生物加工
3D生物打印
组织工程
干细胞
干细胞生物学
纳米技术
桥(图论)
转化式学习
再生医学
计算机科学
工程类
生物
生化工程
生物制造
系统工程
工程伦理学
仿生学
组织修复
生物相容性材料
基因工程
结构完整性
标识
DOI:10.1002/adma.202510110
摘要
The complexity of human organs arises from sophisticated cell interactions and dynamic, spatially precise developmental processes. Traditional tissue engineering and bioprinting technologies have made considerable progress, yet remain limited in reproducing the intricate structural and functional complexity of native organs. Stem cells, renowned for their differentiation capacity and responsiveness to environmental signals, offer a transformative opportunity to overcome these barriers. This review extensively covers recent progress in stem-cell-based organ manufacturing, highlights critical strategies to guide developmentally inspired organ fabrication, and explores the integration of intrinsic (cell-intrinsic genetic networks and self-organization) and extrinsic (bioink dynamics, microfabrication, and mechanical cues) approaches, forming the conceptual foundation for the convergence of instructive bioprinting and autonomous development. Collectively, these advances illustrate how integrating developmental biology principles with biofabrication precision is transforming tissue engineering from descriptive reconstruction toward predictive, functional organ manufacturing.
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