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Updated: Mar 1, 2026

Electrically Conductive Scaffold to Modulate and Deliver Stem Cells
Published on: April 13, 2018
Enhanced neural stem cell functions in conductive annealed carbon nanofibrous scaffolds with electrical stimulation
Wei Zhu1, Tao Ye2, Se-Jun Lee1
1Department of Mechanical and Aerospace Engineering, The George Washington University, Washington, DC, USA.
Abstract:
Carbon-based nanomaterials have shown great promise in regenerative medicine because of their unique electrical, mechanical, and biological properties; however, it is still difficult to engineer 2D pure carbon nanomaterials into a 3D scaffold while maintaining its structural integrity. In the present study, we developed novel carbon nanofibrous scaffolds by annealing electrospun mats at elevated temperature. The resultant scaffold showed a cohesive structure and excellent mechanical flexibility. The graphitic structure generated by annealing renders superior electrical conductivity to the carbon nanofibrous scaffold. By integrating the conductive scaffold with biphasic electrical stimulation, neural stem cell proliferation was promoted associating with upregulated neuronal gene expression level and increased microtubule-associated protein 2 immunofluorescence, demonstrating an improved neuronal differentiation and maturation. The findings suggest that the integration of the conducting carbon nanofibrous scaffold and electrical stimulation may pave a new avenue for neural tissue regeneration.

