Harvard Program in Biophysics, Harvard University, Cambridge, MA, 02138, USA.
Wyss Institute for Biologically Inspired Engineering, Harvard University, Cambridge, MA, 02115, USA.
Macromol Biosci. 2024 Jan;24(1):e2300044. doi: 10.1002/mabi.202300044. Epub 2023 Apr 14.
Dermal wounds and their healing are a collection of complex, multistep processes which are poorly recapitulated by existing 2D in vitro platforms. Biomaterial scaffolds that support the 3D growth of cell cultures can better resemble the native dermal environment, while bioelectronics has been used as a tool to modulate cell proliferation, differentiation, and migration. A porous conductive hydrogel scaffold which mimics the properties of dermis, while promoting the viability and growth of fibroblasts is described. As these scaffolds are also electrically conductive, the application of exogenous electrical stimulation directs the migration of cells across and/or through the material. The mechanical properties of the scaffold, as well as the amplitude and/or duration of the electrical pulses, are independently tunable and further influence the resulting fibroblast networks. This biomaterial platform may enable better recapitulation of wound healing and can be utilized to develop and screen therapeutic interventions.
皮肤伤口及其愈合是一系列复杂的多步骤过程,现有的 2D 体外平台对此的再现效果很差。支持细胞培养 3D 生长的生物材料支架可以更好地模拟天然真皮环境,而生物电子学已被用作调节细胞增殖、分化和迁移的工具。本文描述了一种多孔导电水凝胶支架,它模拟了真皮的特性,同时促进成纤维细胞的活力和生长。由于这些支架也是导电的,因此施加外源性电刺激可以引导细胞穿过和/或穿过材料迁移。支架的机械性能以及电脉冲的幅度和/或持续时间可以独立调节,并进一步影响所得的成纤维细胞网络。这种生物材料平台可以更好地模拟伤口愈合,并可用于开发和筛选治疗干预措施。