WPI-Advanced Institute for Materials Research, Tohoku University, Sendai 980-8577, Japan.
Graduate School of Environmental Studies, Tohoku University, Sendai 980-8579, Japan.
Acta Biomater. 2016 Feb;31:134-143. doi: 10.1016/j.actbio.2015.11.047. Epub 2015 Nov 24.
Carbon nanotubes (CNTs) were aligned in gelatin methacryloyl (GelMA) hydrogels using dielectrophoresis approach. Mouse embryoid bodies (EBs) were cultured in the microwells fabricated on the aligned CNT-hydrogel scaffolds. The GelMA-dielectrophoretically aligned CNT hydrogels enhanced the cardiac differentiation of the EBs compared with the pure GelMA and GelMA-random CNT hydrogels. This result was confirmed by Troponin-T immunostaining, the expression of cardiac genes (i.e., Tnnt2, Nkx2-5, and Actc1), and beating analysis of the EBs. The effect on EB properties was significantly enhanced by applying an electrical pulse stimulation (frequency, 1Hz; voltage, 3V; duration, 10ms) to the EBs for two continuous days. Taken together, the fabricated hybrid hydrogel-aligned CNT scaffolds with tunable mechanical and electrical characteristics offer an efficient and controllable platform for electrically induced differentiation and stimulation of stem cells for potential tissue regeneration and cell therapy applications.
Dielectrophoresis approach was used to rapidly align carbon nanotubes (CNTs) in gelatin methacryloyl (GelMA) hydrogels resulting in hybrid GelMA-CNT hydrogels with tunable and anisotropic electrical and mechanical properties. The GelMA-aligned CNT hydrogels may be used to apply accurate and controllable electrical pulses to cell and tissue constructs and thereby regulating their behavior and function. In this work, it was demonstrated that the GelMA hydrogels containing the aligned CNTs had superior performance in cardiac differentiation of stem cells upon applying electrical stimulation in contrast with control gels. Due to broad use of electrical stimulation in tissue engineering and stem cell differentiation, it is envisioned that the GelMA-aligned CNT hydrogels would find wide applications in tissue regeneration and stem cell therapy.
使用介电泳方法将碳纳米管 (CNT) 排列在明胶甲基丙烯酰 (GelMA) 水凝胶中。将鼠胚体 (EB) 培养在排列 CNT-水凝胶支架上制造的微井中。与纯 GelMA 和 GelMA-随机 CNT 水凝胶相比,GelMA-介电泳排列 CNT 水凝胶增强了 EB 的心脏分化。这一结果通过肌钙蛋白 T 免疫染色、心脏基因(即 Tnnt2、Nkx2-5 和 Actc1)的表达以及 EB 的跳动分析得到证实。通过对 EB 施加连续两天的电脉冲刺激(频率为 1Hz;电压为 3V;持续时间为 10ms),可以显著增强对 EB 性质的影响。综上所述,具有可调机械和电气特性的制造的混合水凝胶-排列 CNT 支架为电诱导干细胞分化和刺激提供了一种高效可控的平台,用于潜在的组织再生和细胞治疗应用。
介电泳方法用于快速排列明胶甲基丙烯酰 (GelMA) 水凝胶中的碳纳米管 (CNT),从而产生具有可调谐和各向异性电气和机械性能的混合 GelMA-CNT 水凝胶。含有排列 CNT 的 GelMA 水凝胶在施加电刺激时在干细胞的心脏分化中表现出优异的性能,与对照凝胶相比。由于电刺激在组织工程和干细胞分化中的广泛应用,可以预见,GelMA 排列 CNT 水凝胶将在组织再生和干细胞治疗中得到广泛应用。