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No Effect of Microgravity and Simulated Mars Gravity on Final Bacterial Cell Concentrations on the International Space Station: Applications to Space Bioproduction

机译:微痛和模拟火星重力对国际空间站的最终细菌细胞浓度的影响:空间生物生产的应用

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摘要

Microorganisms perform countless tasks on Earth and they are expected to be essential for human space exploration. Despite the interest in the responses of bacteria to space conditions, the findings on the effects of microgravity have been contradictory, while the effects of Martian gravity are nearly unknown. We performed the ESA BioRock experiment on the International Space Station to study microbe-mineral interactions in microgravity, simulated Mars gravity and simulated Earth gravity, as well as in ground gravity controls, with three bacterial species: Sphingomonas desiccabilis, Bacillus subtilis, and Cupriavidus metallidurans. To our knowledge, this was the first experiment to study simulated Martian gravity on bacteria using a space platform. Here, we tested the hypothesis that different gravity regimens can influence the final cell concentrations achieved after a multi-week period in space. Despite the different sedimentation rates predicted, we found no significant differences in final cell counts and optical densities between the three gravity regimens on the ISS. This suggests that possible gravity-related effects on bacterial growth were overcome by the end of the experiment. The results indicate that microbial-supported bioproduction and life support systems can be effectively performed in space (e.g., Mars), as on Earth.
机译:微生物在地球上表现无数的任务,预计它们对人类空间勘探至关重要。尽管对细菌对空间条件的反应有兴趣,但微匍匐的影响的结果一直在矛盾,而火星重力的影响几乎未知。我们对国际空间站进行了ESA Biorock实验,研究了微重力的微生物矿物相互作用,模拟火星重力和模拟地球重力,以及地面重力控制,三种细菌种类:鞘氨芽孢杆菌,枯草芽孢杆菌和古代维氏金属菌。据我们所知,这是使用空间平台研究模拟火星重力的第一个试验。在这里,我们测试了不同重力方案可以影响在空间中多周期内实现的最终细胞浓度的假设。尽管预测了不同的沉降率,但我们发现在ISS上的三重重力方案之间的最终细胞计数和光学密度没有显着差异。这表明在实验结束时克服了可能的对细菌生长的可能性相关的影响。结果表明,在地球上,可以在空间(例如,火星)中有效地进行微生物支撑的生物生产和寿命支持系统。

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