材料科学
体内
生物医学工程
脚手架
纳米技术
3D生物打印
光子上转换
生物相容性材料
医疗器械
造型(装饰)
组织工程
复合材料
光电子学
医学
生物技术
发光
生物
作者
Peng Zhang,Zhaowei Teng,Min Zhou,Xue Yu,Hongyu Wen,Junzheng Niu,Zhichao Liu,Zhimeng Zhang,Liu Yang,Jianbei Qiu,Xuhui Xu
标识
DOI:10.1002/adma.202310617
摘要
Tissue engineered bracket materials provide essential support for the physiological protection and therapeutics of patients. Unfortunately, the implantation process of such devices poses the risk of surgical complications and infection. In this study, an upconversion nanoparticles (UCNPs)-assisted 3D bioprinting approach is developed to realize in vivo molding that is free from invasive surgery. Reasonably designed UCNPs, which convert near-infrared (NIR) photons that penetrate skin tissues into blue-violet emission (300-500 nm), induce a monomer polymerization curing procedure in vivo. Using a fused deposition modeling coordination framework, a precisely predetermined trajectory of the NIR laser enables the manufacture of implantable medical devices with tailored shapes. A proof of the 3D bioprinting of a noninvasive fracture fixation scaffold is achieved successfully, thus demonstrating an entirely new method of in vivo molding for biomedical treatment.
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