New insights into xenobiotic tolerance of Antarctic bacteria: transcriptomic analysis of Pseudomonas sp. TNT3 during 2,4,6-trinitrotoluene biotransformation

被引:0
作者
Ma. Ángeles Cabrera
Sebastián L. Márquez
José M. Pérez-Donoso
机构
[1] Universidad Andrés Bello,Center for Bioinformatics and Integrative Biology (CBIB), Facultad de Ciencias de La Vida
[2] Fundación Científica y Cultural Biociencia,undefined
来源
Environmental Science and Pollution Research | 2024年 / 31卷
关键词
Transcriptomics; TNT; Xenobiotics; Oxidative stress; Azoreductase; Antarctica; Bioremediation;
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摘要
The xenobiotic 2,4,6-trinitrotoluene (TNT) is a highly persistent environmental contaminant, whose biotransformation by microorganisms has attracted renewed attention. In previous research, we reported the discovery of Pseudomonas sp. TNT3, the first described Antarctic bacterium with the ability to biotransform TNT. Furthermore, through genomic analysis, we identified distinctive features in this isolate associated with the biotransformation of TNT and other xenobiotics. However, the metabolic pathways and genes active during TNT exposure in this bacterium remained unexplored. In the present transcriptomic study, we used RNA-sequencing to investigate gene expression changes in Pseudomonas sp. TNT3 exposed to 100 mg/L of TNT. The results showed differential expression of 194 genes (54 upregulated and 140 downregulated), mostly encoding hypothetical proteins. The most highly upregulated gene (> 1000-fold) encoded an azoreductase enzyme not previously described. Other significantly upregulated genes were associated with (nitro)aromatics detoxification, oxidative, thiol-specific, and nitrosative stress responses, and (nitro)aromatic xenobiotic tolerance via efflux pumps. Most of the downregulated genes were involved in the electron transport chain, pyrroloquinoline quinone (PQQ)-related alcohol oxidation, and motility. These findings highlight a complex cellular response to TNT exposure, with the azoreductase enzyme likely playing a crucial role in TNT biotransformation. Our study provides new insights into the molecular mechanisms of TNT biotransformation and aids in developing effective TNT bioremediation strategies. To the best of our knowledge, this report is the first transcriptomic response analysis of an Antarctic bacterium during TNT biotransformation.
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页码:17256 / 17274
页数:18
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共 249 条
  • [1] Adams M(2005)Structural and biochemical analysis reveal pirins to possess quercetinase activity J Biol Chem 280 28675-28682
  • [2] Jia Z(2017)The role of glutamine synthetase in energy production and glutamine metabolism during oxidative stress Antonie Van Leeuwenhoek 110 629-639
  • [3] Aldarini N(2009)Glutathione transferases in bacteria FEBS J 276 58-75
  • [4] Alhasawi AA(2015)HTSeq-A Python framework to work with high-throughput sequencing data Bioinformatics 31 166-169
  • [5] Thomas SC(2003)The structure and mechanism of methanol dehydrogenase Biochim Biophys Acta - Proteins Proteomics 1647 18-23
  • [6] Appanna VD(2023)UniProt: the universal protein knowledgebase in 2023 Nucleic Acids Res 51 D523-D531
  • [7] Allocati N(1999)Cloning and sequence analysis of two J Bacteriol 181 6254-6263
  • [8] Federici L(2003) flavoprotein xenobiotic reductases FEMS Microbiol Rev 27 145-163
  • [9] Masulli M(2020)The MerR family of transcriptional regulators Environ Pollut 262 113922-D334
  • [10] Di Ilio C(2022)Biotransformation of 2,4,6-trinitrotoluene by Genes (basel) 13 1354-805