Related Experiment Video
Updated: Aug 5, 2026

Microfluidic Chips Controlled with Elastomeric Microvalve Arrays
Published on: October 1, 2007
Engineering adaptive self-healing biomaterials from jammed microfluidic elastomeric particles
Jennifer Kieda1,2, Kaitlyn Ramsay1,2, Richard Jiang1,2
1University of Toronto, Institute of Biomedical Engineering, Toronto, Ontario, M5S 3G9, Canada.
Researchers developed a new adaptive biomaterial scaffold that can change shape after implantation. This biodegradable and biocompatible material supports tissue regeneration and adapts to the body
Area of Science:
- Biomaterials Science
- Regenerative Medicine
- Tissue Engineering
Background:
- Implantable biomaterials must adapt to the body's dynamic mechanical and structural environment.
- Current adaptive shape-changing materials for implantation are limited.
Purpose of the Study:
- To introduce a novel remoldable, biodegradable, and biocompatible granular scaffold for adaptive tissue engineering.
- To investigate the scaffold's properties and performance under in vitro and in vivo conditions.
Main Methods:
- Generated monodisperse poly(octamethylene maleate (anhydride) citrate) (POMaC) particles using droplet microfluidics.
- Formed interconnected, porous, and self-healing elastomeric scaffolds via jamming and UV-crosslinking.
- Evaluated scaffold tunability, self-healing, cell infiltration, and in vivo remolding capabilities.
Main Results:
- Scaffold properties (mechanical, stability, permeability) were tunable via chemical composition and crosslinking.
- Demonstrated autonomous self-healing, enhanced molecular diffusivity, and robust cell infiltration.
- Successfully remolded scaffolds in vivo 24 hours post-implantation, promoting macrophage recruitment and vascular ingrowth.
Conclusions:
- Established a versatile strategy for adaptive implantable biomaterials.
- The granular scaffold shows potential for regenerative medicine and tissue engineering applications.
- The material's ability to adapt shape post-implantation addresses a key limitation in current biomaterials.
More Related Videos
08:02Thin Film Composite Silicon Elastomers for Cell Culture and Skin Applications: Manufacturing and Characterization
Published on: July 3, 2018
08:17An Additive Manufacturing Technique for the Facile and Rapid Fabrication of Hydrogel-based Micromachines with Magnetically Responsive Components
Published on: July 18, 2018