Inhibitory activity and antioomycete mechanism of citral against Phytophthora capsici

IF 4.2 1区 农林科学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Pesticide Biochemistry and Physiology Pub Date : 2024-08-02 DOI:10.1016/j.pestbp.2024.106067
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Abstract

The natural terpenoid citral has antifungal activity against multiple fungi, but its bioactivity against oomycetes is unclear. Therefore, this study investigated the antioomycete activity and mechanism of citral against Phytophthora capsici, a highly destructive invasive oomycete. Results showed that citral not only had a great inhibition on the mycelial growth of P. capsici (EC50 = 94.15 mg/L), but also had a significant inhibition on multiple spores, such as sporangia formation, zoospore discharge and zoospore germination. Citral at 4000 mg/L exhibited favorable protective (73.33%) and curative efficacy (55.11%) against pepper Phytophthora blight. Citral significantly damaged the hyphal morphology, disrupted the cell membrane integrity, increased the permeability of cell membrane, and increased the glycerol content in P. capsici. A total of 250 upregulated and 288 downregulated proteins were identified in iTRAQ-based quantitative proteomic analysis. Downregulated proteins were mostly enriched in pathways of ABC transporters, cyanoamino acid metabolism and starch and sucrose metabolism, suggesting an inhibition of citral on transmembrane transporter (e.g., ABC transporters) and pathogenicity (e.g., β-glucosidases) proteins. Upregulated proteins were enriched in biosynthesis of unsaturated fatty acids, pyruvate metabolism and glycolysis/gluconeogenesis, suggesting an activation of citral on energy generation proteins, including acyl-CoA oxidase, D-lactate dehydrogenase, pyruvate kinase, acetyl-CoA synthetase and phosphoenolpyruvate carboxykinase. Biochemical and iTRAQ analysis suggested that cell membrane may be the target of citral in P. capsici.

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柠檬醛对疫霉的抑制活性和抗霉菌机制
天然萜类化合物柠檬醛对多种真菌具有抗真菌活性,但其对卵菌的生物活性尚不清楚。因此,本研究研究了柠檬醛对一种破坏性极强的侵染性卵菌--Ⅳ的抗真菌活性及其作用机制。结果表明,柠檬醛不仅对Ⅳ的菌丝生长有很强的抑制作用(EC = 94.15 mg/L),而且对多种孢子,如孢子囊形成、子囊孢子排出和子囊孢子萌发也有明显的抑制作用。4000 mg/L 的柠檬醛对辣椒疫霉病具有良好的保护(73.33%)和治疗(55.11%)效果。柠檬醛能明显破坏菌丝形态,破坏细胞膜的完整性,增加细胞膜的通透性,增加......中的甘油含量。基于 iTRAQ 的定量蛋白质组分析共鉴定出 250 个上调蛋白和 288 个下调蛋白。下调蛋白主要富集在 ABC 转运体、氰基氨基酸代谢、淀粉和蔗糖代谢途径中,表明柠檬醛对跨膜转运体(如 ABC 转运体)和致病性(如β-葡糖苷酶)蛋白有抑制作用。在不饱和脂肪酸的生物合成、丙酮酸代谢和糖酵解/糖酮生成过程中,上调的蛋白质含量丰富,这表明柠檬醛激活了能量生成蛋白质,包括酰基-CoA 氧化酶、D-乳酸脱氢酶、丙酮酸激酶、乙酰-CoA 合成酶和磷酸烯醇丙酮酸羧激酶。生化和 iTRAQ 分析表明,细胞膜可能是柠檬醛在......中的靶标。
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来源期刊
CiteScore
7.00
自引率
8.50%
发文量
238
审稿时长
4.2 months
期刊介绍: Pesticide Biochemistry and Physiology publishes original scientific articles pertaining to the mode of action of plant protection agents such as insecticides, fungicides, herbicides, and similar compounds, including nonlethal pest control agents, biosynthesis of pheromones, hormones, and plant resistance agents. Manuscripts may include a biochemical, physiological, or molecular study for an understanding of comparative toxicology or selective toxicity of both target and nontarget organisms. Particular interest will be given to studies on the molecular biology of pest control, toxicology, and pesticide resistance. Research Areas Emphasized Include the Biochemistry and Physiology of: • Comparative toxicity • Mode of action • Pathophysiology • Plant growth regulators • Resistance • Other effects of pesticides on both parasites and hosts.
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