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Researchers are working to develop and optimize suitable bioinks for additive manufacturing.
May 6, 2019
By: Fraunhofer-Gesellschaft
The future of medicine is biological—and scientists hope we will soon be using 3D-printed biologically functional tissue to replace irreparably damaged tissue in the body. A team of researchers from the Fraunhofer Institute for Interfacial Engineering and Biotechnology IGB has been working with the University of Stuttgart for a number of years on a project to develop and optimize suitable bioinks for additive manufacturing. By varying the composition of the biomaterial, the researchers have already succeeded in expanding their portfolio to include bone and vascularization inks. That has laid the foundations for manufacturing bone-like tissue structures featuring capillary networks. 3D printing is not only gaining ground in manufacturing—it is also taking on increasing importance in the realm of regenerative medicine. Scientists are now hoping to use this additive manufacturing method to create bespoke biocompatible tissue scaffolds that will replace irreparably damaged tissue. A team of researchers at Fraunhofer IGB in Stuttgart is also working on bio-based inks for manufacturing biological implants in the laboratory using 3D printing techniques. To create a 3D object in the desired pre-programmed shape, the team utilizes a layer-by-layer approach to print a liquid mixture comprising biopolymers such as gelatin or hyaluronic acid, aqueous medium and living cells. These bio-inks remain in a viscous state during printing and are then exposed to UV light to crosslink them into water-containing polymer networks called hydrogels. Targeted Chemical Modification of Biomolecules Scientists can chemically modify the biomolecules to provide the resulting gels with different degrees of crosslinking and swellability. This makes it possible to imitate the consistency of natural tissue—from stronger hydrogels for cartilage to softer gels for fatty tissue. Broad adjustments can also be made to the level of viscosity: “At room temperature of 21 degrees Celsius, gelatin is as firm as jelly, which is no good for printing. To prevent temperature-dependant gelation and to enable us to process it regardless of temperature, we ‘mask’ the side chains of the biomolecules that are responsible for gelling gelatin,” said Dr. Achim Weber, head of the Particle-Based Systems and Formulations Group, explaining one of the key challenges encountered in the process. A further challenge is that the gelatin must be chemically crosslinked to prevent it from liquefying at temperatures of around 37 degrees. To achieve this, it is functionalized twice: in this case, the research team has opted for integration of crosslinkable methacryl-groups into the biomolecules thereby substituting various parts of the non-crosslinking, masking acetyl groups—a unique approach in the field of bioprinting. “We formulate inks that offer adjusted conditions for different cell types and tissue structures,” said Dr. Kirsten Borchers, who is responsible for bioprinting projects in Stuttgart.
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