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Divergent responses in microbial metabolic limitations and carbon use efficiency to variably sized polystyrene microplastics in soil

Land Degradation and Development 2024 22 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 65 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Babar Iqbal, Babar Iqbal, Babar Iqbal, Kiran Yasmin Khan, Guanlin Li, Guanlin Li, Xiaoxun Zhao, Kiran Yasmin Khan, Babar Iqbal, Kiran Yasmin Khan, Guanlin Li, Kiran Yasmin Khan, Babar Iqbal, Yi Tang, Kiran Yasmin Khan, Yi Tang, Xiaoxun Zhao, Xiaoxun Zhao, Babar Iqbal, Babar Iqbal, Kiran Yasmin Khan, Yi Tang, Xin Zhao, Daolin Du Babar Iqbal, Kiran Yasmin Khan, Guanlin Li, Babar Iqbal, Babar Iqbal, Daolin Du, Weiqing Yin, Weiqing Yin, Weiqing Yin, Weiqing Yin, Yowhan Son, Daolin Du Kiran Yasmin Khan, Daolin Du, Babar Iqbal, Babar Iqbal, Xiaoxun Zhao, Xin Zhao, Xin Zhao, Yowhan Son, Babar Iqbal, Xiaoxun Zhao, Xiaoxun Zhao, Guanlin Li, Daolin Du, Babar Iqbal, Babar Iqbal, Xiaoxun Zhao, Weiqing Yin, Kiran Yasmin Khan, Babar Iqbal, Babar Iqbal, Daolin Du, Babar Iqbal, Babar Iqbal, Babar Iqbal, Guanlin Li, Babar Iqbal, Yi Tang, Weiqing Yin, Daolin Du Kiran Yasmin Khan, Xin Zhao, Xiaoxun Zhao, Daolin Du Xin Zhao, Xin Zhao, Daolin Du Babar Iqbal, Xin Zhao, Babar Iqbal, Babar Iqbal, Babar Iqbal, Ruoyu Guo, Weiqing Yin, Xin Zhao, Babar Iqbal, Ruoyu Guo, Daolin Du Xin Zhao, Babar Iqbal, Daolin Du Daolin Du Daolin Du Xin Zhao, Daolin Du Daolin Du Daolin Du Weiqing Yin, Guanlin Li, Babar Iqbal, Daolin Du, Daolin Du, Ruoyu Guo, Daolin Du Guanlin Li, Daolin Du Daolin Du Xin Zhao, Daolin Du Guanlin Li, Daolin Du Daolin Du, Daolin Du Xin Zhao, Daolin Du Daolin Du Daolin Du Daolin Du Babar Iqbal, Guanlin Li, Xin Zhao, Daolin Du Daolin Du Daolin Du Daolin Du, Daolin Du Daolin Du Daolin Du

Summary

Researchers found that polystyrene microplastics of all sizes disrupted soil microbe metabolism, but the smallest particles (nanoscale, 0.1 micrometers) caused the most stress. Smaller particles were more likely to enter microbial cells directly and reduce the efficiency with which soil microbes process carbon. This matters because soil microbes play a critical role in carbon cycling, and widespread microplastic contamination could affect how soil stores and releases carbon.

Polymers

Abstract Microplastics, considered emerging contaminants, have been accumulating excessively within soil ecosystems, conferring potentially detrimental effects with respect to soil carbon turnover and pools. As a major participant in soil carbon processes, microplastics affecting microorganisms may be one of the main agents affecting soil carbon dynamics. However, the microbial metabolism processes through which microplastics affect soil carbon dynamics remain unclear. Therefore, this study aimed to assess the impact of variously sized (1300, 800, 100, and 0.1 μm) polystyrene microplastics on soil microbial metabolism. Soil microplastics of all sizes invariably and consistently affected microbial metabolism, though nanomicroplastics (0.1 μm) stressed soil microorganisms more than micron‐microplastics. Furthermore, microplastics inhibited both microbial carbon use efficiency (CUE) and respiration, the exception being the CUE in the 1300 μm microplastics treatment. As microplastic particle size decreased, the suppressive influence of microplastics on microbial respiration was gradually lost, the inhibitory effect on microbial CUE increased steadily, and the impact on microorganisms shifted from extracellular to intracellular, with intracellular microplastics exhibiting higher toxicity than extracellular microplastics. We used stoichiometric models to provide precise projections of microbial metabolism features associated with microplastic contamination, thereby enhancing the understanding of the effects of microplastic contamination on the carbon cycle and soil ecosystem.

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