Pegda Prepolymer

PEGDA prepolymer is a poly(ethylene glycol) diacrylate-based liquid macromer that forms hydrated, crosslinked polymer networks, making it an important material for bioengineering and biomaterials research. When exposed to light in the presence of a photoinitiator, its acrylate end groups undergo free-radical polymerization, linking PEGDA molecules into a tunable hydrogel whose stiffness, swelling, and degradation behavior can be adjusted through formulation and processing conditions. These properties support applications in tissue engineering, three-dimensional cell culture, drug delivery, and bioprinting, where PEGDA hydrogels provide controlled, water-rich environments for studying cells and constructing engineered biological structures.

Pegda Prepolymer - Related Videos

Research

JoVE Journal - Bioengineering
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Image-guided, Laser-based Fabrication of Vascular-derived Microfluidic Networks

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Cited by 10 •

2017

This protocol outlines the implementation of image-guided, laser-based hydrogel degradation to fabricate vascular-derived, biomimetic microfluidic networks embedded in poly(ethylene glycol) diacrylate (PEGDA) hydrogels. These biomimetic microfluidic systems may be useful for tissue engineering applications, generation of in vitro disease models, and fabrication of advanced "on-a-chip" devices.

Research

JoVE Journal - Bioengineering

Fabrication of Inverted Colloidal Crystal Poly(ethylene glycol) Scaffold: A Three-dimensional Cell Culture Platform for Liver Tissue Engineering

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Cited by 14 •

2016

This manuscript presents a detailed protocol for the fabrication of an emerging three-dimensional hepatocyte culture platform, the inverted colloidal crystal scaffold, and the concomitant techniques to assess hepatocyte behavior. The size-controllable pores, interconnectivity and ability to conjugate extracellular matrix proteins to the poly(ethylene glycol) (PEG) scaffold enhance Huh-7.5 cell performance.

Synthesis of Poly(N-isopropylacrylamide) Janus Microhydrogels for Anisotropic Thermo-responsiveness and Organophilic/Hydrophilic Loading Capability

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Cited by 3 •

2016

We present a protocol to synthesize Janus microhydrogels composed entirely of the same base material, poly(N-isopropylacrylamide) (PNIPAAm), with a clearly compartmentalized structure base on the phase separation of a supersaturated NIPAAm monomer solution. The synthesized Janus microhydrogels show unique properties such as anisotropic thermo-responsiveness and organophilic/hydrophilic loading capability.

Expanding Nanopatterned Substrates Using Stitch Technique for Nanotopographical Modulation of Cell Behavior

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Cited by 4 •

2016

A protocol for producing a large area of nanopatterned substrate from small nanopatterned molds for study of nanotopographical modulation of cell behavior is presented.

Education

JoVE Science Education - Engineering

Soft Lithography

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2023

Many BioMEM devices, such as microfluidic channels, are fabricated using the soft lithography technique. Here, a microscale pattern is replicated by curing an elastomeric polymer over the 3D structure. These polymeric structures are then used to create a wide range of devices, ranging from microfluidic channels for biosensing applications to microscale bioreactors for the visualization of micro-colonies. This video introduces photolithography and demonstrates the technique in the laboratory.

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