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March 7, 2026Industrial Crops and Products6 citationsOpen Access

Mitigating arsenic toxicity in bamboo using silica-titania nanohybrids: Enhanced antioxidant defense, phytochelatin synthesis, and chloroplast integrity for improved crop resilience

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AEAbolghassem EmamverdianLZLi ZhangNPNecla Pehlivan

Key Points

  • The research aims to evaluate the effectiveness of silica and titanium dioxide nanoparticles in reducing arsenic toxicity in bamboo.
  • In vitro experiments with bamboo explants exposed to varying arsenic levels (0-120 mg L⁻¹) and treatments with silica (SiO₂) and titanium dioxide (TiO₂) nanoparticles.
  • Assessment of phytochelatin synthesis, antioxidant enzyme activity, and growth parameters post-treatment.
  • Measurement of arsenic accumulation and translocation in the bamboo plant.
  • The combined nanoparticle treatment reduced arsenic accumulation by approximately 46% in roots, stems, and leaves.
  • Phytochelatin synthesis increased by 61%, with significant reductions in oxidative stress markers such as hydrogen peroxide and superoxide radicals.
  • Photosynthetic pigments increased by 79-105% and there was a notable growth in shoot and root dry weights, by 54% and 44%, respectively.

Abstract

Arsenic contamination threatens agricultural sustainability and food safety. This study evaluated the efficacy of silicon dioxide (SiO₂) and titanium dioxide (TiO₂) nanoparticles (NPs), applied individually and in combination, to mitigate arsenic toxicity in dwarf white-striped bamboo ( Pleioblastus pygmaeus ). In vitro experiments exposed bamboo explants to arsenic (0–120 mg L⁻¹) alongside treatments of SiO₂ NPs, TiO₂ NPs, or their combination (100 mg L⁻¹ each). The combined NP treatment was most effective, reducing arsenic accumulation in roots, stems, and leaves by 46%, 48%, and 46%, respectively. This reduction was linked to enhanced phytochelatin synthesis (61%), metal chelation (80%), and proline accumulation (60%). Oxidative stress was alleviated, with decreases in hydrogen peroxide (49%), superoxide radicals (51%), and malondialdehyde (39%), alongside increased activity of antioxidant enzymes and glyoxalase. Photosynthetic pigments (chlorophyll a, b, and carotenoids) increased by 79–105%, and secondary metabolites (phenolics and flavonoids) rose by 41–42%. These improvements translated to a 54% increase in shoot dry weight and a 44% increase in root dry weight. Nanoparticle applications also reduced arsenic translocation and bioaccumulation factors to 8.5%. This study demonstrates the synergistic potential of SiO₂-TiO₂ nanohybrids to enhance arsenic tolerance in bamboo, offering a promising nano-enabled strategy for sustainable crop protection and phytoremediation. • Silica-titania nanoparticles reduce arsenic uptake in bamboo by 46%. • Nanoparticles enhance antioxidant defense and stress detoxification pathways. • Treatment boosts photosynthetic pigments and biomass under arsenic stress. • Phytochelatin and proline levels rise by 61% and 73% for detoxification. • Combined nanoparticles decrease arsenic translocation to shoots by 8.5%.

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Cite This Study

Emamverdian et al. (2026) studied this question.

synapsesocial.com/papers/69abc1845af8044f7a4ea45ahttps://doi.org/10.1016/j.indcrop.2026.122970
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