Home /Research /Multi‐Modal Locomotion of <i>Caenorhabditis elegans</i> by Magnetic Reconfiguration of 3D Microtopography
MANIPULATION

Multi‐Modal Locomotion of <i>Caenorhabditis elegans</i> by Magnetic Reconfiguration of 3D Microtopography

Jeong Eun Park, Sunhee Yoon, Jisoo Jeon, Chae Ryean Kim, Saebohm Jhang, Tae‐Joon Jeon, Seung Goo Lee, Sun Min Kim, Jeong Jae Wie

Year
2022
Citations
7

Abstract

Abstract Miniaturized untethered soft robots are recently exploited to imitate multi‐modal curvilinear locomotion of living creatures that perceive change of surrounding environments. Herein, the use of Caenorhabditis elegans ( C. elegans ) is proposed as a microscale model capable of curvilinear locomotion with mechanosensing, controlled by magnetically reconfigured 3D microtopography. Static entropic microbarriers prevent C. elegans from randomly swimming with the omega turns and provide linear translational locomotion with velocity of ≈0.14 BL s −1 . This velocity varies from ≈0.09 (for circumventing movement) to ≈0.46 (for climbing) BL s −1 , depending on magnetic bending and twisting actuation coupled with assembly of microbarriers. Furthermore, different types of neuronal mutants prevent C. elegans from implementing certain locomotion modes, indicating the potential for investigating the correlation between neurons and mechanosensing functions. This strategy promotes a platform for the contactless manipulation of miniaturized biobots and initiates interdisciplinary research for investigating sensory neurons and human diseases.

Keywords

Caenorhabditis elegansControl reconfigurationCreaturesMicroscale chemistryPhysicsComputer scienceBiological systemBiology

Related papers

Browse all MANIPULATION papers