Composite g-C3N4@ZnO NP electrostatic self-assembly: enhanced ROS as a key factor for high-efficiency control of tobacco wildfire disease

被引:1
作者
Cai, Lin [2 ,3 ]
Huang, Xunliang [3 ]
Feng, Hui [2 ]
Fan, Guangjin [1 ]
Sun, Xianchao [1 ]
机构
[1] Southwest Univ, Coll Plant Protect, Chongqing 400715, Peoples R China
[2] Guizhou Univ, Coll Tobacco Sci, Guizhou Key Lab Tobacco Qual, Guiyang, Peoples R China
[3] Guizhou Univ, Natl Key Lab Green Pesticide, Key Lab Green Pesticide & Agr Bioengn, Minist Educ,Ctr R&D Fine Chem, Guiyang, Peoples R China
关键词
g-C3N4@ZnO; Pseudomonas syringae pv. tabaci; photocatalytic antibacterial mechanisms; transcriptome level; tobacco wild-fire disease; DIFFERENTIALLY EXPRESSED GENES; VISIBLE-LIGHT; PHOTOCATALYTIC ACTIVITY; NANOSTRUCTURES; DISINFECTION; DEGRADATION; FABRICATION; GRAPHENE; WATER;
D O I
10.1002/ps.7715
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
BACKGROUND: The utilization of non-metallic inorganic nanomaterials for antimicrobial photocatalytic technology has emerged as a promising approach to combat drug-resistant bacteria. Recently, g-C3N4 nanosheets have attracted significant attention due to their exceptional stability, degradability, low cost, and remarkable antibacterial properties. In this study, a facile electrostatic self-assembly approach was utilized to functionalize ZnO nanoparticles with g-C3N4 nanosheets, resulting in the formation of g-C3N4@ZnO nanoparticle composites. RESULTS: The Z-shaped heterojunction architecture of these composites facilitates efficient separation of photogenerated electron-hole pairs and enhances visible light catalytic performance. Moreover, the formation of the g-C3N4@ZnO heterostructure showed a higher photocatalytic capacity and the generation of reactive oxygen species (ROS) than g-C3N4 nanosheets. The photocatalytic antibacterial mechanisms of g-C3N4@ZnO at the transcriptomic level primarily involve disrupting bacterial membrane synthesis and inhibiting motility and energy metabolism. Therefore, the antibacterial mechanism of g-C3N4@ZnO can be attributed to a combination of physical membrane damage, chemical damage (ROS enhancement) and inhibition of chemotaxis, biofilm formation and flagellar motility. CONCLUSION: These findings collectively provide novel high potential and insights into the practical application of photocatalysts in plant disease management. (c) 2023 Society of Chemical Industry.
引用
收藏
页码:5140 / 5151
页数:12
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