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An Experimental and Theoretical Approach to Optimize a Three-Dimensional Clinostat for Life Science Experiments

机译:为生命科学实验优化三维斜度调节器的实验和理论方法

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Gravity affects all biological systems, and various types of platforms have been developed to mimic microgravity on the Earth's surface. A three-dimensional clinostat (3D clinostat) has been constructed to reduce the directionality of gravitation. In this report, we attempted to optimize a 3D clinostat for a life science experiment. Since a 3D clinostat is equipped with two motors, we fixed the angular velocity of one (primary) motor and varied it for the other (secondary) motor. In this condition, each motor ran constantly and continuously in one direction during the experiment. We monitored the direction of the normal vector using a 3D acceleration sensor, and also performed a computer simulation for comparison with the experimental data. To determine the optimal revolution for our life science experiment (i.e., a revolution yielding the strongest effects), we examined the promoter activity of two genes that were reported to be affected by microgravity. We found that the ratio of velocity of 4:1.8 (0.55) was optimal for our biological system. Our results indicate that changes of the revolutions of a 3D clinostat have a direct impact on the result and furthermore that the revolutions of the two motors have to be separately adjusted in order to guarantee an optimal simulation of microgravity.
机译:重力会影响所有生物系统,因此已经开发出各种类型的平台来模拟地球表面的微重力。已经构造了三维斜度仪(3D斜度仪)以减小重力的方向性。在此报告中,我们尝试针对生命科学实验优化3D clinostat。由于3D稳压器配备有两个电机,因此我们固定了一个(主)电机的角速度,并改变了另一(辅助)电机的角速度。在这种情况下,每个电机在实验过程中都在一个方向上连续不断地运转。我们使用3D加速度传感器监控法向矢量的方向,并且还进行了计算机仿真以与实验数据进行比较。为了确定生命科学实验的最佳转数(即产生最强作用的转数),我们检查了两个据报道受微重力影响的基因的启动子活性。我们发现速度比为4:1.8(0.55)对于我们的生物系统是最佳的。我们的结果表明,3D倾斜仪的转速变化对结果有直接影响,此外,必须分别调整两个电动机的转速,以确保对微重力进行最佳仿真。

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