Gelma Hydrogel

GelMA hydrogel is a photocrosslinkable biomaterial made by modifying gelatin with methacryloyl groups, combining gelatin’s cell-interactive properties with the tunability of synthetic polymer networks. When exposed to light in the presence of a photoinitiator, the methacryloyl groups form covalent bonds, creating a hydrated three-dimensional matrix whose stiffness, porosity, and degradation behavior can be adjusted through formulation and crosslinking conditions. In bioengineering, GelMA hydrogels support cell encapsulation, tissue engineering, organoid culture, wound repair, and three-dimensional bioprinting. Their biological motifs can promote cell adhesion and remodeling, while their processing flexibility enables researchers to design scaffolds that model or replace aspects of native extracellular matrix.

Gelma Hydrogel - Related Videos

Education

JoVE Science Education - Engineering

Collagen Hydrogels

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2023

Collagen is another widely used biomaterial that has found popularity in commercial applications, such as photography. Collagen has more recently been used in tissue engineering applications, by creating hydrogels that provide structure to engineered tissue. This video introduces collagen as a biomaterial, demonstrates how it is harvested from porcine skin, and shows how the material is used to create a hydrogel for tissue engineering applications. Finally, several applications of the material...

Hydrogel Synthesis

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2023

Source: Amber N. Barron, Ashlea Patterson, and Taylor D. Sparks, Department of Materials Science and Engineering, The University of Utah, Salt Lake City, UT Hydrogels are a versatile class of cross-linked polymers produced through relatively simple procedures and with generally inexpensive materials. They can be formed from solution and involve a polymer backbone formed from monomer reagents, an initiator which makes the polymer reactive and a crosslinking species which binds the polymer chains...

Research

JoVE Journal - Biology
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FRET Imaging in Three-dimensional Hydrogels

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Cited by 3 •

2016

Förster resonance energy transfer (FRET) imaging is a powerful tool for real-time cell biology studies. Here a method for FRET imaging cells in physiologic three-dimensional (3D) hydrogel microenvironments using conventional epifluorescence microscopy is presented. An analysis for ratiometric FRET probes that yields linear ratios over the activation range is described.

Mechanical Stimulation of Chondrocyte-agarose Hydrogels

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Cited by 29 •

2012

The biosynthesis of cartilaginous extracellular matrix by chondrocytes can be affected by application of mechanical stimuli. This method describes the technique of applying dynamic compressive strains to chondrocytes encapsulated in 3D constructs and the evaluation of induced changes in chondrocyte metabolism.

Synthesis of an Intein-mediated Artificial Protein Hydrogel

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Cited by 2 •

2014

We present the synthesis of a split-intein-mediated protein hydrogel. The building blocks of this hydrogel are two protein copolymers each containing a subunit of a trimeric protein that serves as a crosslinker and one half of a split intein. Mixing of the two protein copolymers triggers an intein trans-splicing reaction, yielding a polypeptide unit that self-assembles into a hydrogel. This hydrogel is highly pH- and temperature-stable, compatible with organic solvents, and easily incorporates...

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