Using a magnetic field and hydrogels, a team of researchers in the Perelman School of Medicine at the University of Pennsylvania have shown a possible new way to rebuild complex body tissues, which could result in more lasting fixes to common injuries, such as cartilage degeneration. Their research was published today in Advanced Materials.
"We found that we were able to arrange objects, such as cells, in ways that could generate new, complex tissues without having to alter the cells themselves," said the study's first author, Hannah Zlotnick. "Others have had to add magnetic particles to the cells so that they respond to a magnetic field, but that approach can have unwanted long-term effects on cell health. Instead, we manipulated the magnetic character of the environment surrounding the cells, allowing us to arrange the objects with magnets."
With that in mind, the research team found that if they added a magnetic liquid to a three-dimensional hydrogel solution, cells, and other non-magnetic objects including drug delivery microcapsules, could be arranged into specific patterns that mimicked natural tissue through the use of an external magnetic field. After brief contact with the magnetic field, the hydrogel solution (and the objects in it) was exposed to ultraviolet light in a process called photocrosslinking to lock everything in place, and the magnetic solution subsequently was diffused out. After this, the engineered tissues maintained the necessary cellular gradient.
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With this magneto-patterning technique, the team was able to recreate articular cartilage, "These magneto-patterned engineered tissues better resemble the native tissue, in terms of their cell disposition and mechanical properties, compared to standard uniform synthetic materials or biologics that have been produced," said senior author Robert Mauck. "By locking cells and other drug delivering agents in place via magneto-patterning, we are able to start tissues on the appropriate trajectory to produce better implants for cartilage repair."
While the technique was restricted to in vitro studies, it's the first step toward potential longer-lasting, more efficient fixes in living subjects. "This new approach can be used to generate living tissues for implantation to fix localized cartilage defects, and may one day be extended to generate living joint surfaces," Mauck explained.