Lynch Kyle J, Skalli Omar, Sabri Firouzeh
Department of Physics and Materials Science, University of Memphis, Memphis, TN 38152, USA.
Department of Biological Sciences, University of Memphis, Memphis, TN 38152, USA.
J Funct Biomater. 2018 Apr 20;9(2):30. doi: 10.3390/jfb9020030.
Externally applied electrical stimulation (ES) has been shown to enhance the nerve regeneration process and to influence the directionality of neurite outgrowth. In addition, the physical and chemical properties of the substrate used for nerve-cell regeneration is critical in fostering regeneration. Previously, we have shown that polyurea-crosslinked silica aerogels (PCSA) exert a positive influence on the extension of neurites by PC-12 cells, a cell-line model widely used to study neurite extension and electrical excitability. In this work, we have examined how an externally applied electric field (EF) influences the extension of neurites in PC-12 cells grown on two substrates: collagen-coated dishes versus collagen-coated crosslinked silica aerogels. The externally applied direct current (DC) bias was applied in vitro using a custom-designed chamber containing polydimethysiloxane (PDMS) embedded copper electrodes to create an electric field across the substrate for the cultured PC-12 cells. Results suggest orientation preference towards the anode, and, on average, longer neurites in the presence of the applied DC bias than with 0 V DC bias. In addition, neurite length was increased in cells grown on silica-crosslinked aerogel when compared to cells grown on regular petri-dishes. These results further support the notion that PCSA is a promising material for nerve regeneration.
外部施加电刺激(ES)已被证明可促进神经再生过程并影响神经突生长的方向性。此外,用于神经细胞再生的底物的物理和化学性质对于促进再生至关重要。此前,我们已经表明,聚脲交联二氧化硅气凝胶(PCSA)对PC-12细胞的神经突延伸有积极影响,PC-12细胞是一种广泛用于研究神经突延伸和电兴奋性的细胞系模型。在这项工作中,我们研究了外部施加的电场(EF)如何影响在两种底物上生长的PC-12细胞的神经突延伸:胶原包被的培养皿与胶原包被的交联二氧化硅气凝胶。使用包含嵌入聚二甲基硅氧烷(PDMS)的铜电极的定制腔室在体外施加外部直流(DC)偏压,以在培养的PC-12细胞的底物上产生电场。结果表明细胞对阳极有取向偏好,并且平均而言,施加直流偏压时的神经突比0 V直流偏压时更长。此外,与在普通培养皿上生长的细胞相比,在二氧化硅交联气凝胶上生长的细胞的神经突长度增加。这些结果进一步支持了PCSA是一种有前途的神经再生材料的观点。