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Remote automated multi-generational growth and observation of an animal in low Earth orbit

机译:远程自动多代生长和近地轨道动物的观察

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摘要

The ultimate survival of humanity is dependent upon colonization of other planetary bodies. Key challenges to such habitation are (patho)physiologic changes induced by known, and unknown, factors associated with long-duration and distance space exploration. However, we currently lack biological models for detecting and studying these changes. Here, we use a remote automated culture system to successfully grow an animal in low Earth orbit for six months. Our observations, over 12 generations, demonstrate that the multi-cellular soil worm Caenorhabditis elegans develops from egg to adulthood and produces progeny with identical timings in space as on the Earth. Additionally, these animals display normal rates of movement when fully fed, comparable declines in movement when starved, and appropriate growth arrest upon starvation and recovery upon re-feeding. These observations establish C. elegans as a biological model that can be used to detect changes in animal growth, development, reproduction and behaviour in response to environmental conditions during long-duration spaceflight. This experimental system is ready to be incorporated on future, unmanned interplanetary missions and could be used to study cost-effectively the effects of such missions on these biological processes and the efficacy of new life support systems and radiation shielding technologies.
机译:人类的最终生存取决于其他行星体的殖民化。这种居住的主要挑战是与长期和远距离太空探索有关的已知和未知因素引起的(病理)生理变化。但是,我们目前缺乏用于检测和研究这些变化的生物学模型。在这里,我们使用远程自动培养系统成功地在近地轨道上饲养了六个月的动物。我们超过12代的观察表明,多细胞线虫秀丽隐杆线虫从卵发育到成年,并在空间上与地球上具有相同的时间产生后代。此外,这些动物在饱食时表现出正常的运动速率,在饥饿时表现出可比的运动下降,并且在饥饿时具有适当的生长停滞,而在再次喂养时可恢复生长。这些发现将秀丽隐杆线虫确立为一种生物学模型,可用于检测长期航天过程中响应环境条件的动物生长,发育,繁殖和行为的变化。该实验系统随时可用于未来的无人行星际飞行任务,并可用于经济有效地研究此类任务对这些生物过程的影响以及新生命维持系统和辐射屏蔽技术的功效。

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