Department of Physics and Materials Science, University of Memphis, Memphis, TN 38152, USA.
Lawrence Livermore National Laboratory, Livermore, CA 94550, USA.
Soft Matter. 2021 May 5;17(17):4489-4495. doi: 10.1039/d1sm00183c.
Previous works from our laboratory have firmly established that aerogels are a suitable substrate to elicit accelerated neurite extension. On non-conducting aerogels, in the presence of an externally-applied DC bias, neurons extended neurites which were preferentially aligned towards the anode. In this investigation, we sought to determine whether electrically-conductive carbon aerogels elicited a more robust alignment of neurites toward the anode than non-conductive aerogels due to the capacity of conductive aerogels to sustain a current, thereby providing a direct interface between neurons and the external electrical stimulus. To determine if this was the case, we plated PC12 neuronal cells on electrically conductive carbon aerolges derived from acetic acid-catalized resorcinol formaldehyde aerogels (ARF-CA) and subjected them to an external electric field. The voltages applied at the electrodes of the custom-built electro-stimulation chamber were 0 V, 15 V, and 30 V. For each voltage, the directionality and length of the neurites extended by PC12 cells were determined and compared to those observed when PC12 cells were plated on non-conductive aerogels subjected to the same voltage. The results show that the directionality of neurite extension was similar between conductive and non-conductive aerogels. A higher neurite length difference was observed on conductive aerogels with increasing voltage, 43% and 106% for 0-15 V and 0-30 V respectively, compared to non-conductive aerogels, 12% and 20%. These findings indicate that conductive carbon aerogels have a greater potential as scaffolds for nerve regeneration than non-conductive ones.
先前我们实验室的工作已经明确证明气凝胶是一种合适的基底,可以促进神经突的延伸。在非导电气凝胶上,在外加直流偏压的情况下,神经元会延伸出优先朝向阳极的神经突。在这项研究中,我们试图确定导电碳气凝胶是否由于其能够维持电流的能力,比非导电气凝胶更能引起神经突强烈地朝向阳极排列,从而为神经元和外部电刺激提供直接接口。为了确定这是否是情况,我们将 PC12 神经元细胞种植在由乙酸催化的间苯二酚甲醛气凝胶(ARF-CA)衍生的导电碳气凝胶上,并对其施加外部电场。在定制的电刺激室的电极上施加的电压为 0V、15V 和 30V。对于每个电压,确定 PC12 细胞延伸的神经突的方向性和长度,并将其与在相同电压下种植在非导电气凝胶上观察到的神经突进行比较。结果表明,导电和气凝胶的神经突延伸的方向性相似。在导电气凝胶上观察到的随着电压增加的神经突长度差异较大,0-15V 和 0-30V 分别为 43%和 106%,而非导电气凝胶分别为 12%和 20%。这些发现表明,导电碳气凝胶作为神经再生支架比非导电气凝胶具有更大的潜力。