Biosynthetic selenium nanoparticles (Bio-SeNPs) mitigate the toxicity of antimony (Sb) in rice (Oryza sativa L.) by limiting Sb uptake, improving antioxidant defense system and regulating stress-related gene expression

水稻 限制 抗氧化剂 化学 毒性 基因表达 氧化应激 生物 细胞生物学 生物技术 生物化学 基因 工程类 无机化学 机械工程 有机化学
作者
Maodi Ran,Jiaxing Wu,Ying Jiao,Jiaokun Li
出处
期刊:Journal of Hazardous Materials [Elsevier BV]
卷期号:470: 134263-134263 被引量:9
标识
DOI:10.1016/j.jhazmat.2024.134263
摘要

Nanotechnology offers a promising and innovative approach to mitigate biotic and abiotic stress in crop production. In this study, the beneficial role and potential detoxification mechanism of biogenic selenium nanoparticles (Bio-SeNPs) prepared from Psidium guajava extracts in alleviating antimony (Sb) toxicity in rice seedlings (Oryza sativa L.) was investigated. The results revealed that exogenous addition of Bio-SeNPs (0.05 g/L) into the hydroponic-cultured system led to a substantial enhancement in rice shoot height (73.3%), shoot fresh weight (38.7%) and dry weight (28.8%) under 50 μM Sb(III) stress conditions. Compared to Sb exposure alone, hydroponic application of Bio-SeNPs also greatly promoted rice photosynthesis, improved cell viability and membrane integrity, reduced reactive oxygen species (ROS) levels, and increased antioxidant activities. Meanwhile, exogenous Bio-SeNPs application significantly lowered the Sb accumulation in rice root (77.1%) and shoot (35.1%), and reduced its root to shoot translocation (55.3%). Additionally, Bio-SeNPs addition were found to modulate the subcellular distribution of Sb and the expression of gene associated with Sb detoxification in rice, such as OsCuZnSOD2, OsCATA, OsGSH1, OsABCC1, and OsWAK11. Overall, our findings highlight the great potential of Bio-SeNPs as a promising alternative for reducing Sb accumulation in crop plants and boosting crop production under Sb stress conditions. Antimony (Sb) is a non-essential element with high bio-toxicity for crops. The application of biosynthetic selenium nanoparticles (Bio-SeNPs) enhances plant growth, reduces oxidative stress, limits Sb uptake, and promotes the gene expression of key detoxification pathways in rice plants under Sb stress conditions. Implementing this strategy in agriculture offers a promising strategy to mitigate the hazardous effects of Sb contamination on crops and promote healthy ecosystems.
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