バイオプリンティングによる血管構造の構築技術を開発(Researchers Develop Functional Vasculatures via One-Step Bioprinting for Tissue Engineering)

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2025-09-30 中国科学院(CAS)

中国科学院広州生物医薬・健康研究所の呉林平教授らは、ワンステップ生体印刷法により機能的血管組織を構築する技術を開発した。細胞をECM類似の動的共有結合バイオインク内に区画化し、内皮細胞と平滑筋細胞を自発的に血管構造へ配置。作製血管はアンジオテンシンII刺激で収縮反応を示し、マウス虚血モデルで血流回復を実証した。タンパク質解析によりHIF-1経路解糖系経路の活性化を確認し、細胞接着・アクチン骨格再構築を介して血管形成を促進することが判明。研究は、事前血管化を実現する再生医療基盤技術として臓器工学や創傷治癒応用への道を拓く。

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顕微鏡的に適応可能なバイオインクが細胞区画化を誘導し、機能的な血管様システムの形態形成を促進する Microscopically Adaptable Bioink Guide Cell Compartmentalization toward Morphogenesis of a Functional Vasculature-Like System

Jun Chen, Yuqiong Wu, Jiarong Huang, Junjin Jie, Chan Huang, Di Zhang, Yuxin Huang, Rui Mao, Ming Zhao, Lin-Ping Wu
Advanced Healthcare Materials  Published: 31 July 2025
DOI:https://doi.org/10.1002/adhm.202502347

バイオプリンティングによる血管構造の構築技術を開発(Researchers Develop Functional Vasculatures via One-Step Bioprinting for Tissue Engineering)

Abstract

Prevascularization is the key challenge for large-scale tissue engineering. Nevertheless, none of the engineered vasculature simultaneously recapitulates the multi-layered heterogeneous characterizations and functions yet. The recent studies reveal that matrix dynamics play an important role in vasculature morphogenesis. In this study, an extracellular matrix-mimicking bioink is developed by the interpenetrated dynamic-covalent crosslinking orthogonal design. The dynamic covalent crosslinking network of the bioink allows an adaptable microenvironment contributing to the functional compartmentalization of endothelial cells and smooth muscle cells toward histological vasculature configurations. Focal adhesion kinase pathway participates in the morphogenesis process by coupling the microscopically adaptable environment to the vasculature organization via upregulation of integrin-mediated adhesion and glycolysis. The engineered vasculature exhibits in vitro contraction in response to angiotensin II and significantly improves blood perfusion in the mouse hind limb ischemia model. In addition, the vascular network successfully prolongs the survival and function of surrounding human dermal fibroblasts postimplantation, which enhances the healing of large full-thickness wounds. Altogether, this work presents a one-step bioprinting strategy of prevascularization in predesigned architecture for vascular tissue engineering.

細胞遺伝子工学
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