去细胞化
再生(生物学)
脚手架
组织工程
表面改性
材料科学
生物医学工程
神经导管
细胞外基质
粘附
再生医学
纳米技术
细胞
化学
细胞生物学
复合材料
医学
生物化学
物理化学
生物
作者
Jacob A. Orkwis,Ann K. Wolf,Zachary J Mularczyk,Andrew E Bryan,Corinne S. Smith,Ryan Brown,Maksym Krutko,Adam McCann,Ryan M. Collar,Leyla Esfandiari,Greg M. Harris
出处
期刊:Biomaterials advances
日期:2022-08-17
卷期号:140: 213081-213081
被引量:25
标识
DOI:10.1016/j.bioadv.2022.213081
摘要
Traumatic nerve injuries have limited success in achieving full functional recovery, with current clinical solutions often including implementation of nerve grafts or the use of nerve conduits to guide damaged axons across injury gaps. In search of alternative, and complimentary solutions, piezoelectric biomaterials demonstrate immense potential for tissue engineering applications. Piezoelectric poly(vinylidene fluoride-triflouroethylene) (PVFD-TrFE) scaffolds can be harnessed to non-invasively stimulate and direct function of key peripheral nervous system (PNS) cells in regeneration strategies. In this study, electrospun PVDF-TrFE was characterized, fabricated into a 3D scaffold, and finally rendered bioactive with the incorporation of a cell-secreted, decellularized extracellular matrix (dECM). PVDF-TrFE scaffolds were characterized extensively for piezoelectric capacity, mechanical properties, and cell-material interactions with fibroblasts and Schwann cells. Through functionalization of PVDF-TrFE scaffolds with a native, cell-assembled dECM, the ability to promote cell adhesion and enhanced viability was also demonstrated. Additionally, incorporation of bioactive functionalization improved the assembly of key regenerative ECM proteins and regenerative growth factors. PVDF-TrFE scaffolds were then fabricated into a conduit design that retained key physical, chemical, and piezoelectric properties necessary for PNS repair. This work shows great promise for multi-cue, electrospun biomaterials for regeneration of the PNS in traumatic injury.
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