Wang Juan, Lin Jiawei, Chen Liang, Deng Lianfu, Cui Wenguo
Department of Orthopaedics, Shanghai Key Laboratory for Prevention and Treatment of Bone and Joint Diseases, Shanghai Institute of Traumatology and Orthopaedics, Ruijin Hospital, Shanghai Jiao Tong University School of Medicine, 197 Ruijin 2nd Road, Shanghai, 200025, P. R. China.
Adv Mater. 2022 Mar;34(9):e2108325. doi: 10.1002/adma.202108325. Epub 2022 Jan 15.
Endogenous electric fields (EF) are the basis of bioelectric signal conduction and the priority signal for damaged tissue regeneration. Tissue exudation directly affects the characteristics of endogenous EF. However, current biomaterials lead to passive repair of defect tissue due to limited management of early wound exudates and inability to actively respond to coupled endogenous EF. Herein, the 3D bionic short-fiber scaffold with the functions of early biofluid collection, response to coupled endogenous EF, is constructed by guiding the short fibers into a 3D network structure and subsequent multifunctional modification. The scaffold exhibits rapid reversible water absorption, reaching maximum after only 30 s. The stable and uniform distribution of polydopamine-reduced graphene oxide endows the scaffold with stable electrical and mechanical performances even after long-term immersion. Due to its unique - bionic structure and tissue affinity, the scaffold further acts as an "electronic skin," which transmits endogenous bioelectricity via absorbing wound exudates, promoting the treatment of diabetic wounds. Furthermore, under the endogenous EF, the cascade release of vascular endothelial growth factor accelerates the healing process. Thus, the versatile scaffold is expected to be an ideal candidate for repairing different defect tissues, especially electrosensitive tissues.
内源性电场(EF)是生物电信号传导的基础,也是受损组织再生的首要信号。组织渗出液直接影响内源性EF的特性。然而,由于对早期伤口渗出液的管理有限且无法对内源性EF耦合做出积极响应,目前的生物材料导致缺损组织的被动修复。在此,通过将短纤维引导成三维网络结构并进行后续多功能修饰,构建了具有早期生物流体收集功能、对内源性EF耦合做出响应的三维仿生短纤维支架。该支架表现出快速可逆的吸水性,仅30秒后就达到最大值。聚多巴胺还原氧化石墨烯的稳定且均匀分布赋予支架即使在长期浸泡后仍具有稳定的电学和力学性能。由于其独特的仿生结构和组织亲和力,该支架进一步充当“电子皮肤”,通过吸收伤口渗出液来传递内源性生物电,促进糖尿病伤口的治疗。此外,在内源性EF作用下,血管内皮生长因子的级联释放加速了愈合过程。因此,这种多功能支架有望成为修复不同缺损组织,尤其是电敏感组织的理想候选材料。