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Iustman, L. J. R.

Publications and source records attributed to Iustman, L. J. R..

2 recordsLinked to original sources

Simultaneous production of lipopeptide and rhamnolipid biosurfactants by Pseudomonas aeruginosa: A promising blend for biosurfactant-enhanced bioremediation

Oil contamination is a significant environmental issue worldwide, and in the last decades, bioremediation has emerged as a preferred strategy to address this challenge. However, the hydrophobic nature of oil and its limited bioavailability affect its biodegradation by the soil microbiota. To mitigate these limitations, surfactant use has been proposed to enhance oil bioremediation. Nowadays, there is a growing interest in reducing the carbon footprint, and the use of biosurfactants instead of synthetic ones contributes to this global objective. In this study, surfactant-producing bacteria were isolated from a polluted urban stream in Buenos Aires Province to obtain cell-free biosurfactant extracts for use as additives in surfactant-enhanced remediation (SER) protocols in diesel-contaminated microcosms. Out of five isolates, the surfactant extracts of two Pseudomonas aeruginosa strains were selected. One of them showed a significant improvement in diesel degradation compared with the controls. Remarkably, this extract was composed of a blend of rhamnolipids and lipopeptides. This is the first work documenting the co-production of both kinds of surfactants by a P. aeruginosa strain and its potential for application in surfactant-enhanced bioremediation strategies.

microbiology↗

Unraveling the effects of polyhydroxyalkanoates accumulation in Pseudomonas extremaustralis growth and survival under different pH conditions

Polyhydroxyalkanoates (PHAs) are intracellular polymers that enhance bacterial fitness against various environmental stressors. Pseudomonas extremaustralis 14-3b is an Antarctic bacterium capable of accumulating, short-chain-length PHAs (sclPHAs), composed of C3-C5 monomers, as well as medium-chain-length PHAs (mclPHAs) containing [≥]C6 monomers. Since pH changes are pivotal in bacterial physiology, influencing microbial growth and metabolic processes, we propose that accumulated PHA increases P. extremaustralis fitness to cope with pH changes. To test this, we analyzed the production of sclPHA and mclPHA at different pH levels and its effect on bacterial survival against pH stress. P. extremaustralis was able to grow and accumulate PHA when the culture media pH ranged from 6.0 to 9.5, showing a marked loss of viability outside this range. Additionally, based on the analysis of different PHA-deficient mutants, we found that when exposed to both acidic and alkaline conditions, sclPHA and mclPHA conferred different protection against pH stress, with sclPHA making the main contribution. These results highlight the importance of PHA in supporting survival in pH-stressful environments.

microbiology↗