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

Author:

Li Guanlin1234ORCID,Tang Yi14ORCID,Son Yowhan3ORCID,Zhao Xiaoxun1,Iqbal Babar1,Khan Kiran Yasmin1,Guo Ruoyu5,Yin Weiqing6,Zhao Xin7ORCID,Du Daolin8

Affiliation:

1. School of Environment and Safety Engineering, School of Emergency Management, Jiangsu Province Engineering Research Center of Green Technology and Contingency Management for Emerging Pollutants Jiangsu University Zhenjiang People's Republic of China

2. Ministry of Education Key Laboratory of Pollution Processes and Environmental Criteria Nankai University Tianjin People's Republic of China

3. Department of Environmental Science and Ecological Engineering Korea University Seoul Republic of Korea

4. Jiangsu Collaborative Innovation Center of Technology and Material of Water Treatment Suzhou University of Science and Technology Suzhou People's Republic of China

5. Key Laboratory of Marine Ecosystem Dynamics Second Institute of Oceanography, Ministry of Natural Resources Hangzhou People's Republic of China

6. Zhenjiang Environmental Monitoring Center of Jiangsu Province Zhenjiang People's Republic of China

7. Department of Civil and Environmental Engineering, College of Engineering Seoul National University Seoul Republic of Korea

8. Jingjiang College, Institute of Environment and Ecology, School of Emergency Management, School of Environment and Safety Engineering, School of Agricultural Engineering Jiangsu University Zhenjiang People's Republic of China

Abstract

AbstractMicroplastics, 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.

Funder

National Natural Science Foundation of China

Senior Talent Foundation of Jiangsu University

Publisher

Wiley

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