Tissue engineering has long sought to rapidly generate perfusable vascularized tissues with vessel sizes spanning those seen in humans. Current techniques such as biological 3D printing (top-down) and cellular self-assembly (bottom-up) are resource intensive and have not overcome the inherent tradeoff between vessel resolution and assembly time, limiting their utility and scalability for engineering tissues. We present a flexible and scalable technique termed SPAN - Sacrificial Percolation of Anisotropic Networks, where a network of perfusable channels is created throughout a tissue in minutes, irrespective of its size. Conduits with length scales spanning arterioles to capillaries are generated using pipettable alginate fibers that interconnect above a percolation density threshold and are then degraded within constructs of arbitrary size and shape. SPAN is readily used within common tissue engineering processes, can be used to generate endothelial cell-lined vasculature in a multi-cell type construct, and paves the way for rapid assembly of perfusable tissues.
Rapid Tissue Perfusion Using Sacrificial Percolation of Anisotropic Networks.
利用各向异性网络的牺牲渗流实现快速组织灌注
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作者:Lammers Alex, Hsu Heng-Hua, Sundaram Subramanian, Gagnon Keith A, Kim Sudong, Lee Joshua H, Tung Yi-Chung, Eyckmans Jeroen, Chen Christopher S
| 期刊: | Matter | 影响因子: | 17.500 |
| 时间: | 2024 | 起止号: | 2024 Jun 5; 7(6):2184-2204 |
| doi: | 10.1016/j.matt.2024.04.001 | 研究方向: | 其它 |
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