College of Environmental Sciences and Engineering, Qingdao University, Qingdao 266071, China; Key Laboratory of Environment Remediation and Ecological Health, Ministry of Education, College of Environmental Resource Sciences, Zhejiang University, Hangzhou 310058, China.
College of Environmental Sciences and Engineering, Qingdao University, Qingdao 266071, China.
J Hazard Mater. 2021 Jun 15;412:125340. doi: 10.1016/j.jhazmat.2021.125340. Epub 2021 Feb 5.
Plants can cope with stressful conditions by indirectly regulating root-associated microbial structures. However, the recruitment strategies of the root-associated microbiome in combined organic and inorganic contaminated soils are not well known, especially for common agricultural crops. In this study, we performed greenhouse experiments to investigate the interactive effects of joint copper (Cu) and phenanthrene (PHE) pollution on wheat growth and microbial detoxication processes. Results show that heavy metals did not affect PHE dissipation in the rhizosphere but significantly enhanced the accumulation of PHE in the endosphere. In contrast, the addition of PHE did not influence the absorption of Cu by wheat roots. Cu was the primary factor affecting the variation of microbial communities in cocontaminated treatments among each rhizocompartment while the interactive effects of combined pollutants were only detected in unplanted bulk soil. Microbes are known to degrade polycyclic aromatic hydrocarbons and tolerant heavy metal stress e.g. Novosphingobium, Sphingomonas, Sphingobium and Pseudomonas enriched in the contaminated treatments. Our results provide an integrated understanding of the synthetic effects of combined pollutants on the root-microbial assemblage process in plant-soil systems and offer useful information on the selection of effective bioremediating root-associated microbes for the application of self-remediation by common crops.
植物可以通过间接调节与根相关的微生物结构来应对胁迫条件。然而,人们对于联合有机和无机污染土壤中与根相关的微生物组的招募策略知之甚少,特别是对于常见的农作物。在这项研究中,我们进行了温室实验,以研究联合铜(Cu)和菲(PHE)污染对小麦生长和微生物解毒过程的交互影响。结果表明,重金属不会影响根际中 PHE 的消散,但会显著增加内圈中 PHE 的积累。相比之下,PHE 的添加不会影响小麦根系对 Cu 的吸收。Cu 是影响每个根区共污染处理中微生物群落变化的主要因素,而污染物的交互作用仅在未种植的大量土壤中检测到。众所周知,微生物可以降解多环芳烃并耐受重金属胁迫,例如在污染处理中富集的 Novosphingobium、Sphingomonas、Sphingobium 和 Pseudomonas。我们的研究结果提供了对植物-土壤系统中联合污染物对根-微生物组合过程的综合理解,并为选择有效的生物修复根相关微生物提供了有用的信息,以用于常见作物的自我修复应用。