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Plant electrophysiological characteristics reveal the leaf intracellular nutrient metabolism and stress tolerance underlying Se(IV)-mediated alleviation of polyethylene stress in Plantago asiatica

Chilean journal of agricultural research 2026
Meng Hanqing, Xiongfei Cai, Ji Wang, Antong Xia, Yanyou Wu, Juke Zhang, Jing Fan, Kun Zhai, Dongshan Xiang

Summary

Microplastics are increasingly contaminating soil and can stress plants, potentially affecting the food we grow. This study found that adding a small, precise amount of selenium to soil helped plantain plants cope with microplastic pollution by improving how their leaves absorbed water and nutrients — but too much selenium backfired and stopped helping. The takeaway: selenium could be a useful tool for protecting crops from microplastic contamination, but getting the dose right matters, which is good news for keeping our food supply healthier as plastic pollution grows.

Polymers

Leaf intracellular nutrient metabolism plays a critical role in determining plant stress tolerance.Selenium(IV) supplied as sodium selenite (Na2SeO3; SeO3 2-) has been reported to enhance plant resistance to polyethylene (PE, microplastics), yet its effects on intracellular nutrient metabolism under PE stress remain unclear.Plantain (Plantago asiatica L.) was exposed to PE (1500 mg kg -1 ) and supplemented with Se(IV) at 0, 1.25, 2.5, 12.5, and 25 mg kg -1 (as Na2SeO3).Growth traits, photosynthetic performance, and leaf electrophysiological characteristics were measured, and the membership function method was used to comprehensively evaluate intracellular water-holding capacity (IWHC), nutrient transport capacity (NTC), and metabolic activity (MA).The Se(IV) dose 2.5 mg kg -1 produced the strongest overall mitigation of PE stress, increasing IWHC and MA by 173.95% and 24.70%, respectively, while maintaining a high NTC (129.69%above the PE-only treatment).When Se(IV) exceeded 2.5 mg kg -1 , mitigation weakened: At 12.5 and 25 mg kg -1 , IWHC, NTC, and MA increased by 77.01%, 105.01%, and 2.24%, and by 89.06%, 105.31%, and 16.22%, respectively, compared with the PE-only treatment, indicating that excess Se(IV) did not further improve plant performance.Overall, plant electrophysiological techniques provide a rapid and non-destructive approach to evaluate Se-mediated alleviation of microplastic stress and support the rational use of Se in agriculture.

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