Department of Mechanical Engineering, Texas Tech University, Lubbock, TX 79409.
Department of Chemical Engineering, Texas Tech University, Lubbock, TX 79409.
Proc Natl Acad Sci U S A. 2018 Apr 17;115(16):E3616-E3625. doi: 10.1073/pnas.1706754115. Epub 2018 Apr 4.
Locomotion of the nematode is a key observable used in investigations ranging from behavior to neuroscience to aging. However, while the natural environment of this model organism is 3D, quantitative investigations of its locomotion have been mostly limited to 2D motion. Here, we present a quantitative analysis of how the nematode reorients itself in 3D media. We identify a unique behavioral state of -a roll maneuver-which is an essential component of 3D locomotion in burrowing and swimming. The rolls, associated with nonzero torsion of the nematode body, result in rotation of the plane of dorsoventral body undulations about the symmetry axis of the trajectory. When combined with planar turns in a new undulation plane, the rolls allow the nematode to reorient its body in any direction, thus enabling complete exploration of 3D space. The rolls observed in swimming are much faster than the ones in burrowing; we show that this difference stems from a purely hydrodynamic enhancement mechanism and not from a gait change or an increase in the body torsion. This result demonstrates that hydrodynamic viscous forces can enhance 3D reorientation in undulatory locomotion, in contrast to known hydrodynamic hindrance of both forward motion and planar turns.
线虫的运动是从行为到神经科学再到衰老等各个领域研究中一个重要的可观测指标。然而,尽管这种模式生物的自然环境是 3D 的,但对其运动的定量研究大多仅限于 2D 运动。在这里,我们对面质线虫在 3D 介质中重新定向的方式进行了定量分析。我们确定了一种独特的行为状态——滚动操作——这是挖掘和游泳中 3D 运动的一个基本组成部分。与线虫体的非零扭转相关联的滚动,导致身体背腹波的平面围绕轨迹的对称轴旋转。当与新的波动平面中的平面转弯相结合时,滚动允许线虫在任何方向上重新定向其身体,从而能够完全探索 3D 空间。在游泳中观察到的滚动比在挖掘中观察到的滚动快得多;我们表明,这种差异源自纯粹的流体动力增强机制,而不是步态改变或体扭增加。这一结果表明,与已知的对前进运动和平面转弯的流体动力阻碍相反,流体动力粘性力可以增强波动运动中的 3D 重新定向。