Nematode Locomotion

Nematode locomotion is the movement of worm-shaped organisms through coordinated body deformation, providing a model for understanding biomechanics and designing flexible bioinspired systems. Nematodes generate propulsion by activating longitudinal body-wall muscles against a pressurized, fluid-filled body cavity that acts as a hydrostatic skeleton, producing traveling sinusoidal waves along the body; their movement changes with substrate friction and fluid resistance. Studying these interactions helps bioengineers analyze neuromuscular control, locomotion in confined environments, and energy-efficient propulsion. The resulting principles inform soft robotics, microscale devices, and engineered materials that move through complex or deformable surroundings.

Nematode Locomotion - Related Videos

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JoVE Journal - Bioengineering
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Age-dependent Dynamics of Locomotion in Caenorhabditis elegans: A Lyapunov Exponent Analysis

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2025

This study examines the effect of age on locomotion in C. elegans by measuring the largest Lyapunov exponent (LLE). As they age, C. elegans show an increase and subsequent decline in motor control. Results show a peak LLE at five days, followed by a decline as the worms age.

Quantitative Locomotion Study of Freely Swimming Micro-organisms Using Laser Diffraction

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Cited by 10 •

2012

Microscopic organisms like the free-swimming nematode C. elegans, live and behave in a complex three-dimensional environment. We report on a novel approach that provides analysis of C. elegans using diffraction patterns. This approach consists of tracking the temporal periodicity of diffraction patterns generated by directing laser light through a cuvette.

Research

JoVE EoE - Caenorhabditis elegans (worm)

Electrotaxis Assay: A Method to Observe Locomotion in C. elegans

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2023

Researchers can trigger on-demand movement in C. elegans by applying an electric field that worms sense and respond to. This video introduces electrotactic behavior and shows a sample protocol that is done in a microfluidic device.

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JoVE Journal - Engineering
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Single Wavelength Shadow Imaging of Caenorhabditis elegans Locomotion Including Force Estimates

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Cited by 2 •

2014

The technique presented here measures the path of freely swimming microscopic species using single wavelength exposure. C. elegans are used to demonstrate shadow imaging as an inexpensive alternative to costly microscopes. This technique can be adapted to accommodate various orientations, environments and species to measure direction, speed, acceleration and forces.

Microfluidic-based Electrotaxis for On-demand Quantitative Analysis of Caenorhabditis elegans' Locomotion

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Cited by 19 •

2013

A semi-automated micro-electro-fluidic method to induce on-demand locomotion in Caenorhabditis elegans is described. This method is based on the neurophysiologic phenomenon of worms responding to mild electric fields (“electrotaxis”) inside microfluidic channels. Microfluidic electrotaxis serves as a rapid, sensitive, low-cost, and scalable technique to screen for factors affecting neuronal health.

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