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Effect of magnetically simulated zero-gravity and enhanced gravity on the walk of the common fruitfly

机译:磁模拟零重力和重力增强对普通果蝇游走的影响

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摘要

Understanding the effects of gravity on biological organisms is vital to the success of future space missions. Previous studies in Earth orbit have shown that the common fruitfly (Drosophila melanogaster) walks more quickly and more frequently in microgravity, compared with its motion on Earth. However, flight preparation procedures and forces endured on launch made it difficult to implement on the Earth's surface a control that exposed flies to the same sequence of major physical and environmental changes. To address the uncertainties concerning these behavioural anomalies, we have studied the walking paths of D. melanogaster in a pseudo-weightless environment (0g*) in our Earth-based laboratory. We used a strong magnetic field, produced by a superconducting solenoid, to induce a diamagnetic force on the flies that balanced the force of gravity. Simultaneously, two other groups of flies were exposed to a pseudo-hypergravity environment (2g*) and a normal gravity environment (1g*) within the spatially varying field. The flies had a larger mean speed in 0g* than in 1g*, and smaller in 2g*. The mean square distance travelled by the flies grew more rapidly with time in 0g* than in 1g*, and slower in 2g*. We observed no other clear effects of the magnetic field, up to 16.5 T, on the walks of the flies. We compare the effect of diamagnetically simulated weightlessness with that of weightlessness in an orbiting spacecraft, and identify the cause of the anomalous behaviour as the altered effective gravity.
机译:了解重力对生物的影响对未来太空飞行的成功至关重要。先前在地球轨道上的研究表明,与其在地球上运动相比,普通果蝇(果蝇(Drosophila melanogaster))在微重力下行走更快,更频繁。然而,飞行准备程序和发射时承受的力量使其难以在地球表面实施将苍蝇暴露于相同的主要物理和环境变化序列的控制。为了解决与这些行为异常有关的不确定性,我们在地基实验室中研究了假拟失重环境(0g *)中黑腹果蝇的行走路径。我们使用了超导螺线管产生的强磁场,在苍蝇上感应出反磁力,从而平衡了重力。同时,另外两组果蝇在空间变化的区域内暴露于伪超重力环境(2g *)和正重力环境(1g *)。苍蝇在0g *中的平均速度大于在1g *中的平均速度,而在2g *中则较小。蝇的平均平方距离随时间的增加在0g *中比在1g *中增长更快,而在2g *中则更慢。我们没有观察到高达16.5 T的磁场对苍蝇行走的其他明显影响。我们将抗磁模拟失重的影响与在轨道飞船中失重的影响进行比较,并将异常行为的原因确定为有效重力的改变。

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