Cellot Giada, Cilia Emanuele, Cipollone Sara, Rancic Vladimir, Sucapane Antonella, Giordani Silvia, Gambazzi Luca, Markram Henry, Grandolfo Micaela, Scaini Denis, Gelain Fabrizio, Casalis Loredana, Prato Maurizio, Giugliano Michele, Ballerini Laura
Life Science Department, B.R.A.I.N., University of Trieste, via Fleming 22, I-34127, Trieste, Italy.
Nat Nanotechnol. 2009 Feb;4(2):126-33. doi: 10.1038/nnano.2008.374. Epub 2008 Dec 21.
Carbon nanotubes have been applied in several areas of nerve tissue engineering to probe and augment cell behaviour, to label and track subcellular components, and to study the growth and organization of neural networks. Recent reports show that nanotubes can sustain and promote neuronal electrical activity in networks of cultured cells, but the ways in which they affect cellular function are still poorly understood. Here, we show, using single-cell electrophysiology techniques, electron microscopy analysis and theoretical modelling, that nanotubes improve the responsiveness of neurons by forming tight contacts with the cell membranes that might favour electrical shortcuts between the proximal and distal compartments of the neuron. We propose the 'electrotonic hypothesis' to explain the physical interactions between the cell and nanotube, and the mechanisms of how carbon nanotubes might affect the collective electrical activity of cultured neuronal networks. These considerations offer a perspective that would allow us to predict or engineer interactions between neurons and carbon nanotubes.
碳纳米管已应用于神经组织工程的多个领域,用于探测和增强细胞行为、标记和追踪亚细胞成分,以及研究神经网络的生长和组织。最近的报告表明,纳米管可以维持和促进培养细胞网络中的神经元电活动,但它们影响细胞功能的方式仍知之甚少。在这里,我们使用单细胞电生理学技术、电子显微镜分析和理论建模表明,纳米管通过与细胞膜形成紧密接触来提高神经元的反应性,这可能有利于神经元近端和远端隔室之间的电短路。我们提出“电紧张假说”来解释细胞与纳米管之间的物理相互作用,以及碳纳米管可能影响培养神经元网络集体电活动的机制。这些思考提供了一个视角,使我们能够预测或设计神经元与碳纳米管之间的相互作用。