Low-Friction Soft Robots for Targeted Bacterial Infection Treatment in Gastrointestinal Tract
Ben Wang, Yunrui Chen, Zhicheng Ye, Haidong Yu, Kai Fung Chan, Tiantian Xu, Zhiguang Guo, Weimin Liu, Li Zhang
- Year
- 2024
- Citations
- 68
Abstract
Untethered and self-transformable miniature robots are capable of performing reconfigurable deformation and on-demand locomotion, which aid the traversal toward various lumens, and bring revolutionary changes for targeted delivery in gastrointestinal (GI) tract. However, the viscous non-Newtonian liquid environment and plicae gastricae obstacles severely hamper high-precision actuation and payload delivery. Here, we developed a low-friction soft robot by assembly of densely arranged cone structures and grafting of hydrophobic monolayers. The magnetic orientation encoded robot can move in multiple modes, with a substantially reduced drag, terrain adaptability, and improved motion velocity across the non-Newtonian liquids. Notably, the robot stiffness can be reversibly controlled with magnetically induced hardening, enabling on-site scratching and destruction of antibiotic-ineradicable polymeric matrix in biofilms with a low-frequency magnetic field. Furthermore, the magnetocaloric effect can be utilized to eradicate the bacteria by magnetocaloric effect under high-frequency alternating field. To verify the potential applications inside the body, the clinical imaging-guided actuation platforms were developed for vision-based control and delivery of the robots. The developed low-friction robots and clinical imaging-guided actuation platforms show their high potential to perform bacterial infection therapy in various lumens inside the body.
Keywords
Related papers
Quantitative Monitoring of Gene Expression Patterns with a Complementary DNA Microarray
Mark Schena, Dari Shalon, Ronald W. Davis +1 more
1995
Robots and Jobs: Evidence from US Labor Markets
Daron Acemoğlu, Pascual Restrepo
2019
Trust Region Policy Optimization
John Schulman, Sergey Levine, Philipp Moritz +2 more
2015
Printing Proteins as Microarrays for High-Throughput Function Determination
Gavin MacBeath, Stuart L. Schreiber
2000