Polydopamine‐Decorated PLCL Conduit to Induce Synergetic Effect of Electrical Stimulation and Topological Morphology for Peripheral Nerve Regeneration

Author:

Lu Shunyi1,Chen Wen2,Wang Jiayi1,Guo Zilong3,Xiao Lan4,Wei Lingyu2,Yu Jieqin1,Yuan Ya1,Chen Weisin1,Bian Mengxuan1,Huang Lei1,Liu Yuanyuan3,Zhang Jian1,Li Yu‐Lin25,Jiang Li‐Bo1ORCID

Affiliation:

1. Department of Orthopaedic Surgery Zhongshan Hospital Fudan University Shanghai 200032 China

2. The Key Laboratory for Ultrafine Materials of Ministry of Education State Key Laboratory of Bioreactor Engineering Engineering Research Center for Biomedical Materials of Ministry of Education School of Materials Science and Engineering East China University of Science and Technology Shanghai 200237 China

3. School of Mechatronic Engineering and Automation Shanghai University Shanghai 200444 China

4. Centre for Biomedical Technologies School of Mechanical Medical and Process Engineering Queensland University of Technology Brisbane 4059 Australia

5. Wenzhou Institute of Shanghai University Wenzhou 325000 China

Abstract

AbstractDue to the limited self‐repairing capacity after peripheral nerve injuries (PNI), artificial nerve conduits are widely applied to facilitate neural regeneration. Exogenous electrical stimulation (ES) that is carried out by the conductive conduit regulates the biological behavior of Schwann cells (SCs). Meanwhile, a longitudinal surface structure counts to guide axonal growth to accelerate the end‐to‐end connection. Currently, there are no conduits equipped with both electrical conduction and axon‐guiding surface structure. Herein, a biodegradable, conductive poly(l‐lactide‐co‐caprolactone)/graphene (PLCL/GN) composite conduit is designed. The conduit with 20.96 ± 1.26 MPa tensile strength has a micropatterned surface of 20 µm groove fabricated by microimprint technology and self‐assembled polydopamine (PDA). In vitro evaluation shows that the conduits with ES effectively stimulate the directional cell migration, adhesion, and elongation, and enhance neuronal expression of SCs. The rat sciatic nerve crush model demonstrates that the conductive micropatterned conduit with ES promotes the growth of myelin sheath, faster nerve regeneration, and 20‐fold functional recovery in vivo. These discoveries prove that the PLCL(G)/PDA/GN composite conduit is a promising tool for PNI treatment by providing the functional integration of physical guidance, biomimetic biological regulation, and bioelectrical stimulation, which inspires a novel therapeutic approach for nerve regeneration in the future.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Shanghai

Publisher

Wiley

Subject

General Materials Science,General Chemistry

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