Microbiological barrier techniques
Microbiological contamination barrier techniques for solving spacecraft sterilization problems
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Microbiological contamination barrier techniques for solving spacecraft sterilization problems
Design criteria for planetary spacecraft subject to heat sterilization
Microbiotank for quantitative study on shedding of microorganisms by humans, in relation to spacecraft sterilization program
Encapsulated contaminants effects on spacecraft sterilization requirements
Techniques for assessing bacterial population on and in human skin in relation to spacecraft sterilization procedures
Bibliography on applications of ethylene oxide gas to spacecraft sterilization
Introduction: On missions seeking signs of potential life elsewhere in the solar system, we have an obligation not to bring our own Earthly life with us. Reducing the bioburden (number of living microbes) on spacecraft is therefore required by the COSPAR Policy on Planetary Protection to target bodies that are of interest for understanding the origins of life (such as Mars). The method of spacecraft sterilization predominantly used by NASA is Heat Microbial Reduction, which is typically incompatible with heat-sensitive components such as optics and electronics, and is expensive and time-consuming. Here, we present preliminary results on a novel method for spacecraft hardware sterilization: high-intensity ultrashort (femtosecond) pulsed laser illumination. Femtosecond lasers use extremely high photon fluxes (10^29 photons/sec*cm^2, ~0.03 J/cm^2) in extremely short pulses, which can inactivate even stress-tolerant microbial spores with minimal damage to the spacecraft surface. This rapid sterilization technique could be carried out in situ in a spacecraft assembly clean room using high-speed surface scanning, saving critical time and resources. It also can potentially remove or reduce debris from inactivated cells and spores. Methods: To develop optimal laser processing parameters for inactivating planetary protection-relevant organisms on metal surfaces, we inoculated 1-cm^2 mirror-polished aluminum coupons with Bacillus subtilis spores (2x10^5 spores/coupon) and tested the effect of several parameters, including pulse count and fluence. Sterilization effectiveness was measured by recovering spores using a PVA (polyvinyl acetate) peel and conducting serial dilution and plating for colony-forming units (CFUs). Results: Our results show that pulse count and fluence both affect sterilization effectiveness and that within a certain pulse count range, increasing fluence increases effectiveness. We have demonstrated the ability to reduce viable microbial counts by at least 10^-4. Future work will include testing higher abundances and different species of microorganisms, effectiveness on complex surfaces, compatibility with sensitive surfaces, and quantification of cell debris removal. Femtosecond pulsed laser illumination has the potential to provide dramatic savings in both cost and schedule over current methods of bioburden reduction to prevent forward contamination. It may also have the potential for use in surface sterilization of returned samples to prevent back contamination.
Feasibility study for X-ray or gamma ray sterilization of spacecraft - radiation effects
Effect of thermal cycling sterilization on spacecraft materials
Lethal effects of high intensity airborne sound and ultrasound and irradiation time on Bacillus Subtilis for applications to spacecraft sterilization
Spacecraft sterilization standards for Martian exploration programs
Visual monitoring techniques for microbiological contamination control to meet spacecraft sterilization requirements
Dry heat sterilization for planetary impacting spacecraft
Contractor data management package for Voyager spacecraft sterilization project
NASA management of spacecraft sterilization program
Microbiological techniques for recovering trapped microorganisms from solids for use in spacecraft sterilization program
Mission planning, and spacecraft sterilization model for microbe decontamination in application to planetary travel studies
Clean room environment for controlling microbial contamination in spacecraft sterilization program