Li Ying, Zhang Xueqin, Zhang Xin, Zhang Yuxuan, Hou Dan
College of Chemistry and Materials Engineering, Beijing Technology and Business University, Beijing 100048, China.
FuYang Sineva Materials Technology Co., Ltd., Beijing 100176, China.
Polymers (Basel). 2023 Sep 29;15(19):3940. doi: 10.3390/polym15193940.
Vat photopolymerization (VP), including stereolithography (SLA), digital light processing (DLP), and volumetric printing, employs UV or visible light to solidify cell-laden photoactive bioresin contained within a vat in a point-by-point, layer-by-layer, or volumetric manner. VP-based bioprinting has garnered substantial attention in both academia and industry due to its unprecedented control over printing resolution and accuracy, as well as its rapid printing speed. It holds tremendous potential for the fabrication of tissue- and organ-like structures in the field of regenerative medicine. This review summarizes the recent progress of VP in the fields of tissue engineering and regenerative medicine. First, it introduces the mechanism of photopolymerization, followed by an explanation of the printing technique and commonly used biomaterials. Furthermore, the application of VP-based bioprinting in tissue engineering was discussed. Finally, the challenges facing VP-based bioprinting are discussed, and the future trends in VP-based bioprinting are projected.
光固化成型(VP),包括立体光刻(SLA)、数字光处理(DLP)和体积打印,采用紫外线或可见光以逐点、逐层或体积方式固化包含在容器中的含细胞光活性生物树脂。基于VP的生物打印因其对打印分辨率和精度的前所未有的控制以及快速的打印速度,在学术界和工业界都引起了广泛关注。它在再生医学领域制造组织和器官样结构方面具有巨大潜力。本综述总结了VP在组织工程和再生医学领域的最新进展。首先,介绍了光聚合的机制,接着解释了打印技术和常用的生物材料。此外,还讨论了基于VP的生物打印在组织工程中的应用。最后,讨论了基于VP的生物打印面临的挑战,并预测了基于VP的生物打印的未来趋势。