4.7 Article

Biogenic silicon nanoparticles mitigate cadmium (Cd) toxicity in rapeseed (Brassica napus L.) by modulating the cellular oxidative stress metabolism and reducing Cd translocation

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JOURNAL OF HAZARDOUS MATERIALS
卷 459, 期 -, 页码 -

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ELSEVIER
DOI: 10.1016/j.jhazmat.2023.132070

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Antioxidants; Chlorophyll; Nanomaterials; Silicon; Cadmium; ROS; Rapeseed

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By modulating cellular oxidative repair mechanisms, the use of biogenic silicon nanoparticles can alleviate cadmium stress in rapeseed plants. The treatment with these nanoparticles significantly improved growth parameters, photosynthetic efficiency, and antioxidant enzyme activities in rapeseed plants. Furthermore, the treatment also mitigated the damage caused by cadmium, altered gene expressions, and influenced metal accumulation in the plants.
Nano-enabled strategies have emerged as promising alternatives to resolve heavy metals (HMs) related harms in an eco-friendly manner. Here, we explored the potential of biogenic silicon nanoparticles (SiNPs) in alleviating cadmium (Cd) stress in rapeseed (Brassica napus L.) plants by modulating cellular oxidative repair mechanisms. Biogenic SiNPs of spherical shapes with size ranging between 14 nm and 35 nm were synthesized using rice straw extract and characterized through advanced characterization techniques. A greenhouse experiment results showed that SiNPs treatment at 250 mg kg- 1 significantly improved growth parameters, including fresh weight (33.3 %) and dry weight (32.6 %) of rapeseed plants than Cd-treated control group. Photosynthesis and leaf gas exchange parameters were also positively influenced by SiNPs treatment, indicating enhanced photosynthetic efficiency. Additionally, SiNPs treatment at 250 mg kg -1 increased the activities of antioxidant enzymes such as superoxide dismutase (19.1 %), peroxidase (33.4 %), catalase (14.4 %), and ascorbate peroxidase (33.8 %), which may play a crucial role in ROS scavenging and reduction in Cd-induced oxidative stress. TEM analysis revealed that SiNPs treatment effectively mitigated Cd-induced damage to leaf ultrastructure, while qPCR analysis showed that SiNPs treatment changed the expressions of the antioxidant defense and stress related genes. Moreover, SiNPs treatment significantly influenced the Cd accumulation and Si contents in plants. Overall, our findings revealed that biogenic SiNPs have great potential to serve as a sustainable, eco-friendly, and nontoxic alternative for the remediation of Cd toxicity in rapeseed plants.

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