生物加工
自愈水凝胶
材料科学
纳米技术
制作
组织工程
细胞包封
计算机科学
生物医学工程
工程类
医学
病理
高分子化学
替代医学
作者
Philip Lifwergren,Viktoria Schoen,Sajjad Naeimipour,Lalit Pramod Khare,Anna Wunder,Hans‐Olof Blom,José G. Martínez,Pierfrancesco Pagella,Anders Fridberger,Johan P.E. Junker,Daniel Aili
标识
DOI:10.1002/adhm.202502262
摘要
Abstract The fabrication of mechanically robust and reconfigurable hydrogel filaments remains a major challenge in biofabrication of perfusable architectures, dynamic tissue models, and complex 3D cell‐laden constructs. Conventional extrusion‐based bioprinting techniques generate filaments that are soft and fragile, limiting post‐processing, scalability, and functional adaptability. Rerouting of Free‐Floating Suspended Hydrogel Filaments (REFRESH) is introduced as a biofabrication strategy that integrates an aqueous two‐phase system (ATPS)‐compatible elastic extracellular matrix mimicking bioink material with a flexible printing and post‐processing approach to overcome these constraints. This method enables the formation of highly elastic hydrogel filaments cross‐linked via strain‐promoted azide‐alkyne cycloaddition (SPAAC) of bicyclo[6.1.0]non‐4‐yne‐functionalized hyaluronan, exhibiting a strain at break exceeding 100%. The printed filaments maintain mechanical integrity during manual handling and post‐processing using textile‐inspired techniques, such as knotting and braiding, into reconfigurable 3D architectures. A distinct shape memory function enables programmed mechanical actuation and recovery of deformed structures. The hydrogel system supports high cell viability across multiple cell types and enables the fabrication of multicellular constructs with spatially defined organization. By incorporating protease‐degradable cross‐linkers, REFRESH‐generated filaments function as sacrificial templates for perfusable tubular structures. This approach significantly expands the biofabrication design space, offering new possibilities for engineering vascularized tissues and complex hydrogel‐based architectures.
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