Pillar of Engineering Product Development, Singapore University of Technology and Design, 8 Somapah Rd, Singapore, 487372, Singapore.
Digital Manufacturing and Design Centre, Singapore University of Technology and Design, 8 Somapah Rd, Singapore, 487372, Singapore.
Small. 2022 Sep;18(39):e2203426. doi: 10.1002/smll.202203426. Epub 2022 Jul 22.
Despite recent advances in biofabrication, recapitulating complex architectures of cell-laden vascular constructs remains challenging. To date, biofabricated vascular models have not yet realized four fundamental attributes of native vasculatures simultaneously: freestanding, branching, multilayered, and perfusable. In this work, a microfluidics-enabled molding technique combined with coaxial bioprinting to fabricate anatomically relevant, cell-laden vascular models consisting of hydrogels is developed. By using 3D porous molds of poly(ethylene glycol) diacrylate as casting templates that gradually release calcium ions as a crosslinking agent, freestanding, and perfusable vascular constructs of complex geometries are fabricated. The bioinks can be tailored to improve the compatibility with specific vascular cells and to tune the mechanical modulus mimicking native blood vessels. Crucially, the integration of relevant vascular cells (such as smooth muscle cells and endothelial cells) in a multilayer and biomimetic configuration is highlighted. It is also demonstrated that the fabricated freestanding vessels are amenable for testing percutaneous coronary interventions (i.e., drug-eluting balloons and stents) under physiological mechanical states such as stretching and bending. Overall, a versatile fabrication technique with multifaceted possibilities of generating biomimetic vascular models that can benefit future research in mechanistic understanding of cardiovascular diseases and the development of therapeutic interventions is introduced.
尽管生物制造技术最近取得了进展,但要重现富含细胞的血管结构的复杂性仍然具有挑战性。迄今为止,生物制造的血管模型尚未同时实现天然血管的四个基本属性:自支撑、分支、多层和可灌注。在这项工作中,开发了一种基于微流控的成型技术,结合同轴生物打印技术,制造由水凝胶组成的具有解剖相关性和富含细胞的血管模型。通过使用聚乙二醇二丙烯酸酯的 3D 多孔模具作为铸造模板,逐渐释放钙离子作为交联剂,制造出具有复杂几何形状的自支撑和可灌注的血管结构。生物墨水可以进行定制,以提高与特定血管细胞的兼容性,并调整模拟天然血管的机械模量。至关重要的是,强调了相关血管细胞(如平滑肌细胞和内皮细胞)在多层和仿生结构中的整合。还证明了所制造的自支撑血管可在拉伸和弯曲等生理机械状态下,用于测试经皮冠状动脉介入治疗(例如,药物洗脱球囊和支架)。总体而言,该技术具有多功能性,为生成仿生血管模型提供了多种可能性,这将有助于心血管疾病机制理解和治疗干预措施的发展等未来研究。