球体
生物制造
软骨内骨化
组织工程
生物加工
生物医学工程
背景(考古学)
过程(计算)
材料科学
细胞生物学
计算机科学
纳米技术
软骨
解剖
生物
工程类
体外
生物技术
操作系统
古生物学
生物化学
作者
Gabriella Nilsson Hall,Iene Rutten,Jeroen Lammertyn,Jens Eberhardt,Liesbet Geris,Frank P. Luyten,Ioannis Papantoniou
出处
期刊:Biofabrication
[IOP Publishing]
日期:2021-09-21
卷期号:13 (4): 045025-045025
被引量:17
标识
DOI:10.1088/1758-5090/ac2208
摘要
Abstract Spheroids have become essential building blocks for biofabrication of functional tissues. Spheroid formats allow high cell-densities to be efficiently engineered into tissue structures closely resembling the native tissues. In this work, we explore the assembly capacity of cartilaginous spheroids ( d ∼ 150 µ m) in the context of endochondral bone formation. The fusion capacity of spheroids at various degrees of differentiation was investigated and showed decreased kinetics as well as remodeling capacity with increased spheroid maturity. Subsequently, design considerations regarding the dimensions of engineered spheroid-based cartilaginous mesotissues were explored for the corresponding time points, defining critical dimensions for these type of tissues as they progressively mature. Next, mesotissue assemblies were implanted subcutaneously in order to investigate the influence of spheroid fusion parameters on endochondral ossification. Moreover, as a step towards industrialization, we demonstrated a novel automated image-guided robotics process, based on targeting and registering single-spheroids, covering the range of spheroid and mesotissue dimensions investigated in this work. This work highlights a robust and automated high-precision biomanufacturing roadmap for producing spheroid-based implants for bone regeneration.
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