材料科学
数字光处理
3D生物打印
自愈水凝胶
材料加工
纳米技术
复合材料
生物医学工程
组织工程
计算机科学
工艺工程
人工智能
工程类
高分子化学
投影机
作者
Ming Yang,Lang Chu,Yanfeng Zhuang,Qi Cheng,Si Meng,Zhou Liu,Tiantian Kong
标识
DOI:10.1002/adfm.202316456
摘要
Abstract The challenges of replicating the complex mechanical and structural diversity of natural tissues in vitro by leveraging multi‐material digital light processing (DLP) bioprinting are addressed. This technique utilizes PEGDA‐AAm bio‐ink to develop multi‐component, cell‐laden hydrogel constructs with varying moduli. These constructs not only possess heterogeneous mechanical properties but also feature complex architectures and precisely engineered surface microstructures. The hydrogel microfluidic chips are successfully fabricated with perfusable microchannels, embedding various cell types within the matrix. This approach enables the bioprinting of intricate cell‐laden structures with unique surface topologies, such as spiral grooves and triply periodic minimal surfaces (TPMS), which effectively influence cell alignment, spreading, and migration. By integrating various cell‐laden PA hydrogels, the diverse mechanical moduli of biological tissues, including bone, liver lobules, and vascular networks are replicated. This technique ensures high‐fidelity differentiation between cell types and regions. These findings provide valuable insights into the impact of substrate modulus and structure on cell behavior, underscoring the potential of multi‐component, multi‐modulus hydrogel constructs in creating sophisticated structures with custom‐tailored mechanical properties. This study significantly advances the field by demonstrating the feasibility and effectiveness of multi‐material DLP bioprinting in developing complex, functionally relevant tissue models for tissue engineering and regenerative medicine.
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