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Transforming growth factor beta 3 (TGFβ3) promotes tenogenic differentiation and may enhance tendon regeneration in vivo. This study aimed to apply TGFβ3 absorbed in decellularized equine superficial digital flexor tendon scaffolds, and to investigate the bioactivity of scaffold-associated TGFβ3 in an in vitro model. TGFβ3 could effectively be loaded onto tendon scaffolds so that at least 88% of the applied TGFβ3 were not detected in the rinsing fluid of the TGFβ3-loaded scaffolds. Equine adipose tissue-derived multipotent mesenchymal stromal cells (MSC) were then seeded on scaffolds loaded with 300 ng TGFβ3 to assess its bioactivity. Both scaffold-associated TGFβ3 and TGFβ3 dissolved in the cell culture medium, the latter serving as control group, promoted elongation of cell shapes and scaffold contraction ( < 0.05). Furthermore, scaffold-associated and dissolved TGFβ3 affected MSC musculoskeletal gene expression in a similar manner, with an upregulation of tenascin c and downregulation of other matrix molecules, most markedly decorin ( < 0.05). These results demonstrate that the bioactivity of scaffold-associated TGFβ3 is preserved, thus TGFβ3 application via absorption in decellularized tendon scaffolds is a feasible approach.
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http://dx.doi.org/10.3390/ijms20215474 | DOI Listing |
Front Bioeng Biotechnol
August 2025
Department of Sports Medicine, The First Affiliated Hospital, Guangdong Provincial Key Laboratory of Speed Capability, The Guangzhou Key Laboratory of Precision Orthopedics and Regenerative Medicine, Jinan University, Guangzhou, Guangdong, China.
Introduction: During the healing process, the functional gradient attachment of the rotator cuff (RC) tendon-bone interface fails to regenerate, which severely impedes load transfer and stress dissipation, thereby increasing the risk of retears. As a result, the treatment of rotator cuff tears remains a significant clinical challenge.
Methods: In this study, a dual-crosslinked hyaluronic acid/polyethylene glycol (HA/PEG) hydrogel scaffold was synthesized using hyaluronic acid and polyethylene glycol as base materials.
Front Bioeng Biotechnol
August 2025
Department of Sports Medicine, Shanghai General Hospital, Shanghai, China.
Rotator cuff tears (RCTs) are a prevalent cause of shoulder dysfunction, with postoperative retearing remaining a significant challenge due to poor tendon-to-bone healing. Mesenchymal stem cells (MSCs), owing to their multipotency, immunomodulatory properties, and diverse tissue sources, have emerged as a promising therapeutic strategy. Current approaches include direct MSC implantation, MSC-laden scaffolds for structural support, and utilization of MSC-derived conditioned medium (CM) or exosomes to enhance regeneration.
View Article and Find Full Text PDFStem Cell Rev Rep
September 2025
DBT-National Institute of Animal Biotechnology (NIAB), Hyderabad, 500032, Telangana, India.
Veterinary medicine has witnessed a paradigm shift in recent past with the preference to use mesenchymal stem cells (MSCs) for livestock and companion animal therapeutics. MSCs made remarkable developments in treating complex clinical conditions, otherwise difficult to treat with routine medications such as musculoskeletal injuries, osteoarthritis, tendon and ligament damage, degenerative diseases, gastritis, endometritis, diabetes mellitus, and ocular diseases, offering new hope for veterinary practitioners and animal caregivers. This review is divided into two sections: The first part explores recent advancements in veterinary medicine using MSCs, mainly focusing on their sources, administration methods, therapeutic mechanisms, and clinical applications.
View Article and Find Full Text PDFBiomater Adv
August 2025
Regenerative, Modular & Developmental Engineering Laboratory (REMODEL) and CÚRAM Research Ireland Centre for Medical Devices, University of Galway, Galway, Ireland; Regenerative, Modular & Developmental Engineering Laboratory (REMODEL), Charles Institute of Dermatology, Conway Institute of Biomolec
Biophysical in nature signals, due to their simplicity in implementation, are at the forefront of research and innovation to control tendon cell function in vitro. In this work, we first assessed the influence of substrate rigidity and surface topography on human tendon cells using differentially crosslinked planar and grooved collagen scaffolds. We identified the 0.
View Article and Find Full Text PDFBiomacromolecules
August 2025
Regenerative, Modular & Developmental Engineering Laboratory (REMODEL) and CÚRAM Research Ireland Centre for Medical Devices, University of Galway, Galway H91 TK33, Ireland.
We isolated collagen I from caprine, porcine, and bovine skin and tendon tissues and assessed their purity and chemical properties. We fabricated non-cross-linked and cross-linked scaffolds from each collagen I preparation and assessed their physicochemical and biological properties. Purity and chemical analyses did not reveal any notable differences between the groups.
View Article and Find Full Text PDF