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秀丽隐杆线虫运动的单波长阴影成像,包括力估计。

Single wavelength shadow imaging of Caenorhabditis elegans locomotion including force estimates.

作者信息

Jago Alicia, Kpulun Tewa, Raley-Susman Kathleen M, Magnes Jenny

机构信息

Physics and Astronomy Department, Vassar College.

Biology Department, Vassar College.

出版信息

J Vis Exp. 2014 Apr 18(86):51424. doi: 10.3791/51424.

Abstract

This study demonstrates an inexpensive and straightforward technique that allows the measurement of physical properties such as position, velocity, acceleration and forces involved in the locomotory behavior of nematodes suspended in a column of water in response to single wavelengths of light. We demonstrate how to evaluate the locomotion of a microscopic organism using Single Wavelength Shadow Imaging (SWSI) using two different examples. The first example is a systematic and statistically viable study of the average descent of C. elegans in a column of water. For this study, we used living and dead wildtype C. elegans. When we compared the velocity and direction of nematode active movement with the passive descent of dead worms within the gravitational field, this study showed no difference in descent-times. The average descent was 1.5 mm/sec ± 0.1 mm/sec for both the live and dead worms using 633 nm coherent light. The second example is a case study of select individual C. elegans changing direction during the descent in a vertical water column. Acceleration and force are analyzed in this example. This case study demonstrates the scope of other physical properties that can be evaluated using SWSI while evaluating the behavior using single wavelengths in an environment that is not accessible with traditional microscopes. Using this analysis we estimated an individual nematode is capable of thrusting with a force in excess of 28 nN. Our findings indicate that living nematodes exert 28 nN when turning, or moving against the gravitational field. The findings further suggest that nematodes passively descend in a column of water, but can actively resist the force of gravity primarily by turning direction.

摘要

本研究展示了一种廉价且简单的技术,该技术能够测量线虫在一列水中悬浮时,对单波长光做出响应的运动行为所涉及的物理特性,如位置、速度、加速度和力。我们通过两个不同的例子展示了如何使用单波长阴影成像(SWSI)来评估微观生物的运动。第一个例子是对秀丽隐杆线虫在一列水中平均下降情况进行的系统且具有统计学可行性的研究。在这项研究中,我们使用了活的和死的野生型秀丽隐杆线虫。当我们将线虫主动运动的速度和方向与死虫在重力场中的被动下降情况进行比较时,该研究表明下降时间没有差异。使用633纳米相干光时,活虫和死虫的平均下降速度均为1.5毫米/秒±0.1毫米/秒。第二个例子是对特定的秀丽隐杆线虫个体在垂直水柱下降过程中改变方向的案例研究。在这个例子中分析了加速度和力。该案例研究展示了在传统显微镜无法观察的环境中,使用单波长评估行为时,利用SWSI可以评估的其他物理特性的范围。通过这种分析,我们估计单个线虫能够以超过28纳牛的力进行推进。我们的研究结果表明,活线虫在转弯或逆重力场移动时会施加28纳牛的力。研究结果进一步表明,线虫在一列水中被动下降,但主要可以通过改变方向来主动抵抗重力。

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