根际
龙葵
生物
殖民地化
植物修复
溶磷菌
镉
磷酸盐
植物
莽草酸
细菌
莽草酸途径
根际细菌
微生物学
生物化学
化学
氨基酸
土壤水分
芳香族氨基酸
生态学
有机化学
遗传学
作者
Tao He,Zi-Jie Xu,Junfeng Wang,Fo-Peng Wang,Xue-Fang Zhou,Li-Li Wang,Qu-Sheng Li
出处
期刊:Chemosphere
[Elsevier]
日期:2021-09-08
卷期号:287: 132209-132209
被引量:32
标识
DOI:10.1016/j.chemosphere.2021.132209
摘要
Soil cadmium (Cd) mobilized with phosphate-solubilizing bacteria (PSB), especially for strains effectively colonized in rhizosphere, is an important pathway for promoting its accumulation by Cd-hyperaccumulators. In this study, screened PSB strains, Acinetobacter pittii (AP) and Escherichia coli (EC), were used to evaluate their effects on Cd mobilization in rhizosphere, Cd accumulation by Solanum nigrum L., and rhizobacterial community and metabolic function under different colonization condition. Results indicated that AP or EC inoculated in soils significantly promoted plant growth, and simultaneously motivated Cd accumulation in S. nigrum L. by 119% and 88%, respectively, when compared with that of uninoculated treatment. Higher efficiency colonization of AP contributed to more organic acids (malic, l-proline, l-alanine, and γ-aminobutanoic) production in the rhizosphere soil and Cd accumulation by S. nigrum L., when compared with that of EC treatment. Taxonomic distribution and co-occurrence network analyses demonstrated that inoculation of AP or EC enriched dominant microbial taxa with plant growth promotion function and keystone taxa related to Cd mobilization in the rhizosphere soil, respectively. Inoculated strains up-regulated the expression of genes related to bacterial mobility, amino acid metabolism, and carbon metabolism among rhizobacterial community. Overall, this study provided a feasible method for soil Cd phytoremediation by promoting Cd mobilization with the enhancement of keystone taxa and organic acid secretion based on the high-efficiency colonization of PSB.
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