Activities per year
Abstract
Facile and rapid 3D fabrication of strong, bioactive materials can address challenges that impede repair of large-to-massive rotator cuff tears including personalized grafts, limited mechanical support, and inadequate tissue regeneration. Herein, we developed a facile and rapid methodology that generates visible light-crosslinkable polythiourethane (PHT) pre-polymer resin (∼30 min at room temperature), yielding 3D-printable scaffolds with tendon-like mechanical attributes capable of delivering tenogenic bioactive factors. Ex vivo characterization confirmed successful fabrication, robust human supraspinatus tendon (SST)-like tensile properties (strength: 23 MPa, modulus: 459 MPa, at least 10,000 physiological loading cycles without failure), excellent suture retention (8.62-fold lower than acellular dermal matrix (ADM)-based clinical graft), slow degradation, and controlled release of fibroblast growth factor-2 (FGF-2) and transforming growth factor-β3 (TGF-β3). In vitro studies showed cytocompatibility and growth factor-mediated tenogenic-like differentiation of mesenchymal stem cells. In vivo studies demonstrated biocompatibility (3-week mouse subcutaneous implantation) and ability of growth factor-containing scaffolds to notably regenerate at least 1-cm of tendon with native-like biomechanical attributes as uninjured shoulder (8-week, large-to-massive 1-cm gap rabbit rotator cuff injury). This study demonstrates use of a 3D-printable, strong, and bioactive material to provide mechanical support and pro-regenerative cues for challenging injuries such as large-to-massive rotator cuff tears.
Original language | English |
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Pages (from-to) | 439-458 |
Number of pages | 20 |
Journal | Bioactive Materials |
Volume | 37 |
DOIs | |
Publication status | Published - Jul 2024 |
Externally published | Yes |
Keywords
- 3D-printing
- Click reactions
- Growth factors
- Photo-crosslinkable biomaterials
- Polyurethane
- Rotator cuff tendon tissue engineering
ASJC Scopus subject areas
- Biotechnology
- Biomaterials
- Biomedical Engineering
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Dive into the research topics of 'Facile and rapid fabrication of a novel 3D-printable, visible light-crosslinkable and bioactive polythiourethane for large-to-massive rotator cuff tendon repair'. Together they form a unique fingerprint.Prizes
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European Orthopaedic Research Society Aesculap Award - Second Prize
Ker, D. F. E. (Recipient), 19 Jun 2025
Prize: Prize (research)
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International Exhibition of Inventions Geneva Bronze Award
Ker, D. F. E. (Recipient), 12 Apr 2025
Prize: Prize (research)
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Activities
- 3 Oral presentation
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3D-Printed Mechanically Tendon-like and Bioactive Material for Large-to-Massive Rotator Cuff Repair
Ker, D. F. E. (Invited speaker)
19 Jun 2025Activity: Talk or presentation › Oral presentation
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3D-Printed Mechanically Tendon-like and Bioactive Material for Large-to-Massive Rotator Cuff Repair
Ker, D. F. E. (Invited speaker)
19 Jun 2025Activity: Talk or presentation › Oral presentation
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Rapid and Facile 3D-printing of Mechanically Robust and Bioactive Grafts for Challenging Rotator Cuff Tendon Injuries
Ker, D. F. E. (Invited speaker)
5 Dec 2024Activity: Talk or presentation › Oral presentation