State Key Laboratory for Managing Biotic and Chemical Threats to the Quality and Safety of Agro-products, Institute of Plant Virology, Ningbo University, Ningbo 315211, China.
Institute of Soil and Water Resources and Environmental Science, Zhejiang Provincial Key Laboratory of Agricultural Resources and Environment, Zhejiang University, Hangzhou 310058, China.
J Hazard Mater. 2022 Jun 5;431:128589. doi: 10.1016/j.jhazmat.2022.128589. Epub 2022 Feb 26.
Microplastics (MPs) can alter microbial communities and carbon (C) cycling in agricultural soils. However, the mechanism by which MPs affect the decomposition of microbe-driven soil organic matter remains unknown. We investigated the bacterial community succession and temporal turnover during soil organic matter decomposition in MP-amended paddy soils (none, low [0.01% w/w], or high [1% w/w]). We observed that MPs reduced the CO efflux rate on day 3 and subsequently promoted it on day 15 of incubation. This increased CO emission in MP-amended soil may be related to (i) enhanced hydrolase enzyme activities or; (ii) shifts in the Shannon diversity, positive group interactions, and temporal turnover rates (from 0.018 to 0.040). CO efflux was positively correlated (r > 0.8, p < 0.01) with Ruminiclostridium_1, Mobilitalea, Eubacterium xylanophilum, Sporomusa, Anaerobacteriu, Papillibacter, Syntrophomonadaceae, and Ruminococcaceae_UCG_013 abundance in soil with high MPs, indicating that these genera play important roles in soil organic C mineralization. These results demonstrate how microorganisms adapt to MPs and thus influence the C cycle in MP-polluted paddy ecosystems.
微塑料(MPs)会改变农业土壤中的微生物群落和碳(C)循环。然而,MPs 影响微生物驱动的土壤有机质分解的机制尚不清楚。我们研究了在 MP 处理的稻田土壤(无、低[0.01%w/w]或高[1%w/w])中有机质分解过程中的细菌群落演替和时间周转。我们观察到 MPs 在培养的第 3 天降低了 CO 排放速率,随后在第 15 天促进了 CO 排放。MP 处理土壤中增加的 CO 排放可能与(i)水解酶活性增强或(ii)香农多样性、正群相互作用和时间周转率(从 0.018 增加到 0.040)的变化有关。CO 排放与土壤中高 MPs 下的 Ruminiclostridium_1、Mobilitalea、Eubacterium xylanophilum、Sporomusa、Anaerobacteriu、Papillibacter、Syntrophomonadaceae 和 Ruminococcaceae_UCG_013 的丰度呈正相关(r > 0.8,p < 0.01),表明这些属在土壤有机 C 矿化中发挥重要作用。这些结果表明了微生物如何适应 MPs,从而影响 MP 污染稻田生态系统中的 C 循环。