Bacteria isolated from e-waste soil enhance plant growth and mobilize trace metals in e-waste-amended soils

铁载体 细菌 土壤水分 开枪 植物修复 修正案 环境化学 植物生长 化学 园艺 生物 重金属 生态学 遗传学 政治学 法学
作者
Bhamini Patel,Hardik Naik Jinal,Sonal Manik Chavan,Dhiraj Paul,Natarajan Amaresan
出处
期刊:International Journal of Phytoremediation [Taylor & Francis]
卷期号:25 (7): 900-906 被引量:2
标识
DOI:10.1080/15226514.2022.2118230
摘要

Worldwide accumulation of e-waste poses a major threat to environmental health. However, printed circuit boards contain precious metals, such as gold, and silver, and also contain micronutrient metal elements, such as Fe, Cu, Zn, etc. Therefore, the present study investigated the effects of e-waste-tolerant bacteria (ETB) on promoting plant growth in e-waste-amended soils and mobilizing trace metals into the plants. For this, a total of 18 bacteria were isolated and screened for e-waste tolerance. Screening for plant growth-promoting properties revealed the production of indole-3-acetic acid-like compounds, siderophore production, and phosphate solubilization. Identification based on 16S rRNA gene sequencing revealed that all isolates belonged to the genus Bacillus. Pot experiment revealed that the treated seeds showed the enhancement of chili plants root growth ranging from 106.55 to 208.07% compared to control plants (e-waste) and 0.0 to 47.90% (without e-waste). A similar enhancement was also observed in the shoot length, and size of the leaf compared to e-waste amended control plants. Inoculation of ETB significantly (p < 0.05) mobilized Fe, Zn, Cu, and Ni into chili plants. The identified ETB could be used to mitigate the toxicity posed by the e-waste, enhancing plant growth and mobilization of micronutrients into plants from e-waste.Bacillus species identified in this study are the potential e-tolerant (PCB) PGP bacteria. Inoculation of e-tolerant bacteria resulted in increased plant growth attributes and biomass index in e-waste amended soil. Bacterial inoculation also showed maximum uptake of Cu, Fe, Zn, and Ni from the e-waste amended soil. This study demonstrated that micronutrients can be fortified/mobilized from e-waste using PGP bacteria.
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