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Updated: Apr 23, 2026

Bioprospecting of Extremophilic Microorganisms to Address Environmental Pollution
Published on: December 30, 2021
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.
Abstract:
The microbiological inventory of spacecraft and the associated assembly facility surfaces represent the primary pool of forward contaminants that may impact the integrity of life-detection missions. Herein, we report on the characterization of several strains of hydrogen peroxide-resistant Acinetobacter, which were isolated during the Mars Phoenix lander assembly. All Phoenix-associated Acinetobacter strains possessed very high catalase specific activities, and the specific strain, A. gyllenbergii 2P01AA, displayed a survival against hydrogen peroxide (no loss in 100 mM H2O2 for 1 h) that is perhaps the highest known among Gram-negative and non-spore-forming bacteria. Proteomic characterizations reveal a survival mechanism inclusive of proteins coupled to peroxide degradation (catalase and alkyl hydroperoxide reductase), energy/redox management (dihydrolipoamide dehydrogenase), protein synthesis/folding (EF-G, EF-Ts, peptidyl-tRNA hydrolase, DnaK), membrane functions (OmpA-like protein and ABC transporter-related protein), and nucleotide metabolism (HIT family hydrolase). Together, these survivability and biochemical parameters support the hypothesis that oxidative tolerance and the related biochemical features are the measurable phenotypes or outcomes for microbial survival in the spacecraft assembly facilities, where the low-humidity (desiccation) and clean (low-nutrient) conditions may serve as selective pressures. Hence, the spacecraft-associated Acinetobacter, due to the conferred oxidative tolerances, may ultimately hinder efforts to reduce spacecraft bioburden when using chemical sterilants, thus suggesting that non-spore-forming bacteria may need to be included in the bioburden accounting for future life-detection missions.
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.
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