Dominguez-Alfaro Antonio, Alegret Nuria, Arnaiz Blanca, González-Domínguez Jose M, Martin-Pacheco Ana, Cossío Unai, Porcarelli Luca, Bosi Susanna, Vázquez Ester, Mecerreyes David, Prato Maurizio
Carbon Bionanotechnology Group, CIC biomaGUNE, Paseo de Miramón 182, 20014 Donostia-San Sebastián, Spain.
POLYMAT University of the Basque Country UPV/EHU, Avenida de Tolosa 72, 20018 Donostia-San Sebastián, Spain.
ACS Biomater Sci Eng. 2020 Feb 10;6(2):1269-1278. doi: 10.1021/acsbiomaterials.9b01316. Epub 2020 Jan 10.
Three-dimensional (3D) scaffolds with tailored stiffness, porosity, and conductive properties are particularly important in tissue engineering for electroactive cell attachment, proliferation, and vascularization. Carbon nanotubes (CNTs) and poly(3,4-ethylenedioxythiophene) (PEDOT) have been extensively used separately as neural interfaces showing excellent results. Herein, we combine both the materials and manufacture 3D structures composed exclusively of PEDOT and CNTs using a methodology based on vapor phase polymerization of PEDOT onto a CNT/sucrose template. Such a strategy presents versatility to produce porous scaffolds, after leaching out the sucrose grains, with different ratios of polymer/CNTs, and controllable and tunable electrical and mechanical properties. The resulting 3D structures show Young's modulus typical of soft materials (20-50 kPa), as well as high electrical conductivity, which may play an important role in electroactive cell growth. The conductive PEDOT/CNT porous scaffolds present high biocompatibility after 3 and 6 days of C8-D1A astrocyte incubation.
具有定制刚度、孔隙率和导电性能的三维(3D)支架在组织工程中对于电活性细胞的附着、增殖和血管生成尤为重要。碳纳米管(CNT)和聚(3,4-乙撑二氧噻吩)(PEDOT)已分别作为神经界面被广泛使用,并显示出优异的效果。在此,我们将这两种材料结合起来,使用一种基于将PEDOT气相聚合到CNT/蔗糖模板上的方法制造仅由PEDOT和CNT组成的3D结构。这种策略具有通用性,在沥出蔗糖颗粒后能够生产具有不同聚合物/CNT比例、可控且可调的电学和力学性能的多孔支架。所得的3D结构显示出典型的软材料杨氏模量(20 - 50 kPa)以及高电导率,这可能在电活性细胞生长中发挥重要作用。在C8 - D1A星形胶质细胞培养3天和6天后,导电的PEDOT/CNT多孔支架表现出高生物相容性。