Biochar as a partner of plants and beneficial microorganisms to assist in-situ bioremediation of heavy metal contaminated soil

生物修复 生物炭 环境科学 污染 微生物 环境化学 环境修复 殖民地化 有益生物体 化学 生物 生态学 细菌 有机化学 遗传学 热解 殖民地化
作者
Jieting Wu,Xiaofan Fu,Lei Zhao,Jin Lv,Sidi Lv,Jing Shang,Jiaxuan Lv,Shuxuan Du,Haijuan Guo,Fang Ma
出处
期刊:Science of The Total Environment [Elsevier BV]
卷期号:923: 171442-171442 被引量:20
标识
DOI:10.1016/j.scitotenv.2024.171442
摘要

Synergistic remediation of heavy metal (HM) contaminated soil using beneficial microorganisms (BM) and plants is a common and effective in situ bioremediation method. However, the shortcomings of this approach are the low colonisation of BM under high levels of heavy metal stress (HMS) and the poor state of plant growth. Previous studies have overlooked the potential of biochar to mitigate the above problems and aid in-situ remediation. Therefore, this paper describes the characteristics and physicochemical properties of biochar. It is proposed that biochar enhances plant resistance to HMS and aids in situ bioremediation by increasing colonisation of BM and HM stability. On this basis, the paper focuses on the following possible mechanisms: specific biochar-derived organic matter regulates the transport of HMs in plants and promotes mycorrhizal colonisation via the abscisic acid signalling pathway and the karrikin signalling pathway; promotes the growth-promoting pathway of indole-3-acetic acid and increases expression of the nodule-initiating gene NIN; improvement of soil HM stability by ion exchange, electrostatic adsorption, redox and complex precipitation mechanisms. And this paper summarizes guidelines on how to use biochar-assisted remediation based on current research for reference. Finally, the paper identifies research gaps in biochar in the direction of promoting beneficial microbial symbiotic mechanisms, recognition and function of organic molecules, and factors affecting practical applications.
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