生物医学工程
组织工程
机械转化
刺激
脐静脉
体内
再生医学
联轴节(管道)
材料科学
血管平滑肌
解剖
血管组织
血管
脚手架
生物力学
神经科学
动脉壁
机械生物学
化学
细胞外基质
内皮
生物物理学
间充质干细胞
作者
Geonwoo Kim,Wonjun Jang,Geonho Lee,Giheon Ha,Ulziituya Batjargal,Soojin Park,Minseok Kim,R Kang,Taehoon Lee,Jinhee Song,Y. P. Lee,Rohollah Nasiri,Hyun‐Jong Cho,Yu Shrike Zhang,Han‐Jun Kim,Junmin Lee
标识
DOI:10.1002/adhm.202505915
摘要
Engineering functional arterial tissues in vitro requires dynamic cues that recapitulate native mechanical environments. A bidirectional stimulation approach, termed blood and tissue side stretch (BTS), is presented, applying cyclic circumferential stretch to drive maturation of arterial microphysiological systems (aMPSs). These stimuli replicate key biomechanical forces present in vivo-cyclic circumferential stretch-enabling a more physiologically relevant tissue architecture. Human umbilical vein endothelial cells (HUVECs) and human smooth muscle cells (SMCs) are co-cultured within a bilayered vessel structure composed of an elastomeric hydrogel that mimics native vessel geometry and compliance. BTS stimulation enhances alignment of collagen fibers, promotes expression of contractile markers in SMCs, and improves barrier function and junctional protein localization in HUVECs. The matured aMPS exhibits vasomotor responsiveness and biomechanical integrity, validating its physiological relevance. Comparative analysis shows that BTS outperforms static and one-directional controls in promoting vascular tissue maturation. This platform provides a scalable and biomimetic solution for vascular tissue engineering and disease modeling. By integrating orthogonal mechanical cues that mimic the in vivo arterial environment, this approach represents a significant step forward in the development of predictive, functional, and high-fidelity vascular models for drug testing and regenerative medicine applications.
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