3D Bioprinted human Cartilage cells can be Implanted

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The illustration shows the formation of blood vessels, i.e., vascularisation, in the bioprinted material implanted in an animal model. Credit: Philip Krantz

The illustration shows the formation of blood vessels, i.e., vascularisation, in the bioprinted material implanted in an animal model. Credit: Philip Krantz

Swedish researchers at Chalmers University of Technology and Sahlgrenska Academy have successfully induced human cartilage cells to live and grow in an animal model, using 3D bioprinting. The results will move development closer to a potential future in which it will be possible to help patients by giving them new body parts through 3D bioprinting. “This is the first time anyone has printed human-derived cartilage cells, implanted them in an animal model and induced them to grow,” says Paul Gatenholm, professor of biopolymer technology at Chalmers University of Technology.

Among else, Professor Gatenholm leads the research team working with the new biomaterial based on nanocellulose at the Wallenberg Wood Science Center. He has been working with Lars Kölby, senior lecturer at Sahlgrenska Academy at University of Gothenburg and specialist consultant with the Department of Plastic Surgery at Sahlgrenska University Hospital. The researchers printed a hydrogel of nanocellulose mixed with human-derived cartilage cells, ie a construct. They used a 3D bioprinter manufactured by Cellink, a Gothenburg-based startup firm whose bio-ink is a result of research by Paul Gatenholm. Immediately after printing, the construct was implanted in mice.

3 positive results of the animal study: 1. Human cartilage tissue has grown in an animal model. 2. Vascularisation. 3. Strong stimulation of proliferation and neocartilage formation by human stem cells. “What we see after 60 days is something that begins to resemble cartilage. It is white and the human cartilage cells are alive and producing what they are supposed to. We have also been able to stimulate the cartilage cells by adding stem cells, which clearly promoted further cell division,” says Lars Kölby.

Paul Gatenholm is careful to point out that the results he and Lars Kölby’s team are now able to report do not involve any short cut to bioprinted organs. “With what we have done, the research has taken a step forward towards someday, we hope, being able to bioprint cells that become body parts for patients. This is how you have to work when it comes to this kind of pioneering activity: one small step at a time. Our results are not a revolution – but they are a gratifying part of an evolution!” https://www.chalmers.se/en/departments/chem/news/Pages/3D-bioprinted-human-cartilage-cells-can-be-implanted.aspx