Suppr超能文献

植物促生细菌通过影响高粱根际微生物群落来提高受 PE-Cd 复合污染土壤的 Cd 植物修复效率。

Plant growth-promoting bacteria improve the Cd phytoremediation efficiency of soils contaminated with PE-Cd complex pollution by influencing the rhizosphere microbiome of sorghum.

机构信息

International Joint Laboratory of Watershed Ecological Security and Collaborative Innovation Center of Water Security for Water Source Region of Middle Route Project of South-North Water Diversion in Henan Province, School of Water Resource and Environmental Engineering, Nanyang Normal University, Nanyang 473061, China.

International Joint Laboratory of Watershed Ecological Security and Collaborative Innovation Center of Water Security for Water Source Region of Middle Route Project of South-North Water Diversion in Henan Province, School of Water Resource and Environmental Engineering, Nanyang Normal University, Nanyang 473061, China.

出版信息

J Hazard Mater. 2024 May 5;469:134085. doi: 10.1016/j.jhazmat.2024.134085. Epub 2024 Mar 20.

Abstract

Composite pollution by microplastics and heavy metals poses a potential threat to the soilplant system and has received increasing attention. Plant growth-promoting bacteria (PGPB) have good application potential for the remediation of combined microplastic and heavy metal pollution, but few related studies exist. The present study employed a pot experiment to investigate the effects of inoculation with the PGPB Bacillus sp. SL-413 and Enterobacter sp. VY-1 on sorghum growth and Cd accumulation under conditions of combined cadmium (Cd) and polyethylene (PE) pollution. Cd+PE composite contamination led to a significant reduction in sorghum length and biomass due to increased toxicity. Inoculation with Bacillus sp. SL-413 and Enterobacter sp. VY-1 alleviated the stress caused by Cd+PE complex pollution, and the dry weight of sorghum increased by 25.7% to 46.1% aboveground and by 12.3% to 45.3% belowground. Bacillus sp. SL-413 and Enterobacter sp. VY-1 inoculation increased the Cd content and accumulation in sorghum and improved the phytoremediation efficiency of Cd. The inoculation treatment effectively alleviated the nutrient stress caused by the reduction in soil mineral nutrients due to Cd+PE composite pollution. The composition of the soil bacterial communities was also affected by the Cd, Cd+PE and bacterial inoculation treatments, which affected the diversity of the soil bacterial communities. Network analyses indicated that bacterial inoculation regulated the interaction of rhizospheric microorganisms and increased the stability of soil bacterial communities. The Mantel test showed that the changes in the soil bacterial community and function due to inoculation with Bacillus sp. SL-413 and Enterobacter sp. VY-1 were important factors influencing sorghum growth and Cd remediation efficiency. The results of this study will provide new evidence for the research on joint plantmicrobe remediation of heavy metal and microplastic composite pollution.

摘要

复合污染微塑料和重金属对土壤-植物系统构成潜在威胁,已引起越来越多的关注。植物促生菌(PGPB)在修复复合微塑料和重金属污染方面具有良好的应用潜力,但相关研究较少。本研究采用盆栽试验,研究了接种 PGPR 芽孢杆菌 SL-413 和肠杆菌 VY-1 对玉米在镉(Cd)和聚乙烯(PE)复合污染条件下生长和 Cd 积累的影响。Cd+PE 复合污染由于毒性增加,导致玉米长度和生物量显著减少。接种芽孢杆菌 SL-413 和肠杆菌 VY-1 缓解了 Cd+PE 复合污染引起的胁迫,地上部和地下部玉米干重分别增加了 25.7%至 46.1%和 12.3%至 45.3%。芽孢杆菌 SL-413 和肠杆菌 VY-1 接种增加了玉米体内 Cd 含量和积累,提高了 Cd 的植物修复效率。接种处理有效缓解了由于 Cd+PE 复合污染导致土壤矿质养分减少而引起的养分胁迫。Cd、Cd+PE 和细菌接种处理还影响了土壤细菌群落的组成,从而影响了土壤细菌群落的多样性。网络分析表明,细菌接种调节了根际微生物的相互作用,增加了土壤细菌群落的稳定性。Mantel 检验表明,由于接种芽孢杆菌 SL-413 和肠杆菌 VY-1 导致土壤细菌群落和功能的变化是影响玉米生长和 Cd 修复效率的重要因素。本研究结果将为重金属和微塑料复合污染的植物-微生物联合修复研究提供新的证据。

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验