Biochar-based microbial agent reduces U and Cd accumulation in vegetables and improves rhizosphere microecology

生物炭 根际 硝基螺 生物修复 蜡样芽孢杆菌 微生物种群生物学 化学 环境修复 生物刺激 修正案 微生物 生物 食品科学 细菌 生态学 有机化学 热解 污染 政治学 法学 遗传学
作者
Xin Qi,Shiqi Xiao,Xiaohong Chen,Imran Ali,Jialei Gou,Dan Wang,Bo Zhu,Wenkun Zhu,Ran Shang,Mengwei Han
出处
期刊:Journal of Hazardous Materials [Elsevier BV]
卷期号:436: 129147-129147 被引量:119
标识
DOI:10.1016/j.jhazmat.2022.129147
摘要

Microbial remediation of heavy metals in soil has been widely studied. However, bioremediation efficiency is limited in practical applications because of nutritional deficiency, low efficiency, and competition with indigenous microorganisms. Herein, we prepared a biochar-based microbial agent (BMA) by immobilizing the microbial agent (MA, containing Bacillus subtilis, Bacillus cereus, and Citrobacter sp.) on biochar for the remediation of U and Cd in soil. The results showed that BMA increased soil organic matter, cation exchange capacity, and fluorescein diacetate hydrolysis activity and dehydrogenase activity by 58.7%, 38.2%, 42.9%, and 51.1%. The availability of U and Cd were significantly decreased by 67.4% and 54.2% in BMA amended soil, thereby reducing their accumulation in vegetables. BMA greatly promoted vegetable growth. Additionally, BMA significantly altered the structure and function of rhizosphere soil microbial communities. Coincidently, more abundant ecologically beneficial bacteria like Nitrospira, Nitrosomonas, Lysobacter, and Bacillus were observed, whereas plant pathogenic fungi like Fusarium and Alternaria reduced in BMA amended soil. The network analysis revealed that BMA amendment increased the tightness and complexity of microbial communities. Importantly, the compatibility of niches and microbial species within co-occurrence network was enhanced after BMA addition. These findings provide a promising strategy for suppressing heavy metal accumulation in vegetables and promoting their growth.
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