转录组学和遗传学方法表明,低光诱导的番茄疾病易感性与细胞氧化应激有关。

IF 7.6 Q1 GENETICS & HEREDITY
园艺研究(英文) Pub Date : 2023-08-29 eCollection Date: 2023-10-01 DOI:10.1093/hr/uhad173
Qian Luo, Jiao Wang, Ping Wang, Xiao Liang, Jianxin Li, Changqi Wu, Hanmo Fang, Shuting Ding, Shujun Shao, Kai Shi
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引用次数: 0

摘要

低光照强度对植物疾病爆发的影响是全球作物安全的一个重大挑战,因为它经常导致严重的产量损失。然而,人们对弱光对植物防御作用的潜在机制仍知之甚少。在这里,使用RNA-seq方法,我们发现番茄对丁香假单胞菌pv。番茄DC3000(Pst DC3000)在弱光条件下与氧化还原过程有关。低光照条件加剧了Pst DC3000诱导的活性氧(ROS)积累和蛋白质氧化。对抗坏血酸过氧化物酶2(APX2)和其他抗氧化酶的基因表达和酶活性的分析表明,在正常光照下接种Pst DC3000可显著诱导这些防御反应,而在弱光照下,这些基因及其相关酶活性对病原体接种无反应。此外,与接种Pst DC3000的正常光照条件相比,在低光照下,降低的抗坏血酸与脱氢抗坏血酸(AsA/DHA)的比率更低。此外,通过CRISPR-Cas9基因编辑方法产生的apx2突变体在弱光条件下对Pst DC3000更敏感。值得注意的是,这种增加的易感性可以通过外源性AsA处理显著降低。总之,我们的研究结果表明,低光诱导的疾病易感性与番茄植物细胞氧化应激的增加有关。这项研究揭示了光照条件、氧化应激和植物防御反应之间的复杂关系,并可能为改善弱光环境下的作物保护策略铺平道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Transcriptomic and genetic approaches reveal that low-light-induced disease susceptibility is related to cellular oxidative stress in tomato.

Transcriptomic and genetic approaches reveal that low-light-induced disease susceptibility is related to cellular oxidative stress in tomato.

Transcriptomic and genetic approaches reveal that low-light-induced disease susceptibility is related to cellular oxidative stress in tomato.

Transcriptomic and genetic approaches reveal that low-light-induced disease susceptibility is related to cellular oxidative stress in tomato.

The impact of low light intensities on plant disease outbreaks represents a major challenge for global crop security, as it frequently results in significant yield losses. However, the underlying mechanisms of the effect of low light on plant defense are still poorly understood. Here, using an RNA-seq approach, we found that the susceptibility of tomato to Pseudomonas syringae pv. tomato DC3000 (Pst DC3000) under low light was associated with the oxidation-reduction process. Low light conditions exacerbated Pst DC3000-induced reactive oxygen species (ROS) accumulation and protein oxidation. Analysis of gene expression and enzyme activity of ascorbate peroxidase 2 (APX2) and other antioxidant enzymes revealed that these defense responses were significantly induced by Pst DC3000 inoculation under normal light, whereas these genes and their associated enzyme activities were not responsive to pathogen inoculation under low light. Additionally, the reduced ascorbate to dehydroascorbate (AsA/DHA) ratio was lower under low light compared with normal light conditions upon Pst DC3000 inoculation. Furthermore, the apx2 mutants generated by a CRISPR-Cas9 gene-editing approach were more susceptible to Pst DC3000 under low light conditions. Notably, this increased susceptibility could be significantly reduced by exogenous AsA treatment. Collectively, our findings suggest that low-light-induced disease susceptibility is associated with increased cellular oxidative stress in tomato plants. This study sheds light on the intricate relationship between light conditions, oxidative stress, and plant defense responses, and may pave the way for improved crop protection strategies in low light environments.

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