Charité - Universitätsmedizin Berlin, Corporate Member of Freie Universität Berlin and Humboldt-Universität Zu Berlin, Tissue Engineering Laboratory, BIH Center of Regenerative Therapies, Department of Rheumatology and Clinical Immunology, Berlin, Germany.
Charité - Universitätsmedizin Berlin, Berlin, Germany.
J Biomed Mater Res B Appl Biomater. 2024 Nov;112(11):e35494. doi: 10.1002/jbm.b.35494.
The emergence of hybrid scaffolds, blending biomaterials with diverse properties, offers promise in musculoskeletal tissue engineering. However, a need for in vitro platforms investigating biological behavior and the interplay of different load-bearing and colonizable synthetic bone substitute materials remains. Herein, we present a novel, in-house producible, and scalable clamp culture system designed for facile in vitro analysis of interactions between biomaterials, hydrogels, and cells. The system, constructed here from an exemplary 3D-printable polymer and photopolymerizable hydrogel using a widely available benchtop 3D printer, ensures mechanical stability and protection for the embedded hydrogel via its double-clamp structure, facilitating various analytical methods while preserving culture integrity. Hybrid clamp cultures were additively manufactured from polylactic acid, filled with a bone precursor cell-laden methacrylate gelatin hydrogel, cultured for 14 days, and analyzed for cell viability, mineralization, and osseous differentiation. Results indicate no adverse effects on osteogenic differentiation or mineralization compared to conventional droplet cultures, with enhanced cell viability and simplified handling and downstream analysis. This system demonstrates the potential for robust experimentation in tissue engineering and is adaptable to various plate formats, and thus highly suitable for the investigation of biomaterial-cell interactions and the development of implants for musculoskeletal tissue defects.
混合支架的出现,将具有不同特性的生物材料融合在一起,为肌肉骨骼组织工程带来了希望。然而,仍然需要体外平台来研究生物行为以及不同承载和可定植的合成骨替代材料的相互作用。在此,我们提出了一种新颖的、可内部生产的、可扩展的夹具培养系统,用于方便地分析生物材料、水凝胶和细胞之间的相互作用。该系统由一种典型的可 3D 打印聚合物和光聚合水凝胶构建而成,使用广泛可用的台式 3D 打印机,通过其双夹具结构确保了嵌入式水凝胶的机械稳定性和保护,从而在保持培养物完整性的同时,促进了各种分析方法的应用。混合夹具培养物由聚乳酸增材制造而成,填充有负载有骨前体细胞的甲基丙烯酰化明胶水凝胶,培养 14 天后,分析细胞活力、矿化和骨向分化。结果表明,与传统的液滴培养相比,对成骨分化或矿化没有不利影响,具有更高的细胞活力和简化的处理和下游分析。该系统展示了在组织工程中进行稳健实验的潜力,并且适用于各种板格式,因此非常适合研究生物材料-细胞相互作用以及用于肌肉骨骼组织缺陷的植入物的开发。