4.8 Article

Injectable, Pore-Forming, Perfusable Double-Network Hydrogels Resilient to Extreme Biomechanical Stimulations

期刊

ADVANCED SCIENCE
卷 9, 期 2, 页码 -

出版社

WILEY
DOI: 10.1002/advs.202102627

关键词

cytocompatible; injectable; microfluidics; perfusable; porous structures; tissue engineering; tough hydrogels

资金

  1. National Institute on Deafness and Other Communication Disorders [R01-DC018577, R01-DC005788, R01-DC014461]
  2. New Frontiers in Research Fund-Exploration [NFRFE-2018-00751]
  3. NSERC [RGPIN-2018-04146]
  4. Optimizing Power Skills in Interdisciplinary, Diverse & Innovative Academic Networks (OPSIDIAN) Fellowship

向作者/读者索取更多资源

The study successfully addresses the long-standing challenge in regenerative medicine by fabricating injectable, pore-forming double-network hydrogels with high permeability and toughness. These hydrogels demonstrate excellent performance in cell encapsulation and delivery, as well as resistance to fatigue and superior biomechanical properties.
Biological tissues hinge on blood perfusion and mechanical toughness to function. Injectable hydrogels that possess both high permeability and toughness have profound impacts on regenerative medicine but remain a long-standing challenge. To address this issue, injectable, pore-forming double-network hydrogels are fabricated by orchestrating stepwise gelation and phase separation processes. The interconnected pores of the resulting hydrogels enable direct medium perfusion through organ-sized matrices. The hydrogels are amenable to cell encapsulation and delivery while promoting cell proliferation and spreading. They are also pore insensitive, tough, and fatigue resistant. When tested in biomimetic perfusion bioreactors, the hydrogels maintain physical integrity under prolonged, high-frequency biomechanical stimulations (>6000 000 cycles at 120 Hz). The excellent biomechanical performance suggests the great potential of the new injectable hydrogel technology for repairing mechanically dynamic tissues, such as vocal folds, and other applications, such as tissue engineering, biofabrication, organs-on-chips, drug delivery, and disease modeling.

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