Quaternary ammonium-functionalized carbon nanotubes/alginate nanocomposite hydrogels support myoblast growth and differentiation.

Ludovica Ceroni, Tianqi Feng, Laura Calvillo, Stefano Casalini, Patrick Van Rijn, Enzo Menna
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Abstract

Carbon nanotube (CNT) composite hydrogels are promising materials for tissue engineering due to the biocompatibility of the matrix and the electrical conductivity of the filler, which is crucial for promoting the growth and functions in electroactive tissues. While pristine CNTs are insoluble, we synthesized and fully characterized a water-soluble CNT derivative (fCNT) bearing quaternary ammonium groups, and we homogeneously dispersed it within alginate-based hydrogels. Through external and internal gelation we obtained two plain and two fCNT-filled hydrogels (HG1 and HG2 and HG1-fCNT and HG2-fCNT, respectively), and we compared the physical properties of the four different materials. A measurement setup and an approach were specifically designed for the electrical characterization of our hydrogel samples, showing that the addition of a low amount (0.1 mg mL-1) of fCNT enhanced the conductivity of the hydrogel from internal gelation (HG2-fCNT) by more than one order of magnitude, from 5.7 × 10-10 to 2.8 × 10-8 S cm-1. Even more interestingly, HG2-fCNT featured a faster transmission of low frequency signals (with time scales from 1 ms to 100 ms, typical of electroactive biological tissues) than the other samples. Finally, the behavior of the four hydrogels as scaffolds for muscle tissue engineering was compared through studies of myoblast viability, proliferation, and differentiation. A relevant improvement in differentiation (more than doubling the number and area of myotubes and the fusion index) was obtained by adding the fCNT in the case of HG2-fCNT, in line of its superior electrical properties. These outcomes hint at the feasibility of using the fCNT combined with the alginate hydrogel in order to support the myoblast growth and proliferation.

季铵功能化碳纳米管/海藻酸盐纳米复合水凝胶支持成肌细胞生长和分化。
碳纳米管(CNT)复合水凝胶是一种很有前途的组织工程材料,因为它具有良好的生物相容性和导电性,这对促进电活性组织的生长和功能至关重要。虽然原始碳纳米管不溶,但我们合成并充分表征了一种带有季铵基团的水溶性碳纳米管衍生物(fCNT),并将其均匀分散在海藻酸盐基水凝胶中。通过外部凝胶和内部凝胶,我们得到了两种普通和两种填充fcnt的水凝胶(分别为HG1和HG2以及HG1- fcnt和HG2- fcnt),我们比较了四种不同材料的物理性质。我们为水凝胶样品的电学表征专门设计了一种测量装置和方法,结果表明,添加少量(0.1 mg mL-1)的fCNT可以提高水凝胶内部凝胶(HG2-fCNT)的电导率,从5.7 × 10-10增加到2.8 × 10-8 S cm-1。更有趣的是,HG2-fCNT具有比其他样品更快的低频信号传输(时间尺度从1毫秒到100毫秒,典型的电活性生物组织)。最后,通过对成肌细胞活力、增殖和分化的研究,比较了四种水凝胶作为肌肉组织工程支架的性能。在HG2-fCNT的情况下,由于其优越的电学性能,通过添加fCNT,分化得到了相关的改善(肌管的数量和面积以及融合指数增加了一倍以上)。这些结果提示fCNT与海藻酸盐水凝胶联合使用以支持成肌细胞生长和增殖的可行性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of materials chemistry. B
Journal of materials chemistry. B 化学科学, 工程与材料, 生命科学, 分析化学, 高分子组装与超分子结构, 高分子科学, 免疫生物学, 免疫学, 生化分析及生物传感, 组织工程学, 生物力学与组织工程学, 资源循环科学, 冶金与矿业, 生物医用高分子材料, 有机高分子材料, 金属材料的制备科学与跨学科应用基础, 金属材料, 样品前处理方法与技术, 有机分子功能材料化学, 有机化学
CiteScore
12.00
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1 months
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