从石油储层分离的碳氢化合物降解细菌的比较基因组学中获得分类和进化见解

IF 5.4 Q2 ENGINEERING, ENVIRONMENTAL
Alejandra Calderon-Fajardo , Kelly J. Hidalgo , Erika A. Valoni Romao , Camila Passos Silva Gonzales , Luiz Fernando Martins , Valéria Maia Oliveira
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引用次数: 0

摘要

石油碳氢化合物及其衍生物是全球多个行业广泛使用的化合物。不适当地处置或处理碳氢化合物衍生产品可能会对环境和/或健康造成负面影响。了解微生物降解碳氢化合物的基因组特征可提供宝贵的信息,从而更好地利用基于生物修复的策略来恢复受影响的区域。因此,本研究旨在描述和比较从深层油藏中分离出来的四种细菌的碳氢化合物降解基因和途径:CBMAI 636、CBMAI 705、CBMAI 707、CBMAI 709。此外,还进行了系统发育分析,试图揭示这些功能基因与在不同类群和环境中发现的功能基因之间的进化关系。基因组分析证实,所研究的菌株具有很高的碳氢化合物降解基因潜力。比较基因组学表明,所有菌株都存在碳氢化合物降解基因,这表明它们在适应受碳氢化合物影响的环境方面存在进化趋同性。有趣的是,木糖酸 Achromobacter CBMAI 709 表现出独特的同源基因,这些基因在石油化合物的捕获、吸收和/或分解过程中发挥了关键作用,增强了其对碳氢化合物污染环境的适应性。这些创新性的结果为了解碳氢化合物降解基因和途径的多样性提供了新的进化见解,丰富了我们对微生物适应富含碳氢化合物的生境的认识。这项研究的发现强调了这些生物在生物修复方面的潜力,为未来应用于环境污染修复铺平了道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Taxonomic and evolutionary insights from comparative genomics of hydrocarbon degrading bacteria isolated from petroleum reservoirs

Taxonomic and evolutionary insights from comparative genomics of hydrocarbon degrading bacteria isolated from petroleum reservoirs

Petroleum hydrocarbons and their derivatives are compounds widely used in several industries worldwide. Inappropriate disposal or handling of hydrocarbon-derived products may generate environmental and/or health negative impacts. Understanding the genomic traits underlying hydrocarbon degradation by microorganisms may provide valuable information to improve the use of bioremediation-based strategies for the recovery of impacted areas. In this sense, this study aimed to characterize and compare hydrocarbon-degradation genes and pathways of four bacteria isolated from deep oil reservoirs: Micrococcus sp. CBMAI 636, Dietzia maris CBMAI 705, Bacillus subtilis CBMAI 707, Achromobacter xylosoxidans CBMAI 709, via complete genome sequencing and functional annotation. In addition, phylogenetic analyses were carried out seeking to unravel the evolutionary relatedness of such functional genes to those found in different taxa and environments. Genomic analyses confirmed a high genetic potential for hydrocarbon degradation in the studied strains. Comparative genomics indicated the presence of hydrocarbon degradation genes across all strains, suggesting adaptive evolutionary convergence to hydrocarbon-affected environments. Interestingly, Achromobacter xylosoxidans CBMAI 709 exhibited unique orthologous genes that play a crucial role in the capture, uptake and/or breakdown of petroleum compounds, enhancing its adaptability to hydrocarbon-contaminated environments. These are innovative results that provide novel evolutionary insights into the diversity of hydrocarbon-degrading genes and pathways, enriching our understanding of microbial adaptation to hydrocarbon-rich habitats. The findings gathered in this study underscore the potential of these organisms for bioremediation endeavors, paving the way for future applications in environmental polluting restoration.

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来源期刊
Journal of hazardous materials advances
Journal of hazardous materials advances Environmental Engineering
CiteScore
4.80
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