对 Sedum plumbizincicola 进行跨尺度调控,以加强对受电子废物拆解污染的农业土壤的生物修复,并通过多组学揭示其潜在机制。

IF 7.7 2区 环境科学与生态学 Q1 ENVIRONMENTAL SCIENCES
Linbin Wang , Yufeng Wu , Zhi-Bo Zhao , Tingsheng Jia , Wenjuan Liu
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引用次数: 0

摘要

电子废物拆解导致周围的农业土壤受到重金属和有机污染物的双重污染。生物修复的效率较低,机制复杂,仍有待解决。在此,我们对 Sedum plumbizincicola 采用了地上和地下跨尺度的调控,以提高生物修复效率。结果表明,将皂荚与接种了根瘤菌的黄芪间作,对土壤中的镉、多溴联苯醚和多氯联苯的降解效果最好,降解量分别为 0.11 mg/kg、67.93 μg/kg 和 38.91 μg/kg。根瘤土壤代谢组学分析表明,镉和多溴联苯醚的减少与 2-甲基硫嘌呤酸和 L-糖氨酸密切相关,这两种物质参与苯丙氨酸代谢、氨基酸和赖氨酸的生物合成。元基因组分析表明,这些功能途径是由法兰克氏菌、分枝杆菌、布氏球菌等微生物类群介导的,它们也因调控而发生了显著变化。此外,调控机制还对 S. plumbizincicola 的转录基因产生了重大影响。功能注释显示,跨尺度调控通过根圈微生物和代谢物以及 S. plumbizincicola 的转录基因显著提高了生物修复效率,这些转录基因促进了植物的生长和对环境胁迫的耐受性。我们的多组学整合研究提供了对 S. plumbizincicola 跨尺度调控分子机制的全面而深入的见解,这将有利于电子废物拆解污染土壤修复技术的进步。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Applying cross-scale regulations to Sedum plumbizincicola for strengthening the bioremediation of the agricultural soil that contaminated by electronic waste dismantling and revealing the underlying mechanisms by multi-omics

Applying cross-scale regulations to Sedum plumbizincicola for strengthening the bioremediation of the agricultural soil that contaminated by electronic waste dismantling and revealing the underlying mechanisms by multi-omics
Electronic waste dismantling has induced the surrounding agricultural soils suffered from combined contamination of heavy metals and organic pollutants. Lower efficiency and complex mechanisms of bioremediation remain to be resolved. Here, we adopted regulations to Sedum plumbizincicola cross aboveground and belowground scales to strengthen the bioremediation efficiency. Results showed that the S. plumbizincicola intercropping with the Astragalus sinicus L. that inoculated with Rhizobium had the highest performance in reductions of Cd, PBDEs and PCBs from soils by 0.11 mg/kg, 67.93 μg/kg and 38.91 μg/kg, respectively. Rhizosphere soil metabolomics analysis demonstrated that reductions in Cd and PBDEs significantly associated with 2-Methylhippuric acid and L-Saccharopine, which were involved in phenylalanine metabolism, biosynthesis of amino acids and lysine. Metagenomics analysis revealed that these functional pathways were mediated by Frankia, Mycobacterium, Blastococcus, etc. microbial taxa, which were also significantly altered by regulations. Moreover, regulation regimes significantly affected transcription genes of S. plumbizincicola. Functional annotation revealed that cross-scale regulations significantly improved bioremediation efficiency through microorganisms and metabolites in the rhizosphere and transcription genes of S. plumbizincicola, which were illustrated to promote plant growth and tolerance to environmental stress. Our integration of multi-omics provides comprehensive and deep insights into molecular mechanisms in the cross-scale regulations of S. plumbizincicola, which would favor remediation techniques advances for the soil contaminated by electronic waste dismantling.
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来源期刊
Environmental Research
Environmental Research 环境科学-公共卫生、环境卫生与职业卫生
CiteScore
12.60
自引率
8.40%
发文量
2480
审稿时长
4.7 months
期刊介绍: The Environmental Research journal presents a broad range of interdisciplinary research, focused on addressing worldwide environmental concerns and featuring innovative findings. Our publication strives to explore relevant anthropogenic issues across various environmental sectors, showcasing practical applications in real-life settings.
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