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Published on: February 7, 2018
Pseudomonas putida mt-2 tolerates reactive oxygen species generated during matric stress by inducing a major
Nanna B Svenningsen1, Danilo Pérez-Pantoja2, Pablo I Nikel3
1Department of Plant and Environmental Sciences, Section of Genetics and Microbiology, University of Copenhagen, Thorvaldsensvej 40, 1871, Frederiksberg C, Denmark. nbsv@plen.ku.dk.
Background:
Soil bacteria typically thrive in water-limited habitats that cause an inherent matric stress to the cognate cells. Matric stress gives rise to accumulation of intracellular reactive oxygen species (ROS), which in turn may induce oxidative stress, and even promote mutagenesis. However, little is known about the impact of ROS induced by water limitation on bacteria performing important processes as pollutant biodegradation in the environment. We have rigorously examined the physiological consequences of the rise of intracellular ROS caused by matric stress for the toluene- and xylene-degrading soil bacterium Pseudomonas putida mt-2.
Methods:
For the current experiments, controlled matric potential stress was delivered to P. putida cells by addition of polyethylene glycol to liquid cultures, and ROS formation in individual cells monitored by a specific dye. The physiological response to ROS was then quantified by both RT-qPCR of RNA transcripts from genes accredited as proxies of oxidative stress and the SOS response along with cognate transcriptional GFP fusions to the promoters of the same genes.
Results:
Extensive matric stress at -1.5 MPa clearly increased intracellular accumulation of ROS. The expression of the two major oxidative defense genes katA and ahpC, as well as the hydroperoxide resistance gene osmC, was induced under matric stress. Different induction profiles of the reporters were related to the severity of the stress. To determine if matric stress lead to induction of the SOS-response, we constructed a DNA damage-inducible bioreporter based on the LexA-controlled phage promoter PPP3901. According to bioreporter analysis, this gene was expressed during extensive matric stress. Despite this DNA-damage mediated gene induction, we observed no increase in the mutation frequency as monitored by emergence of rifampicin-resistant colonies.
Conclusions:
Under conditions of extensive matric stress, we observed a direct link between matric stress, ROS formation, induction of ROS-detoxifying functions and (partial) activation of the SOS system. However, such a stress-response regime did not translate into a general DNA mutagenesis status. Taken together, the data suggest that P. putida mt-2 can cope with this archetypal environmental stress while preserving genome stability, a quality that strengthens the status of this bacterium for biotechnological purposes.
Insights
Soil bacteria like Pseudomonas putida mt-2 cope with water scarcity by managing reactive oxygen species (ROS) and activating defense systems. This response prevents DNA mutations, maintaining genome stability for potential biotechnological applications.
Area of Science:
- Environmental microbiology
- Bacterial physiology
- Biotechnology
Background:
- Soil bacteria face water-limited conditions, leading to matric stress and increased reactive oxygen species (ROS).
- The impact of ROS on crucial bacterial processes like pollutant biodegradation under water stress is not well understood.
- This study investigates the physiological effects of matric stress-induced ROS in the soil bacterium Pseudomonas putida mt-2.
Purpose of the Study:
- To examine the physiological consequences of intracellular ROS accumulation caused by matric stress in Pseudomonas putida mt-2.
- To assess the induction of oxidative stress and SOS response genes under varying levels of matric stress.
- To determine if matric stress leads to increased DNA mutagenesis in P. putida mt-2.
Main Methods:
- Controlled matric potential stress was applied to P. putida cells using polyethylene glycol.
- Intracellular ROS formation was monitored using a specific dye.
- Gene expression of oxidative stress and SOS response proxies was quantified using RT-qPCR and GFP bioreporters.
Main Results:
- Extensive matric stress (-1.5 MPa) significantly increased intracellular ROS accumulation.
- Oxidative defense genes (katA, ahpC) and hydroperoxide resistance gene (osmC) were induced by matric stress.
- A DNA damage-inducible bioreporter indicated SOS response activation, but no increase in mutation frequency was observed.
Conclusions:
- Pseudomonas putida mt-2 exhibits a direct link between matric stress, ROS formation, and the induction of ROS-detoxifying functions and the SOS system.
- Despite stress responses, P. putida mt-2 maintained genome stability, showing no general increase in DNA mutagenesis.
- The bacterium's ability to cope with matric stress while preserving genome integrity highlights its potential for biotechnological applications.
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