聚己内酯
生物相容性
脚手架
3d打印
粘附
组织工程
生物医学工程
细胞粘附
染色
化学
材料科学
MTT法
纳米技术
福尔马赞
活力测定
体外
体内
结晶紫
再生医学
生物物理学
内皮干细胞
三维细胞培养
细胞培养
细胞
细胞毒性
表面改性
细胞生长
组织粘连
作者
Larissa Córdova Turones,Pablo Romero‐Araya,Constanza Romero,Francisca Pavicic,Ángara Zambrano,Pedro Aravena,Pamela Ehrenfeld,Mario E. Flores
标识
DOI:10.1177/08839115261438489
摘要
Tissue engineering has emerged as a transformative approach for addressing complex clinical challenges in regenerative medicine, particularly for vascularized tissue repair, where scaffold design plays a pivotal role in guiding cellular behavior. This study evaluates three polycaprolactone (PCL)-based scaffolds containing a layer of a PCL homopolymer or a PEG- b -PCL copolymer, fabricated via 3D printing and electrospraying, to assess their interactions with endothelial cells as an important cell type in tissue repair. Over a 5-day culture period, in vitro analyses were conducted, including MTT assays to quantify metabolic activity, crystal violet staining to visualize cell adhesion patterns, and immunofluorescence to validate endothelial phenotype. Results demonstrated excellent biocompatibility across all scaffolds, with no observed cytotoxicity. The PCL scaffold coated with PEG- b -PCL microparticles exhibited enhanced cell-supporting properties, as evidenced by the most intense formazan staining and the highest absorbance values, indicating superior cell viability compared to both PCL homopolymer coated and uncoated PCL 3D scaffolds. These results highlight the role of surface topography and chemistry in optimizing cell-scaffold interactions, advancing their potential for vascularized tissue engineering.
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