Electromagnetic Cellularized Patch with Wirelessly Electrical Stimulation for Promoting Neuronal Differentiation and Spinal Cord Injury Repair

Author:

Wang Liang1,Zhao Hongbo2,Han Min2,Yang Hongru1,Lei Ming1,Wang Wenhan1,Li Keyi1,Li Yiwei1,Sang Yuanhua1,Xin Tao2345,Liu Hong16,Qiu Jichuan1ORCID

Affiliation:

1. State Key Laboratory of Crystal Materials Shandong University Jinan Shandong 250100 P. R. China

2. Department of Neurosurgery The First Affiliated Hospital of Shandong First Medical University & Shandong Provincial Qianfoshan Hospital Jinan 250014 P. R. China

3. Department of Neurosurgery, Shandong Provincial Qianfoshan Hospital Shandong University Jinan 250014 P. R. China

4. Medical Science and Technology Innovation Center Shandong First Medical University and Shandong Academy of Medical Sciences Jinan 250117 P. R. China

5. Department of Neurosurgery Jiangxi Provincial People's Hospital Nanchang Jiangxi 330006 P. R. China

6. Institute for Advanced Interdisciplinary Research University of Jinan Jinan Shandong 250022 P. R. China

Abstract

AbstractAlthough stem cell therapy holds promise for the treatment of spinal cord injury (SCI), its practical applications are limited by the low degree of neural differentiation. Electrical stimulation is one of the most effective ways to promote the differentiation of stem cells into neurons, but conventional wired electrical stimulation may cause secondary injuries, inflammation, pain, and infection. Here, based on the high conductivity of graphite and the electromagnetic induction effect, graphite nanosheets with neural stem cells (NSCs) are proposed as an electromagnetic cellularized patch to generate in situ wirelessly pulsed electric signals under a rotating magnetic field for regulating neuronal differentiation of NSCs to treat SCI. The strength and frequency of the induced voltage can be controlled by adjusting the rotation speed of the magnetic field. The generated pulsed electrical signals promote the differentiation of NSCs into functional mature neurons and increase the proportion of neurons from 12.5% to 33.7%. When implanted in the subarachnoid region of the injured spinal cord, the electromagnetic cellularized patch improves the behavioral performance of the hind limbs and the repair of spinal cord tissue in SCI mice. This work opens a new avenue for remote treatment of SCI and other nervous system diseases.

Funder

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Natural Science Foundation of Shandong Province

Publisher

Wiley

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