecular plant pathology
Molecular plant pathology 生物-植物科学
CiteScore
9.40
自引率
4.10%
发文量
120
审稿时长
6-12 weeks
期刊介绍: Molecular Plant Pathology is now an open access journal. Authors pay an article processing charge to publish in the journal and all articles will be freely available to anyone. BSPP members will be granted a 20% discount on article charges. The Editorial focus and policy of the journal has not be changed and the editorial team will continue to apply the same rigorous standards of peer review and acceptance criteria.
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