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Morphology of Penicillium rubens Biofilms Formed in Space
Megan Hupka1, Raj Kedia2, Rylee Schauer3
1Molecular, Cellular, and Developmental Biology Department, University of Colorado Boulder, Boulder, CO 80309, USA.
Abstract:
Fungi biofilms have been found growing on spacecraft surfaces such as windows, piping, cables, etc. The contamination of these surfaces with fungi, although undesirable, is highly difficult to avoid. While several biofilm forming species, including Penicillium rubens, have been identified in spacecraft, the effect of microgravity on fungal biofilm formation is unknown. This study sent seven material surfaces (Stainless Steel 316, Aluminum Alloy, Titanium Alloy, Carbon Fiber, Quartz, Silicone, and Nanograss) inoculated with spores of P. rubens to the International Space Station and allowed biofilms to form for 10, 15, and 20 days to understand the effects of microgravity on biofilm morphology and growth. In general, microgravity did not induce changes in the shape of biofilms, nor did it affect growth in terms of biomass, thickness, and surface area coverage. However, microgravity increased or decreased biofilm formation in some cases, and this was incubation-time- and material-dependent. Nanograss was the material with significantly less biofilm formation, both in microgravity and on Earth, and it could potentially be interfering with hyphal adhesion and/or spore germination. Additionally, a decrease in biofilm formation at 20 days, potentially due to nutrient depletion, was seen in some space and Earth samples and was material-dependent.
Insights
Microgravity had minimal impact on fungal biofilm growth and morphology on spacecraft surfaces. However, biofilm formation varied by material and incubation time, with Nanograss showing significantly less growth.
Area of Science:
- Astrobiology
- Materials Science
- Microbiology
Background:
- Fungal biofilms contaminate spacecraft surfaces, posing a challenge for space missions.
- The impact of microgravity on fungal biofilm formation remains largely unknown.
Purpose of the Study:
- To investigate the effects of microgravity on the morphology and growth of *Penicillium rubens* biofilms on various materials.
Main Methods:
- Seven material surfaces were exposed to *P. rubens* spores on the International Space Station for 10, 15, and 20 days.
- Biofilm formation was analyzed for biomass, thickness, and surface area coverage.
- Material-dependent variations in biofilm formation were assessed.
Main Results:
- Microgravity generally did not alter biofilm shape, biomass, thickness, or surface area coverage.
- Biofilm formation showed material- and time-dependent variations under microgravity.
- Nanograss exhibited significantly reduced biofilm formation compared to other materials.
Conclusions:
- Microgravity's effect on fungal biofilms is subtle and material-dependent.
- Nanograss shows potential as an anti-biofilm material in space environments.
- Nutrient depletion may limit biofilm formation over extended periods.
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