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Microplastics in soil can increase nutrient uptake by wheat

Journal of Hazardous Materials 2022 98 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 50 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Yongxiang Yu, Yongxiang Yu, Yongxiang Yu, Zhi’e Hu, Yuhuai Liu, Yuhuai Liu, Yongxiang Yu, Yongxiang Yu, Yongxiang Yu, Mouliang Xiao, Mouliang Xiao, Zhi’e Hu, Zhi’e Hu, Yuhuai Liu, Zhi’e Hu, Mouliang Xiao, Mouliang Xiao, Mouliang Xiao, Muhammad Shahbaz, Huaiying Yao, Yongxiang Yu, Yongxiang Yu, Mouliang Xiao, Mouliang Xiao, Yongxiang Yu, Yongxiang Yu, Yongxiang Yu, Yongxiang Yu, Yongxiang Yu, Muhammad Shahbaz, Yongxiang Yu, Yongxiang Yu, Muhammad Shahbaz, Tida Ge Mouliang Xiao, Mouliang Xiao, Zhi’e Hu, Mouliang Xiao, Huaiying Yao, Huaiying Yao, Zhi’e Hu, Huaiying Yao, Huaiying Yao, Yongxiang Yu, Yongxiang Yu, Huaiying Yao, Huaiying Yao, Huaiying Yao, Huaiying Yao, Tida Ge Yongxiang Yu, Yongxiang Yu, Yongxiang Yu, Yongxiang Yu, Zhi’e Hu, Zhi’e Hu, Tida Ge Tida Ge Tida Ge Tida Ge Zhenke Zhu, Zhenke Zhu, Shunbao Lu, Huaiying Yao, Huaiying Yao, Huaiying Yao, Huaiying Yao, Huaiying Yao, Huaiying Yao, Huaiying Yao, Huaiying Yao, Huaiying Yao, Yongxiang Yu, Huaiying Yao, Yongxiang Yu, Yongxiang Yu, Tida Ge Shunbao Lu, Yongxiang Yu, Tida Ge Huaiying Yao, Yongxiang Yu, Huaiying Yao, Huaiying Yao, Yongxiang Yu, Zhenke Zhu, Huaiying Yao, Huaiying Yao, Huaiying Yao, Tida Ge Zhenke Zhu, Tida Ge Zhenke Zhu, Jianping Chen, Tida Ge Huaiying Yao, Huaiying Yao, Tida Ge Jianping Chen, Jianping Chen, Tida Ge Jianping Chen, Tida Ge Tida Ge Mouliang Xiao, Tida Ge Huaiying Yao, Huaiying Yao, Tida Ge Tida Ge Tida Ge

Summary

Researchers found that microplastics in soil can increase nutrient uptake by wheat by stimulating microbial activity and altering root interactions, suggesting microplastics may disrupt natural nutrient-cycling strategies in agricultural systems.

Polymers

Microplastics can perturb microbial nutrient-mining strategies. However, the mechanism by which microplastics affect the resource-acquisition strategies of crops in agricultural systems remains unknown. The nutrient-acquisition potential of crops and microbes was investigated under treatments with two common microplastics (polyethylene [PE] and polyvinyl chloride [PVC]) at 0%, 1%, and 5% (w/w). Different root resource-acquisition strategies disturbed microbial nutrient turnover in the rhizosphere in response to microplastic addition. Specifically, the β-1,4-glucosidase (BG) hotspot expanded, whereas the rhizosphere expansion of BG activity decreased. A decrease of less than PE1% (w/w) and an expansion of less than PE5% (w/w) in the 1,4-N-acetyl-glucosaminidase (NAG) hotspot with wider rhizosphere expansion of NAG activity indicated that higher doses of PE allow roots to uptake additional N. The phosphomonoesterase (PHOS) hotspot decreased in PE1% (w/w) and expanded in PE5% (w/w), but rhizosphere expansion did not change under PE treatments. However, both NAG and PHOS hotspots expanded with decreasing rhizosphere expansion under PVC treatments, indicating that PVC limits the utilization of available N and P, forcing the crop to obtain nutrients from the narrow root zone. These results indicate that adding PE microplastics increases the demand for and consumption of NH-N and NO-N by wheat.

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