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Updated: Jun 23, 2026

Decellularized Apple-Derived Scaffolds for Bone Tissue Engineering In Vitro and In Vivo
Published on: February 23, 2024
Supercritical CO2 engineered block grafts developed for bone regeneration
Asrar Elahi1, Dawn Coates1, Kai Chun Li1
1Sir John Walsh Research Institute, University of Otago, Dunedin, Otago, 9016, New Zealand.
Abstract:
Bone loss is a significant challenge in dentistry and often leads to alveolar bone resorption, compromising dental outcomes. Current methods for developing block grafts often result in constructs with inadequate strength and osseointegration. This study aimed to develop a bovine-derived bone block xenograft using supercritical fluid extraction (SCF) and post-SCF treatments to optimize mechanical strength and biocompatibility. Bovine femur condyle blocks were divided into six groups; Group 1: Raw bone, Group 2: Bio-Oss®, Group 3: SCF-CO2, Groups 4: SCF-CO2-H2O2, Group 5: SCF-CO2-H2O2 + Pepsin and Group 6: SCF-CO2-H2O2 + Pepsin + TMSB10. Analysis included the following: chemical composition and crystallinity using FTIR, mechanical strength via compression testing, surface topography from SEM and chemical characterization using EDS. Safety and biological testing were carried out in vivo using rat subcutaneous and sheep mandibular bone onlay-grafting models. SCF-treated scaffolds showed promising results with reduced lipids, and good biocompatible in biosafety testing in rats. Group 4 and 5 blocks showed enhanced mean (±SD) mechanical strength (37.47 ± 16.91 MPa and 34.95 ± 11.89, respectively) as compared to raw bone (p < 0.05). SEM photomicrographs revealed collagen fibers with reduced debris in trabecular structures and open pores after SCF-CO2 treatment especially in SCF-CO2-H2O2. The rat and sheep models did not show any adverse immunological effects. Overall, SCF-CO2 and post-treatments offer a novel xeno-derived block graft with very promising potential for clinical application.
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