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Nanoplastics Pollution Threatens Sustainable Nitrogen Fixation in Agroecosystems by Disrupting Legume–Rhizobium Symbiosis

Original title: NanoplasticsPollution Threatens Sustainable NitrogenFixation in Agroecosystems by Disrupting Legume–Rhizobium Symbiosis

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Quanlong Wang (1707370), Hongwei Liu (80414), XC Wu, Meseret Amde, Zhangguo Wu (17499403), Weidong Zhao, Zhiguo Pei, Yongguang Yin, Maoyong Song, Zhiqiang Tan (544538), Yukui Rui, Qinghua Zhang (145923), Jason C. White, Baoshan Xing (1430896)

Summary

Tiny plastic particles (nanoplastics) can seriously interfere with the natural partnership between soybean plants and soil bacteria that pulls nitrogen from the air—a process crucial for plant growth and soil health without heavy fertilizer use. The smallest plastic particles tested caused the biggest damage, cutting nitrogen production by over half and stunting root nodule growth, which means more nanoplastic pollution in farm soil could eventually threaten crop yields and food supply. While this study looked at soil and plants rather than direct human health effects, it's a reminder that plastic pollution is working its way into the food system

Polymers

The rhizobium–legume symbiosis plays a vital role in the global nitrogen cycle. Although microplastics have been shown to affect this symbiotic system, the accumulation and impacts of nanoplastics (NPs) in rhizobia and their root nodules remain poorly understood, particularly regarding the interactive effects of NPs of different sizes on symbiotic nitrogen fixation. This study demonstrated that polystyrene (PS) NPs exhibited a significant size difference effect on rhizobia and their symbiotic nitrogen-fixing association with soybean (Glycine max). We found that both rhizobia and soybean nodules efficiently internalized PS NPs, with differently sized NPs showing mutual enhancement during the cellular uptake of rhizobia. 100 mg/kg of 20 nm PS NPs severely disrupted the symbiotic nitrogen fixation, reducing nitrogenase activity by 51.3% in single exposures and 28.6% in combined exposure to 200 nm PS NPs. This observed disruption caused by 20 nm PS NPs was associated with suppressed nodule formation (26.0% reduction in number, 50.4% decrease in fresh biomass), diminished leghemoglobin content (64.9% reduction), impaired nutrient acquisition (26.5% decrease in nodule Mo content), reduced rhizobia infection efficiency, impaired plant growth, and modified expression of nodulation- and nitrogen-fixation-related genes. These findings revealed that small-sized PS NPs posed a substantial threat to the rhizobium–legume symbiosis, underscoring the ecological risks of NP pollution in agricultural systems.

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