生物加工
材料科学
肿胀 的
生物医学工程
软骨
组织工程
脚手架
3D生物打印
曲率
纳米技术
复合材料
解剖
工程类
数学
医学
几何学
作者
Pedro J. Díaz‐Payno,Maria Kalogeropoulou,Iain Muntz,Esther Kingma,Nicole Kops,Matteo D’Este,Gijsje H. Koenderink,Lidy E. Fratila‐Apachitei,Gerjo J.V.M. van Osch,Amir A. Zadpoor
标识
DOI:10.1002/adhm.202201891
摘要
3D bioprinting is usually implemented on flat surfaces, posing serious limitations in the fabrication of multilayered curved constructs. 4D bioprinting, combining 3D bioprinting with time-dependent stimuli-induced transformation, enables the fabrication of shape-changing constructs. Here, a 4D biofabrication method is reported for cartilage engineering based on the differential swelling of a smart multi-material system made from two hydrogel-based materials: hyaluronan and alginate. Two ink formulations are used: tyramine-functionalized hyaluronan (HAT, high-swelling) and alginate with HAT (AHAT, low-swelling). Both inks have similar elastic, shear-thinning, and printability behavior. The inks are 3D printed into a bilayered scaffold before triggering the shape-change by using liquid immersion as stimulus. In time (4D), the differential swelling between the two zones leads to the scaffold's self-bending. Different designs are made to tune the radius of curvature and shape. A bioprinted formulation of AHAT and human bone marrow cells demonstrates high cell viability. After 28 days in chondrogenic medium, the curvature is clearly present while cartilage-like matrix production is visible on histology. A proof-of-concept of the recently emerged technology of 4D bioprinting with a specific application for the design of curved structures potentially mimicking the curvature and multilayer cellular nature of native cartilage is demonstrated.
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