原油污染土壤中几种原油降解细菌的分离与鉴定

IF 3.4 3区 工程技术 Q3 ENERGY & FUELS
Na Chen, Farag M. A. Altalbawy, Dharmesh Sur, Sairah A. Karim, Mamata Chahar, Rajni Verma, Nizomiddin Juraev, Hassan Thoulfikar A. Alamir, Faraj Mohammed, Abed J. Kadhim, Marwa Alhadrawe, Al-Ghasem M. Sina, Aseel Smerat
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引用次数: 0

摘要

石油烃是一类严重危害海洋和陆地生态系统的主要有机污染物,迫切需要具有成本效益的修复方法。生物修复是一种利用微生物和植物降解或稳定污染物的有前途的创新方法,越来越受到人们的关注。本研究的重点是在基尔库克炼油厂的五个地点从石油污染的土壤中分离和鉴定原油降解细菌。研究人员分析了土壤样品的物理和化学性质,包括有机碳、石灰含量、总石油烃水平和重金属浓度。富集后,分离出能在含原油培养基中生长的细菌,筛选出24株进行DNA提取和16S rRNA基因测序的分子鉴定。对这些菌株进行遗传多样性评估,并利用MEGA version 4软件建立系统发育树。利用分光光度法和重量法进一步评价了前10个菌株在含0.5%原油的培养基中的降解能力。值得注意的分离物包括乔氏红球菌、中间嗜色杆菌、西班牙嗜色杆菌和苋菜柠檬酸杆菌。这些细菌在不同类型的原油中表现出显著的降解活性,其中原油的降解效率最高,其次是重质原油和轻质原油,特别是O. intermedium、C. amalonaticus和A. spanius。根据菌群的降解性能,确定了A和B两个菌群,其中A对稠油的降解效果最好,B对原油的降解效果最好。利用物种多样性指数进一步分析了细菌多样性,证实了采样土壤中存在广泛的碳氢化合物降解微生物。最终,鉴定出的菌株显示出强大的潜力,用于旨在减轻受影响环境中石油烃污染的生物修复策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Isolation and Identification of Some Crude Oil-Degrading Bacterial From Soil Contaminated With Crude Oil

Isolation and Identification of Some Crude Oil-Degrading Bacterial From Soil Contaminated With Crude Oil

Isolation and Identification of Some Crude Oil-Degrading Bacterial From Soil Contaminated With Crude Oil

Isolation and Identification of Some Crude Oil-Degrading Bacterial From Soil Contaminated With Crude Oil

Isolation and Identification of Some Crude Oil-Degrading Bacterial From Soil Contaminated With Crude Oil

Petroleum hydrocarbons represent a major class of organic pollutants that seriously endanger marine and terrestrial ecosystems upon contamination, highlighting the urgent need for cost-effective remediation methods. Bioremediation, a promising and innovative approach utilizing microorganisms and plants to degrade or stabilize pollutants, has gained increasing attention. This study focused on isolating and identifying crude oil-degrading bacteria from petroleum-contaminated soils in five locations within the Kirkuk oil refinery. Soil samples were analyzed for physical and chemical properties, including organic carbon, lime content, total petroleum hydrocarbon levels, and heavy metal concentrations. After enrichment, bacteria capable of thriving in crude oil-containing media were isolated, resulting in 24 strains selected for molecular identification using DNA extraction and 16S rRNA gene sequencing. The genetic diversity of these strains was assessed, and a phylogenetic tree was created using MEGA version 4 software. The top 10 strains were further evaluated for their degradation capabilities in media with 0.5% crude oil using spectrophotometric and gravimetric techniques. Notable isolates included Rhodococcus jostii, Ochrobactrum intermedium, Achromobacter spanius, and Citrobacter amalonaticus. These bacteria demonstrated significant degradation activity across different oil types, with the highest efficiency recorded in crude oil, followed by heavy and light crude oil, particularly by O. intermedium, C. amalonaticus, and A. spanius. Two microbial consortia, A and B, were formulated based on their degradation performance, with A being optimal for heavy oil and B for crude oil. The bacterial diversity was further analyzed using species diversity indices, confirming a broad range of hydrocarbon-degrading microbes within the sampled soils. Ultimately, the identified strains show strong potential for use in bioremediation strategies aimed at mitigating petroleum hydrocarbon pollution in affected environments.

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来源期刊
Energy Science & Engineering
Energy Science & Engineering Engineering-Safety, Risk, Reliability and Quality
CiteScore
6.80
自引率
7.90%
发文量
298
审稿时长
11 weeks
期刊介绍: Energy Science & Engineering is a peer reviewed, open access journal dedicated to fundamental and applied research on energy and supply and use. Published as a co-operative venture of Wiley and SCI (Society of Chemical Industry), the journal offers authors a fast route to publication and the ability to share their research with the widest possible audience of scientists, professionals and other interested people across the globe. Securing an affordable and low carbon energy supply is a critical challenge of the 21st century and the solutions will require collaboration between scientists and engineers worldwide. This new journal aims to facilitate collaboration and spark innovation in energy research and development. Due to the importance of this topic to society and economic development the journal will give priority to quality research papers that are accessible to a broad readership and discuss sustainable, state-of-the art approaches to shaping the future of energy. This multidisciplinary journal will appeal to all researchers and professionals working in any area of energy in academia, industry or government, including scientists, engineers, consultants, policy-makers, government officials, economists and corporate organisations.
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