Shape‐Persistent Conductive Nerve Guidance Conduits for Peripheral Nerve Regeneration

Author:

Song Jiahui1,Dong Jize2,Yuan Zhengchao1,Huang Moran2,Yu Xiao1,Zhao Yue1,Shen Yihong1,Wu Jinglei1,EL‐Newehy Mohamed3,Abdulhameed Meera Moydeen3,Sun Binbin1ORCID,Chen Jiwu2ORCID,Mo Xiumei1ORCID

Affiliation:

1. State Key Laboratory for Modification of Chemical Fibers and Polymer Materials Shanghai Engineering Research Center of Nano‐Biomaterials and Regenerative Medicine College of Biological Science and Medical Engineering Donghua University Shanghai 201620 P. R. China

2. Department of Sports Medicine Shanghai General Hospital Affiliated to Shanghai Jiao Tong University Shanghai 200080 P. R. China

3. Department of Chemistry College of Science King Saud University P.O. Box 2455 Riyadh 11451 Saudi Arabia

Abstract

AbstractTo solve the problems of slow regeneration and mismatch of axon regeneration after peripheral nerve injury, nerve guidance conduits (NGCs) have been widely used to promote nerve regeneration. Multichannel NGCs have been widely studied to mimic the structure of natural nerve bundles. However, multichannel conduits are prone to structural instability. Thermo‐responsive shape memory polymers (SMPs) can maintain a persistent initial structure over the body temperature range. Electrical stimulation (ES), utilized within nerve NGCs, serves as a biological signal to expedite damaged nerve regeneration. Here, an electrospun shape‐persistent conductive NGC is designed to maintain the persistent tubular structure in the physiological temperature range and improve the conductivity. The physicochemical and biocompatibility of these P, P/G, P/G‐GO, and P/G‐RGO NGCs are conducted in vitro. Meanwhile, to evaluate biocompatibility and peripheral nerve regeneration, NGCs are implanted in subcutaneous parts of the back of rats and sciatic nerves assessed by histology and immunofluorescence analyses. The conductive NGC displays a stable structure, good biocompatibility, and promoted nerve regeneration. Collectively, the shape‐persistent conductive NGC (P/G‐RGO) is expected to promote peripheral nerve recovery, especially for long‐gap and large‐diameter nerves.

Funder

Science and Technology Commission of Shanghai Municipality

National Key Research and Development Program of China

Scientific Research Foundation for Returned Scholars of Ministry of Education

Chinesisch-Deutsche Zentrum für Wissenschaftsförderung

King Saud University

Publisher

Wiley

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