Zhao Bin, Dang Zhengcheng, Li Lingling, Gao Jing, Wang Haiyan, Li Mengzhi
Department of Pediatric Surgery, The Affiliated Taian City Central Hospital of Qingdao University, Shandong, China.
Department of Cardiology, The Affiliated Taian City Central Hospital of Qingdao University, Shandong, China.
Sci Prog. 2025 Apr-Jun;108(2):368504251347478. doi: 10.1177/00368504251347478. Epub 2025 May 29.
ObjectiveTo develop a cost-effective and mechanically robust 3D collagen hydrogel system suitable for pressure-based culture, enabling physiologically relevant in vitro modeling of mechanical stress responses in cells.MethodsA rat tail type I collagen-based hydrogel was formulated through optimized component ratios and cast into standard 24-well plates to form uniform gel columns. Endothelial cells was embedded and subjected to 30 mmHg pressure culture for up to 48 h. Gel morphology and fiber architecture were assessed via scanning electron microscopy. Cell viability, proliferation (Ki67 immunostaining), and tube formation ability were evaluated. A custom mechanical compression setup was used to apply and monitor sustained pressure.ResultsThe hydrogel exhibited stable gelation, uniform porosity, and resistance to deformation under mechanical loading. SEM confirmed a consistent nanofiber network, with fiber diameter unaffected by 30 mmHg pressure. After 24-h pressure culture, the gel retained its height and structure. Endothelial cells remained viable but showed reduced proliferation and impaired tube formation under pressure, as indicated by Ki67 staining and angiogenesis assays.ConclusionsThis 3D collagen hydrogel provides a simple, cost-effective, and scalable alternative to complex bioprinting methods, supporting broader application of 3D cell culture in biomedical research.
目的
开发一种具有成本效益且机械性能强大的三维胶原蛋白水凝胶系统,适用于基于压力的培养,能够在体外对细胞的机械应力反应进行生理相关建模。
方法
通过优化组分比例配制基于大鼠尾部I型胶原蛋白的水凝胶,并浇铸到标准24孔板中以形成均匀的凝胶柱。将内皮细胞包埋其中,并在30 mmHg压力下培养长达48小时。通过扫描电子显微镜评估凝胶形态和纤维结构。评估细胞活力、增殖(Ki67免疫染色)和管形成能力。使用定制的机械压缩装置施加并监测持续压力。
结果
水凝胶表现出稳定的凝胶化、均匀的孔隙率以及在机械加载下的抗变形能力。扫描电子显微镜证实了一致的纳米纤维网络,纤维直径不受30 mmHg压力的影响。压力培养24小时后,凝胶保持其高度和结构。Ki67染色和血管生成分析表明,内皮细胞在压力下仍保持活力,但增殖减少且管形成受损。
结论
这种三维胶原蛋白水凝胶为复杂的生物打印方法提供了一种简单、经济高效且可扩展的替代方案,支持三维细胞培养在生物医学研究中的更广泛应用。