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.

BMC Microbiology
|October 8, 2015
PubMed
Abstract

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.