Characterization of hydrogen peroxide-resistant Acinetobacter species isolated during the Mars Phoenix spacecraft

I Derecho1, K B McCoy, P Vaishampayan

  • 11 California State Polytechnic University , Pomona, California.

Astrobiology
|September 23, 2014
PubMed

Insights

Spacecraft assembly facilities harbor hydrogen peroxide-resistant Acinetobacter bacteria. These microbes, like Acinetobacter gyllenbergii 2P01AA, exhibit extreme oxidative tolerance, potentially complicating bioburden reduction for future missions.

Area of Science:

  • Microbiology
  • Astrobiology
  • Space Science

Background:

  • Spacecraft surfaces and assembly facilities harbor microbial contaminants.
  • These contaminants pose a risk to the integrity of life-detection missions.
  • Understanding microbial resistance is crucial for planetary protection.

Purpose of the Study:

  • Characterize hydrogen peroxide-resistant Acinetobacter strains isolated from the Mars Phoenix lander assembly.
  • Investigate the survival mechanisms of these bacteria against oxidative stress.
  • Assess the implications of these findings for spacecraft bioburden control and future life-detection missions.

Main Methods:

  • Isolation and characterization of Acinetobacter strains from spacecraft assembly environments.
  • Assessing bacterial survival rates against hydrogen peroxide exposure.
  • Proteomic analysis to identify key proteins involved in oxidative stress resistance.

Main Results:

  • Several hydrogen peroxide-resistant Acinetobacter strains were identified, including Acinetobacter gyllenbergii 2P01AA.
  • A. gyllenbergii 2P01AA demonstrated exceptional survival in high concentrations of hydrogen peroxide.
  • Proteomic analysis revealed a survival strategy involving proteins for peroxide degradation, energy management, protein synthesis, membrane function, and nucleotide metabolism.

Conclusions:

  • Oxidative tolerance is a key phenotype for microbial survival in spacecraft assembly facilities, driven by low-humidity and low-nutrient conditions.
  • The high oxidative tolerance of spacecraft-associated Acinetobacter may impede bioburden reduction using chemical sterilants.
  • Non-spore-forming bacteria, due to their resilience, should be considered in bioburden assessments for future space missions.