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Does the International Space Station Leak DNA? Preliminary Results from the ISS External Microorganisms PayloadExisting crewed spacecraft like the ISS (International Space Station) leak by design. The ISS routinely releases gas to maintain life support systems and when astronauts exit the station to perform space walks. The chemical component of this leakage is well characterized, but the biological components are not. The ISS is not subject to planetary protection requirements, but planned missions to Mars will use similar systems and will be subject to planetary protection requirements. If detectable microorganisms are escaping through vents and or airlocks we may need to redesign our crewed habitats to minimize this type of contamination. To test the hypothesis that microorganisms from inside ISS are detectable on exterior surfaces an astronaut used the ISS External Microorganisms sampling kit (Rucker et al. 2018) to sample exterior surfaces of the ISS during an EVA (Extra Vehicular Activity) in January of 2025. These samples were returned to Earth for DNA extraction and sequencing. We successfully, extracted and sequenced bacterial, fungal and viral DNA from these samples that was not present in the negative controls. These results should help NASA refine the planetary protection requirements for crewed missions. Methods: The samples were collected using sterile, DNA free, buccal swabs (23 mm. diameter) housed in custom canisters. Each canister uses a 0.2 μm Teflon filter to maintain sterility as the caddy, holding 8 swabs moves in and out of vacuum. The astronaut sampled the: 1) airlock vestibule, 2) airlock thermal cover, 3) a gap in the micrometeorite shielding near the airlock, 4) a handrail near the airlock, 5) the Carbon Dioxide Removal Assembly vent, and 6) the Vacuum Exhaust System vent. The seventh swab was exposed to vacuum during the EVA without touching it to a surface. The eighth swab, a negative control, was not opened until the caddy returned to Earth. DNA was extracted from the swabs using a QIamp UCP Pathogen kit and prepared for sequencing on an Aviti (Element Biosciences) sequencer (Arslan et al. 2024). The resulting sequences were analyzed using the EDGE Bioinformatics platform (Li et al. 2017). The sequences were analyzed individually using tools like BLAST, GOTTCHA2, Kraken2, and PanGIA. The data were also assembled into metagenome assembled genomes) using tools like CONCOCT, MaxBin2 and MetaBAT2. Results: We successfully extracted and sequenced bacterial, archaeal, fungal and viral DNA from all seven samples. The handrail swab had the lowest number of reads (768,651) and the airlock thermal cover had the highest number of reads (8,819,230). These samples contain DNA from human associated bacteria (e.g. Crynebacterium riegelii), fungi (.e.g. Penicillium rubens), and viruses (e.g Alphapapillomavirus). Conclusion: Preliminary interpretation suggest that the airlock and the space suits themselves are the largest sources of contaminant DNA. Most if not all of the DNA is from organisms known to be present inside the ISS. Vents attached to life support systems may be a lesser source of biological contamination. Further analysis should help NASA address planetary protection knowledge gaps for crewed missions.
Document ID
20260004204
Acquisition Source
Johnson Space Center
Document Type
Presentation
Authors
Aaron B Regberg ORCID
(Johnson Space Center Houston, United States)
Mary Sue Bell
(Amentum (United States) Chantilly, France)
Jamie Micciulla ORCID
(Amentum (United States) Chantilly, France)
Patrick S G Chain ORCID
(Los Alamos National Laboratory Los Alamos, United States)
Richard E Davis ORCID
(Amentum (United States) Chantilly, France)
Andrew J Hatch ORCID
(Los Alamos National Laboratory Los Alamos, United States)
Paul Li ORCID
(Los Alamos National Laboratory Los Alamos, United States)
Martin Tschirschwitz
(Barrios Technology Houston, Texas, United States)
Sarah Wallace
(Johnson Space Center Houston, United States)
Date Acquired
May 12, 2026
Publication Date
May 21, 2026
Publication Information
Publisher: American Geophysical Union
Subject Category
Exobiology
Life Sciences (General)
Meeting Information
Meeting: Astrobiology Science Conference (AbSciCon)
Location: Madison, WI
Country: US
Start Date: May 17, 2026
End Date: May 22, 2026
Sponsors: American Geophysical Union
Funding Number(s)
CONTRACT_GRANT: 80JSC025D0069
CONTRACT_GRANT: 80JSC022DA035
WBS: 048290.02.01.01.05
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
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