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氧化银纳米结构作为一种控制由尖孢镰刀菌引起的草莓炭腐病的新趋势。

Silver oxide nanostructures as a new trend to control strawberry charcoal rot induced by Macrophomina phaseolina.

机构信息

Pesticides Chemistry and Toxicology Department, Kafrelsheikh University, 33516, Kafr Elsheikh, Egypt.

Plant Pathology Research Institute, Agricultural Research Center, Giza, 12619, Egypt.

出版信息

Pest Manag Sci. 2022 Nov;78(11):4638-4648. doi: 10.1002/ps.7084. Epub 2022 Aug 5.

Abstract

BACKGROUND

Silver oxide (Ag O) nanostructures were fabricated and their ability to induce antifungal activity against Macrophomina phaseolina, which causes charcoal rot disease in strawberries, was evaluated under laboratory, greenhouse and field conditions. A real-time quantitative polymerase chain reaction was used to monitor expression of defense-related genes, which is essential to evaluate the potential of the manufactured nanoparticles to promote strawberry resistance against charcoal rot. The effect of Ag O nanoparticles on growth characteristics in strawberry plants was also studied.

RESULTS

The results showed that Ag O significantly inhibited M. phaseolina growth compared with untreated controls under in vitro conditions. Strawberry plants treated with Ag O showed a significant decrease in the severity of charcoal rot disease in the greenhouse compared with untreated plants. Strawberry plants treated with Ag O nanoparticles expressed defense gene (PR-1) involved in the salicylic acid signaling pathways at levels three to five times higher than in the control group. Ag O nanoparticles significantly improved the growth and yield of the strawberry crop.

CONCLUSION

Use of Ag O nanoparticles can be considered a new strategy to control M. phaseolina and this is the first report of this effect. © 2022 Society of Chemical Industry.

摘要

背景

制备了氧化银(AgO)纳米结构,并在实验室、温室和田间条件下评估了其对引起草莓炭腐病的尖孢镰刀菌产生抗真菌活性的能力。实时定量聚合酶链反应用于监测防御相关基因的表达,这对于评估所制造的纳米颗粒促进草莓对炭腐病抗性的潜力至关重要。还研究了 AgO 纳米颗粒对草莓植株生长特性的影响。

结果

结果表明,与未处理的对照相比,AgO 在体外条件下显著抑制了 M.phaseolina 的生长。与未处理的植物相比,温室中用 AgO 处理的草莓植物炭腐病的严重程度显著降低。用 AgO 纳米颗粒处理的草莓植物表达了参与水杨酸信号通路的防御基因(PR-1),其表达水平比对照组高 3 到 5 倍。AgO 纳米颗粒显著促进了草莓作物的生长和产量。

结论

可以认为使用 AgO 纳米颗粒是控制 M.phaseolina 的一种新策略,这是首次报道这种效果。© 2022 化学工业协会。

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