Metabolic characterization of alkane monooxygenases and the growth phenotypes of Pseudomonas aeruginosa ATCC 33988 on hydrocarbons.

IF 3 3区 生物学 Q3 MICROBIOLOGY Journal of Bacteriology Pub Date : 2025-04-17 Epub Date: 2025-03-11 DOI:10.1128/jb.00508-24
Thusitha S Gunasekera, Loryn L Bowen, Jhoanna C Alger
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Abstract

There is a demand and widespread interest in evaluating microbial community structures and metabolic processes in hydrocarbon environments. The current work aims to detect microbial subgroups (phenotypic subsets) and their metabolic processes, such as substrate specificity and expression of niche-associated genes. In this study, we were able to discriminate different cell types in real time from a complex sample matrix to allow the detection of live, dead, and injured cell populations in jet fuels. We found that the expression of alkB1 and alkB2 genes is induced in a growth-dependent manner and alkB2 induction started before alkB1. This indicates that as an early response of Pseudomonas aeruginosa cells' exposure to alkanes, cells activate alkB2 gene induction. Deletion of alkB1 and alkB2 genes completely inhibited P. aeruginosa ATCC 33988 growth in jet fuel, suggesting that two alkane monooxygenases are responsible for the degradation of alkanes and jet fuel. Interestingly, the AlkB2 has a broader (n-C8-n-C16) substrate range compared to AlkB1 (n-C12-n-C16). The data indicate that two alkane utilization pathways can coexist in P. aeruginosa ATCC 33988, and they are differentially expressed in response to n-C6-n-C16 alkanes found in jet fuel. This study provided additional information on the heterogeneity and phenotypic diversity within the same species after exposure to hydrocarbons. This work advances our understanding of microbial community structures and provides new insight into the alkane metabolism of P. aeruginosa.IMPORTANCEAlkane degradation allows for the natural breakdown of hydrocarbons found in crude oil, which can significantly contribute to environmental remediation. The metabolic process of microbes to hydrocarbons and the expression of niche-associated genes are not well understood. Pseudomonas aeruginosa ATCC 33988, originally isolated from a jet fuel tank, degrades hydrocarbons effectively and outcompetes the type strain Pseudomonas aeruginosa PAO1. In this study, we found differential expression of alkB1 and alkB2 alkane monooxygenase genes and the relative importance of these genes in alkane degradation. We found different phenotypic subsets within the same genotype, which are influenced by hydrocarbon stress. Overall, the research conducted in this study significantly contributes to our knowledge about microbial processes and community structure in hydrocarbon environments.

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烷烃单加氧酶的代谢特性及铜绿假单胞菌ATCC 33988对烃类的生长表型
对烃类环境中微生物群落结构和代谢过程的评价是一种需求和广泛的兴趣。目前的工作旨在检测微生物亚群(表型亚群)及其代谢过程,如底物特异性和生态位相关基因的表达。在这项研究中,我们能够从复杂的样品基质中实时区分不同的细胞类型,从而检测喷气燃料中的活、死和损伤细胞群。我们发现alkB1和alkB2基因的表达以生长依赖的方式被诱导,而alkB2的诱导开始于alkB1。这表明,作为铜绿假单胞菌细胞暴露于烷烃的早期反应,细胞激活了alkB2基因诱导。alkB1和alkB2基因的缺失完全抑制了P. aeruginosa ATCC 33988在航油中的生长,提示两种烷烃单加氧酶参与了烷烃和航油的降解。有趣的是,与AlkB1 (n-C12-n-C16)相比,AlkB2具有更宽的底物范围(n-C8-n-C16)。结果表明,P. aeruginosa ATCC 33988可同时存在两种烷烃利用途径,并对航空燃料中存在的n-C6-n-C16烷烃有差异表达。本研究为同一物种暴露于碳氢化合物后的异质性和表型多样性提供了额外的信息。这项工作促进了我们对微生物群落结构的理解,并为铜绿假单胞菌的烷烃代谢提供了新的见解。重要意义烷烃的降解使得原油中碳氢化合物的自然分解成为可能,这对环境修复有重要贡献。微生物对碳氢化合物的代谢过程和生态位相关基因的表达尚不清楚。铜绿假单胞菌ATCC 33988最初从喷气燃料箱中分离出来,有效地降解碳氢化合物,并与铜绿假单胞菌PAO1型菌株竞争。在本研究中,我们发现alkB1和alkB2烷烃单加氧酶基因的差异表达,以及这些基因在烷烃降解中的相对重要性。我们发现在同一基因型中存在不同的表型亚群,这些亚群受到烃胁迫的影响。总的来说,本研究对我们了解烃环境中的微生物过程和群落结构有重要的贡献。
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来源期刊
Journal of Bacteriology
Journal of Bacteriology 生物-微生物学
CiteScore
6.10
自引率
9.40%
发文量
324
审稿时长
1.3 months
期刊介绍: The Journal of Bacteriology (JB) publishes research articles that probe fundamental processes in bacteria, archaea and their viruses, and the molecular mechanisms by which they interact with each other and with their hosts and their environments.
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