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Decreased biofilm formation in Proteus mirabilis after short-term exposure to a simulated microgravity environment
- Source :
- Brazilian Journal of Microbiology
- Publication Year :
- 2021
- Publisher :
- Springer Science and Business Media LLC, 2021.
-
Abstract
- Background Microbes threaten human health in space exploration. Studies have shown that Proteus mirabilis has been found in human space habitats. In addition, the biological characteristics of P. mirabilis in space have been studied unconditionally. The simulated microgravity environment provides a platform for understanding the changes in the biological characteristics of P. mirabilis. Objective This study intends to explore the effect of simulated microgravity on P. mirabilis, the formation of P. mirabilis biofilm, and its related mechanism. Methods The strange deformable rods were cultured continuously for 14 days under microgravity simulated in high-aspect rotating vessels (HARVs). The morphology, growth rate, metabolism, and biofilm formation of the strain were measured, and the phenotypic changes of P. mirabilis were evaluated. Transcriptome sequencing was used to detect differentially expressed genes under simulated microgravity and compared with phenotype. Results The growth rate, metabolic ability, and biofilm forming ability of P. mirabilis were lower than those of normal gravity culture under the condition of simulated microgravity. Further analysis showed that the decrease of growth rate, metabolic ability, and biofilm forming ability may be caused by the downregulation of related genes (pstS, sodB, and fumC). Conclusion The simulated microgravity condition enables us to explore the potential relationship between bacterial phenotype and molecular biology, thus opening up a suitable and constructive method for medical fields that have not been explored before. It provides a certain strategy for the treatment of P. mirabilis infectious diseases in space environment by exploring the microgravity of P. mirabilis.
- Subjects :
- High-aspect rotating vessel
Extraterrestrial Environment
biology
Strain (chemistry)
Weightlessness
Chemistry
Simulated microgravity
Biofilm
biology.organism_classification
Microbiology
Phenotype
Proteus mirabilis
Cell biology
Transcriptome Sequencing
Human health
Differentially expressed genes
Biofilms
Environmental Microbiology
Media Technology
Humans
Transcriptome sequencing
Biofilm formation
Clinical Microbiology – Research Paper
Subjects
Details
- ISSN :
- 16784405 and 15178382
- Volume :
- 52
- Database :
- OpenAIRE
- Journal :
- Brazilian Journal of Microbiology
- Accession number :
- edsair.doi.dedup.....acd380c8b0f73ed39614e98c94ab2f7c
- Full Text :
- https://doi.org/10.1007/s42770-021-00588-y