A baroduric immobilized composite material promoting remediation of oil-polluted sediment at typical deep-sea condition: The performances and potential mechanisms

IF 7.7 2区 环境科学与生态学 Q1 ENVIRONMENTAL SCIENCES Environmental Research Pub Date : 2024-11-05 DOI:10.1016/j.envres.2024.120299
Yanlu Qiao , Lingbing Kong , Mingan Shen , Yudi Sun , Shuo Wang , Yu Gao , Jianliang Xue , Qing Jiang , Dongle Cheng , Yuyang Liu
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Abstract

Contriving immobilized bioreagent is of great significance to enhance bioremediation of marine oil pollution. However, there remains a notable scarcity of correlational study conducted at deep sea condition. Herein, we first developed a baroduric microsphere encasing biotic and chemical materials to remediate oil-contaminated sediments at deep-sea microcosm. Total oil degradation efficiency of microsphere-treated group reached 71% within a month, representing an approximate 35% increase compared to natural remediation. Absorption and biodegradation by microsphere provided a comparable contribution to oil elimination. Together with scanning electron microscope observation, the physical mechanism was that the reticulate structure of microsphere surface facilitating oil adsorption and bacteria attachment. Via metabarcoding analysis for meta and metabolically-active microbes, we demonstrated the primary working center was located at the microsphere. Proteobacteria, Firmicutes, Bacteroidota and Desulfobacterota were the key activated bacteria. More importantly, we revealed the ecological mechanisms were associated with the following aspects: 1) the addition of microsphere significantly improved the metabolic activity of bacteria (particularly including several oil-degrading taxa); 2) the microspheres enhanced ecological stability and microbial functional diversification during bioremediation; 3) expressing activity of pathways involving oil component degradation, biosurfactant production, biofilm architecture, biogeochemical and energy cycling all were observed to be up-regulated in microsphere-treated samples. Altogether, our results provide important theoretical guidance and data support on application of immobilization technology in removing in-situ oil pollution of deep-sea sediment.

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促进典型深海条件下石油污染沉积物修复的巴罗杜里固定化复合材料:性能和潜在机制。
研制固定化生物试剂对加强海洋石油污染的生物修复具有重要意义。然而,在深海条件下进行的相关研究仍然非常少。在此,我们首次开发了一种包裹生物和化学材料的巴氏微球,用于在深海微观世界中修复受石油污染的沉积物。微球处理组的总石油降解效率在一个月内达到 71%,与自然修复相比提高了约 35%。微球的吸收和生物降解对消除油污的贡献相当。结合扫描电子显微镜观察,物理机制是微球表面的网状结构有利于油类吸附和细菌附着。通过对元微生物和代谢活性微生物的代谢编码分析,我们证明了主要的工作中心位于微球。蛋白细菌、固真菌、类杆菌和脱硫菌是主要的活性细菌。更重要的是,我们发现生态机制与以下几个方面有关:1)微球的加入大大提高了细菌(特别是包括几个降解石油的类群)的代谢活性;2)微球增强了生物修复过程中的生态稳定性和微生物功能的多样化;3)在微球处理过的样品中,涉及石油成分降解、生物表面活性剂生产、生物膜结构、生物地球化学和能量循环等途径的表达活性都得到了上调。总之,我们的研究结果为应用固定化技术去除深海沉积物原位石油污染提供了重要的理论指导和数据支持。
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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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