Deng Zihe, Wang Jianwen, Yan Yingrou, Wang Jiani, Shao Wenjun, Wu Zhansheng
School of Environmental and Chemical Engineering, Xi'an Key Laboratory of Textile Chemical Engineering Auxiliaries, Engineering Research Center of Biological Resources Development and Pollution Control Universities of Shaanxi Province, Key Laboratory of Textile Dyeing Wastewater Treatment Universities of Shaanxi Province, Xi'an Polytechnic University, Xi'an, 710048, PR China; Key Laboratory for Green Processing of Chemical Engineering of Xinjiang Bingtuan, School of Chemistry and Chemical Engineering, Shihezi University, Shihezi, Xinjiang, 832003, PR China.
School of Environmental and Chemical Engineering, Xi'an Key Laboratory of Textile Chemical Engineering Auxiliaries, Engineering Research Center of Biological Resources Development and Pollution Control Universities of Shaanxi Province, Key Laboratory of Textile Dyeing Wastewater Treatment Universities of Shaanxi Province, Xi'an Polytechnic University, Xi'an, 710048, PR China.
J Environ Manage. 2025 Jan;373:123534. doi: 10.1016/j.jenvman.2024.123534. Epub 2024 Dec 2.
Numerous studies support the synergistic use of biochar (BC) and plant growth-promoting rhizobacteria to enhance plant growth. Despite this, the complex and dynamic nature of soil environments necessitates further exploration of the interactions between soil microorganisms and soil properties under BC-based inoculants. This study investigated their combined effects using a BC-based inoculant, Bacillus subtilis SL-44 (BC@SL), to explore the relationship between microorganisms and soil properties. Additionally, differentiating the effects of exogenous auxiliaries BC, SL-44, and BC@SL, which can promote plant growth, enhance plant and soil enzyme activities, regulate microbial communities, and increase soil nutrient content. Compared to BC alone, SL-44 enhances plant superoxide dismutase, peroxidase, and catalase enzyme activities, while BC increases soil cellulase and urease activities. SL-44 elevates Bacillus content, whereas BC boosts overall microbial abundance. Although initial values of most soil properties remain stable under exogenous auxiliaries, by the fourth week, soil pH and organic matter decrease, while electrical conductivity, available phosphorus, and ammonium nitrogen increase significantly across treatments. BC@SL, integrating the advantages of both BC and SL-44, exhibits superior performance. Under BC@SL treatment, Bacillus content rises from 4.36% to 14.96%, and available phosphorus and ammonium nitrogen increase by 81.97% and 53.16%, respectively. Additionally, plant dry weight increases by 51.95%. These results highlight the effectiveness of BC@SL in microbial regulation, soil nutrient enhancement, and plant growth promotion. In summary, BC@SL proves to be a stable and efficient solid soil additive, supporting the advancement of green fertilizer practices.
众多研究支持生物炭(BC)与促植物生长根际细菌协同使用以促进植物生长。尽管如此,土壤环境的复杂性和动态性使得有必要进一步探索基于生物炭的接种剂作用下土壤微生物与土壤性质之间的相互作用。本研究使用基于生物炭的接种剂枯草芽孢杆菌SL-44(BC@SL)来研究它们的联合效应,以探索微生物与土壤性质之间的关系。此外,区分可促进植物生长、增强植物和土壤酶活性、调节微生物群落并增加土壤养分含量的外源助剂BC、SL-44和BC@SL的作用。与单独使用BC相比,SL-44可提高植物超氧化物歧化酶、过氧化物酶和过氧化氢酶的活性,而BC可增加土壤纤维素酶和脲酶的活性。SL-44提高芽孢杆菌含量,而BC提高整体微生物丰度。尽管在外源助剂作用下大多数土壤性质的初始值保持稳定,但到第四周时,各处理的土壤pH值和有机质下降,而电导率、有效磷和铵态氮显著增加。整合了BC和SL-44两者优势的BC@SL表现出卓越性能。在BC@SL处理下,芽孢杆菌含量从4.36%升至14.96%,有效磷和铵态氮分别增加81.97%和53.16%。此外,植物干重增加51.95%。这些结果突出了BC@SL在微生物调节、土壤养分增强和植物生长促进方面的有效性。总之,BC@SL被证明是一种稳定且高效的固体土壤添加剂,有助于绿色肥料实践的发展。