Rago Ilaria, Rauti Rossana, Bevilacqua Manuela, Calaresu Ivo, Pozzato Alessandro, Cibinel Matteo, Dalmiglio Matteo, Tavagnacco Claudio, Goldoni Andrea, Scaini Denis
Department of Physics, University of Trieste, Piazzale Europa 1, 34127, Trieste, Italy.
Neurobiology Sector, International School for Advanced Studies (SISSA/ISAS), Via Bonomea 265, 34136, Trieste, Italy.
Adv Biosyst. 2019 May;3(5):e1800286. doi: 10.1002/adbi.201800286. Epub 2019 Mar 25.
Carbon nanotube (CNT)-modified surfaces unequivocally demonstrate their biocompatibility and ability to boost the electrical activity of neuronal cells cultured on them. Reasons for this effect are still under debate. However, the intimate contact at the membrane level between these thready nanostructures and cells, in combination with their unique electrical properties, seems to play an important role. The entire existing literature exploiting the effect of CNTs on modulating cellular behavior deals with cell cultures grown on purified multiwalled carbon nanotubes (MWNTs) deposited on a supporting surface via drop-casting or mechanical entrapment. Here, for the first time, it is demonstrated that CNTs directly grown on a supporting silicon surface by a chemical vapor deposition (CVD)-assisted technique have the same effect. It is shown that primary neuronal cells developed above a carpet of CVD CNTs form a healthy and functional network. The resulting neuronal network shows increased electrical activity when compared to a similar network developed on a control glass surface. The low cost and high versatility of the here presented CVD-based synthesis process, together with the possibility to create on supporting substrate patterns of any arbitrary shape of CNTs, open up new opportunities for brain-machine interfaces or neuroprosthetic devices.
碳纳米管(CNT)修饰的表面明确显示出它们的生物相容性以及增强在其上面培养的神经元细胞电活动的能力。这种效应的原因仍在争论中。然而,这些线状纳米结构与细胞在膜水平上的紧密接触,再加上它们独特的电学性质,似乎起着重要作用。现有的关于碳纳米管对调节细胞行为影响的全部文献都涉及通过滴铸或机械截留沉积在支撑表面上的纯化多壁碳纳米管(MWNT)上生长的细胞培养物。在此,首次证明通过化学气相沉积(CVD)辅助技术直接生长在支撑硅表面上的碳纳米管具有相同的效果。结果表明,在CVD碳纳米管毡上发育的原代神经元细胞形成了一个健康且功能正常的网络。与在对照玻璃表面上发育的类似网络相比,所得的神经元网络显示出增强的电活动。本文所呈现的基于CVD的合成过程的低成本和高通用性,以及在支撑基板上创建任意形状的碳纳米管图案的可能性,为脑机接口或神经假体装置开辟了新的机会。