Graduate Institute of Biomedical Materials and Tissue Engineering, School of Biomedical Engineering, College of Biomedical Engineering, Taipei Medical University, Taipei 11031, Taiwan; Cell Physiology and Molecular Image Research Center, Taipei Medical University-Wan Fang Hospital, Taipei 11696, Taiwan; Precision Medicine and Translational Cancer Research Center, Taipei Medical University Hospital, Taipei 11031, Taiwan.
Department of Orthopedics, Taipei Medical University Shuang Ho Hospital, New Taipei City 23561, Taiwan; Department of Orthopedics, School of Medicine, College of Medicine, Taipei Medical University, Taipei 11031, Taiwan.
Carbohydr Polym. 2024 Sep 1;339:122174. doi: 10.1016/j.carbpol.2024.122174. Epub 2024 Apr 23.
Segmental bone defects can arise from trauma, infection, metabolic bone disorders, or tumor removal. Hydrogels have gained attention in the field of bone regeneration due to their unique hydrophilic properties and the ability to customize their physical and chemical characteristics to serve as scaffolds and carriers for growth factors. However, the limited mechanical strength of hydrogels and the rapid release of active substances have hindered their clinical utility and therapeutic effectiveness. With ongoing advancements in material science, the development of injectable and biofunctionalized hydrogels holds great promise for addressing the challenges associated with segmental bone defects. In this study, we incorporated lyophilized platelet-rich fibrin (LPRF), which contains a multitude of growth factors, into a genipin-crosslinked gelatin/hyaluronic acid (GLT/HA-0.5 % GP) hydrogel to create an injectable and biofunctionalized composite material. Our findings demonstrate that this biofunctionalized hydrogel possesses optimal attributes for bone tissue engineering. Furthermore, results obtained from rabbit model with segmental tibial bone defects, indicate that the treatment with this biofunctionalized hydrogel resulted in increased new bone formation, as confirmed by imaging and histological analysis. From a translational perspective, this biofunctionalized hydrogel provides innovative and bioinspired capabilities that have the potential to enhance bone repair and regeneration in future clinical applications.
骨段缺损可由创伤、感染、代谢性骨疾病或肿瘤切除引起。水凝胶因其独特的亲水性和可定制其物理化学特性以作为生长因子的支架和载体的能力,在骨再生领域引起了关注。然而,水凝胶的机械强度有限和活性物质的快速释放限制了其临床应用和治疗效果。随着材料科学的不断进步,可注射和生物功能化水凝胶的开发为解决与骨段缺损相关的挑战带来了巨大的希望。在这项研究中,我们将含有多种生长因子的冻干富血小板纤维蛋白(LPRF)掺入到京尼平交联的明胶/透明质酸(GLT/HA-0.5%GP)水凝胶中,以创建可注射和生物功能化的复合材料。我们的研究结果表明,这种生物功能化水凝胶具有最佳的骨组织工程属性。此外,通过兔胫骨骨段缺损模型获得的结果表明,用这种生物功能化水凝胶治疗可导致新骨形成增加,影像学和组织学分析证实了这一点。从转化的角度来看,这种生物功能化水凝胶提供了创新和仿生的能力,有可能增强未来临床应用中的骨修复和再生。