The synergistic effect of applying Bacillus and biochar on restoration of lead-zinc tailings by Leptolyngbya

IF 4.5 2区 生物学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Algal Research-Biomass Biofuels and Bioproducts Pub Date : 2025-03-01 Epub Date: 2025-01-02 DOI:10.1016/j.algal.2024.103890
Lianghui Hou , Jing Zhu , Kejun Liao , Chaoqi Chen , Yan Li , Sijia She , Dongping Bao , Wenyan Ye , Lanzhou Chen
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Abstract

Heavy metal (HM) toxicity and nutrient deficiency pose major challenges to the ecological restoration of tailings area. As the primary stage of soil microbial community succession, biological soil crusts (BSCs) play an important role in stabilizing the soil surface and accelerating nutrient cycling in tailings area. Nevertheless, little information is available. In this study, microalgae and bacteria isolated from tailings area were inoculated onto the lead‑zinc tailing sand combined with exogenous biochar to induce the formation of BSCs. After 60 d of inoculation, chlorophyll a, total DNA, soil humic substances, soluble proteins and species abundance of induced BSCs increased significant in comparison with the control check (CK). Soil C, N and P nutrients, soil saturated moisture, cation exchange capacity and enzyme activities of induced BSCs soils also increased significantly, however, the available forms of lead and zinc, soluble salt, and microbial-derived fulvic acid significantly decreased. The expression of nitrification genes, denitrification genes, and P cycling genes significantly increased. Principal component analysis ranked the differences of each treatment group, and revealing that the combined microalgae-bacteria-biochar treatment group resulted in improving soil properties and higher expression of N/P cycling genes compared to the sole microalgae inoculation. These results indicated that utilizing indigenous microorganism inoculation could effectively improve the ecological function of tailings sand by increasing N/P cycling and provides a potential method for accelerating the ecological restoration of tailings sand.
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应用芽孢杆菌和生物炭对铅锌尾矿溶菌修复的协同效应
重金属毒性和营养缺乏是尾矿区生态恢复面临的主要挑战。生物结皮是尾矿区土壤微生物群落演替的初级阶段,在稳定尾矿区土壤表面、加速尾矿区养分循环等方面具有重要作用。然而,可获得的资料很少。本研究将尾矿区分离的微藻和细菌接种于铅锌尾矿砂上,并结合外源生物炭诱导BSCs的形成。接种60 d后,诱导的BSCs叶绿素a、总DNA、土壤腐殖质、可溶性蛋白和物种丰度均较对照显著增加。诱导BSCs土壤C、N、P养分、土壤饱和水分、阳离子交换能力和酶活性均显著增加,而有效形态铅、锌、可溶性盐和微生物源黄腐酸显著降低。硝化基因、反硝化基因和磷循环基因的表达量显著增加。主成分分析对各处理组的差异进行了排序,结果表明,与单独接种微藻相比,微藻-细菌-生物炭联合处理组改善了土壤性质,提高了N/P循环基因的表达。上述结果表明,利用本地微生物接种可以通过增加N/P循环有效改善尾矿砂的生态功能,为加速尾矿砂的生态恢复提供了一种可能的方法。
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来源期刊
Algal Research-Biomass Biofuels and Bioproducts
Algal Research-Biomass Biofuels and Bioproducts BIOTECHNOLOGY & APPLIED MICROBIOLOGY-
CiteScore
9.40
自引率
7.80%
发文量
332
期刊介绍: Algal Research is an international phycology journal covering all areas of emerging technologies in algae biology, biomass production, cultivation, harvesting, extraction, bioproducts, biorefinery, engineering, and econometrics. Algae is defined to include cyanobacteria, microalgae, and protists and symbionts of interest in biotechnology. The journal publishes original research and reviews for the following scope: algal biology, including but not exclusive to: phylogeny, biodiversity, molecular traits, metabolic regulation, and genetic engineering, algal cultivation, e.g. phototrophic systems, heterotrophic systems, and mixotrophic systems, algal harvesting and extraction systems, biotechnology to convert algal biomass and components into biofuels and bioproducts, e.g., nutraceuticals, pharmaceuticals, animal feed, plastics, etc. algal products and their economic assessment
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