NASA Logo

NTRS

NTRS - NASA Technical Reports Server

Press Enter or click the Search button to begin your search.

Back to Results
Microbial Communities in Microgravity: Simulation in Lab and on the ComputerMicroorganisms grow differently in spaceflight than they do on Earth. While much remains unexplained about how microgravity affects microbial growth, one dominant hypothesis is that the lack of density-driven convection in the liquid growth environment makes mixing diffusion-limited, and therefore slower. This is supported by evidence that individual microbial strains experience starvation and acid stress in microgravity. However, if it is true, then microgravity would also have measurable effects on microbes in mixed communities, because many interspecies interactions involve the exchange of soluble metabolites through the medium (cross-feeding). Specifically, cooperative cross-feeding communities would grow more slowly in microgravity, and cooperation would be less stable on evolutionary timescales.

Here we describe our efforts to test this hypothesis by simulating microgravity in silico and in the lab, using a model system of Eschericia coli and Salmonella enterica that grow only when they can exchange methionine and acetate. We created CAMDLES (CFD-DEM Artificial Microgravity Developments for Living Ecosystem Simulation) as an extension of CFDEM®coupling software, to carry out computational modeling of biological flows, growth, and mass transfer in microgravity and also in laboratory artificial microgravity devices (rotating wall vessels, RWV). Using CAMDLES, we found distinct differences in growth rates between RWV and true microgravity, and we were able to identify several features, such as spatial distribution, biofilm formation, and product yield parameters, that influence the degree to which RWV growth recapitulates microgravity growth. In addition, we report on the development of a laboratory system for monitoring growth rates and species ratios of the community in RWVs, using fluorescent strains. Pairing CAMDLES with the laboratory model system allows us to generate quantitative predictions about the effects of spaceflight on organisms that will be essential to sustaining human space exploration in the long term.
Document ID
20220016767
Acquisition Source
Ames Research Center
Document Type
Poster
Authors
Jessica Audrey Lee
(Ames Research Center Mountain View, California, United States)
Rocky An
(Cornell University Ithaca, New York, United States)
Juliana Gesztesi
(Northeastern University Boston, Massachusetts, United States)
Jared Broddrick
(Ames Research Center Mountain View, California, United States)
Date Acquired
November 4, 2022
Subject Category
Life Sciences (General)
Meeting Information
Meeting: ASGSR 25th Annual Conference
Location: Houston, TX
Country: US
Start Date: November 9, 2022
End Date: November 12, 2022
Sponsors: American Society for Gravitational and Space Research
Funding Number(s)
WBS: 281945.02.69.01.04
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
Technical Review
Single Expert
Keywords
microbiology
modeling
microgravity
rotating wall vessel
fluorescence
No Preview Available