School of Water Conservancy and Civil Engineering, Northeast Agricultural University, Harbin, Heilongjiang, 150030, China; Key Laboratory of Effective Utilization of Agricultural Water Resources of Ministry of Agriculture, Northeast Agricultural University, Harbin, Heilongjiang, 150030, China; Heilongjiang Provincial Key Laboratory of Water Resources and Water Conservancy Engineering in Cold Region, Northeast Agricultural University, Harbin, Heilongjiang, 150030, China; College of Agriculture, Northeast Agricultural University, Harbin, Heilongjiang, 150030, China.
School of Water Conservancy and Civil Engineering, Northeast Agricultural University, Harbin, Heilongjiang, 150030, China; Key Laboratory of Effective Utilization of Agricultural Water Resources of Ministry of Agriculture, Northeast Agricultural University, Harbin, Heilongjiang, 150030, China; Heilongjiang Provincial Key Laboratory of Water Resources and Water Conservancy Engineering in Cold Region, Northeast Agricultural University, Harbin, Heilongjiang, 150030, China.
Environ Pollut. 2024 Dec 1;362:125003. doi: 10.1016/j.envpol.2024.125003. Epub 2024 Sep 20.
Biochar and compost are effective ways to improve soil quality and reduce pesticide pollution. However, the effects of them on the abundant and rare microbial communities in freeze‒thaw soil need to be further clarified. Therefore, this study took biochar, compost, and their combination as examples to explore their effects on the abundant and rare microbial communities and multifunctionality in glyphosate, imidacloprid and pyraclostrobin contaminated soil under freeze‒thaw cycles. We found that freeze‒thaw cycles enhanced the functional groups and surface aromaticity of biochar and compost, thereby improving the adsorption capacity. Biochar and compost reduced the concentration and half-life of three pesticides and enhanced the degradation function of rare taxa in soil. Biochar and compost improved the structure composition and co-occurrence relationship of abundant and rare taxa. Meanwhile, the assembly processes of abundant and rare sub-communities were mainly driven by stochastic processes and the Combined treatment promoted the transition from dispersal limitation to homogenizing dispersal and homogeneous selection. Moreover, the Combined treatment significantly improved the multifunctionality before and after freezing and thawing by increasing the diversity of rare taxa and assembly processes. The results provide new insights for farmland soil remediation in seasonal frozen areas, especially the soil functional cycle of abundant and rare microorganisms.
生物炭和堆肥是改善土壤质量和减少农药污染的有效方法。然而,它们对冻融土壤中丰富和稀有微生物群落的影响仍需进一步阐明。因此,本研究以生物炭、堆肥及其组合为例,探讨了它们在冻融循环条件下对草甘膦、吡虫啉和吡唑醚菌酯污染土壤中丰富和稀有微生物群落及其多功能性的影响。研究发现,冻融循环增强了生物炭和堆肥的功能基团和表面芳构化程度,从而提高了吸附能力。生物炭和堆肥降低了三种农药的浓度和半衰期,并增强了土壤中稀有分类群的降解功能。生物炭和堆肥改善了丰富和稀有分类群的结构组成和共现关系。同时,丰富和稀有亚群落的组装过程主要受随机过程驱动,组合处理促进了从扩散限制到均化扩散和均匀选择的转变。此外,组合处理通过增加稀有分类群的多样性和组装过程,显著提高了冻融前后的多功能性。研究结果为季节性冻土区农田土壤修复提供了新的思路,特别是丰富和稀有微生物土壤功能循环。