Ecological Implications Of Bacterial Degradation Of Alkanes In Petroleum-Contaminated Environments: A Review Of Microbial Community Dynamics And Functional Interactions

Adetitun D O, Tomilayo R B
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 This review explores the ecological implications of bacterial degradation of alkanes in petroleum-contaminated environments, with a focus on microbial community dynamics and functional interactions. The complex interplay between alkane-degrading bacteria and other microorganisms shapes the fate and behavior of petroleum hydrocarbons, influencing ecosystem functioning and stability. The microbial community structure in petroleum-contaminated environments is characterized by a diverse assemblage of alkane-degrading bacteria (Such as Pseudomonas sp., Alcaligenes sp., Bacillus sp., Acinetobacter sp). These bacteria exhibit varying abilities to degrade different hydrocarbon fractions, leading to distinct patterns in community composition. Factors such as hydrocarbon concentration, environmental conditions, and the presence of co-contaminants influence the abundance and distribution of alkane-degrading taxa, shaping the microbial community dynamics. Functional interactions among alkane-degrading bacteria are essential for efficient degradation processes. Synergistic interactions and metabolic cooperation between different microbial species enhance the degradation capabilities of the community as a whole. Co-metabolism and cross-feeding relationships among bacteria enable the degradation of complex hydrocarbon mixtures. Furthermore, non-degrading microorganisms contribute to the overall alkane degradation process by providing essential metabolic intermediates or modulating environmental conditions. The presence of alkane-degrading bacteria affects the diversity and abundance of other microbial communities, leading to cascading effects on the broader ecosystem. Molecular tools, such as high-throughput sequencing and metagenomics, have advanced our understanding of microbial community structure and function. This review provides valuable insights into the ecological implications of bacterial degradation of alkanes in petroleum-contaminated environments. It highlights the importance of microbial community dynamics and functional interactions in shaping the fate of petroleum hydrocarbons and emphasizes the potential of harnessing these interactions for effective bioremediation strategies. Further research is needed to unravel the complex ecological networks involved in alkane degradation and to develop innovative approaches for sustainable environmental management.","PeriodicalId":12516,"journal":{"name":"Global Journal of Pure and Applied Sciences","volume":"85 1","pages":"0"},"PeriodicalIF":0.0000,"publicationDate":"2023-09-29","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Global Journal of Pure and Applied Sciences","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.4314/gjpas.v29i2.4","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
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Abstract

This review explores the ecological implications of bacterial degradation of alkanes in petroleum-contaminated environments, with a focus on microbial community dynamics and functional interactions. The complex interplay between alkane-degrading bacteria and other microorganisms shapes the fate and behavior of petroleum hydrocarbons, influencing ecosystem functioning and stability. The microbial community structure in petroleum-contaminated environments is characterized by a diverse assemblage of alkane-degrading bacteria (Such as Pseudomonas sp., Alcaligenes sp., Bacillus sp., Acinetobacter sp). These bacteria exhibit varying abilities to degrade different hydrocarbon fractions, leading to distinct patterns in community composition. Factors such as hydrocarbon concentration, environmental conditions, and the presence of co-contaminants influence the abundance and distribution of alkane-degrading taxa, shaping the microbial community dynamics. Functional interactions among alkane-degrading bacteria are essential for efficient degradation processes. Synergistic interactions and metabolic cooperation between different microbial species enhance the degradation capabilities of the community as a whole. Co-metabolism and cross-feeding relationships among bacteria enable the degradation of complex hydrocarbon mixtures. Furthermore, non-degrading microorganisms contribute to the overall alkane degradation process by providing essential metabolic intermediates or modulating environmental conditions. The presence of alkane-degrading bacteria affects the diversity and abundance of other microbial communities, leading to cascading effects on the broader ecosystem. Molecular tools, such as high-throughput sequencing and metagenomics, have advanced our understanding of microbial community structure and function. This review provides valuable insights into the ecological implications of bacterial degradation of alkanes in petroleum-contaminated environments. It highlights the importance of microbial community dynamics and functional interactions in shaping the fate of petroleum hydrocarbons and emphasizes the potential of harnessing these interactions for effective bioremediation strategies. Further research is needed to unravel the complex ecological networks involved in alkane degradation and to develop innovative approaches for sustainable environmental management.
石油污染环境中烷烃细菌降解的生态学意义:微生物群落动态和功能相互作用综述
& # x0D;本文综述了石油污染环境中细菌降解烷烃的生态学意义,重点介绍了微生物群落动态和功能相互作用。烷烃降解细菌和其他微生物之间复杂的相互作用决定了石油碳氢化合物的命运和行为,影响了生态系统的功能和稳定性。石油污染环境中微生物群落结构的特点是烷烃降解细菌的多样化组合(如假单胞菌、Alcaligenes、芽孢杆菌、不动杆菌等)。这些细菌表现出不同的能力来降解不同的碳氢化合物馏分,导致不同的群落组成模式。烃类浓度、环境条件和共污染物的存在等因素影响烷烃降解类群的丰度和分布,形成微生物群落动态。烷烃降解细菌之间的功能相互作用是有效降解过程所必需的。不同微生物物种之间的协同作用和代谢合作提高了整个群落的降解能力。细菌之间的共代谢和交叉取食关系使复杂的碳氢化合物混合物的降解成为可能。此外,非降解微生物通过提供必要的代谢中间体或调节环境条件来促进整个烷烃降解过程。烷烃降解细菌的存在影响其他微生物群落的多样性和丰度,导致对更广泛的生态系统的级联效应。分子工具,如高通量测序和宏基因组学,促进了我们对微生物群落结构和功能的理解。本文综述了石油污染环境中烷烃细菌降解的生态学意义。它强调了微生物群落动态和功能相互作用在塑造石油碳氢化合物命运中的重要性,并强调了利用这些相互作用进行有效生物修复策略的潜力。需要进一步的研究来揭示涉及烷烃降解的复杂生态网络,并开发可持续环境管理的创新方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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