Regulation of nerve cells using conductive nanofibrous scaffolds for controlled release of Lycium barbarum polysaccharides and nerve growth factor

Author:

Wang Jing12,Liu Yuan1,Lv Minmin3,Zhao Xiaoli1,So Kwok Fai456,Li Hui1,EL-Newehy Mohamed7,EL-Hamshary Hany7,Morsi Yosry8,Mo Xiumei9ORCID

Affiliation:

1. Research Center for Human Tissues and Organs Degeneration, Institute of Biomedicine and Biotechnology, Shenzhen Institutes of Advanced Technology, Chinese Academy of Sciences , Shenzhen, 518055, P.R. China

2. Department of Orthopedics, Shanghai Sixth People's Hospital , Shanghai, 201306, P.R. China

3. University of Hong Kong-Shenzhen Hospital , Shenzhen, 518053, P.R. China

4. State Key Laboratory of Brain and Cognitive Sciences, The University of Hong Kong , Pokfulam, Hong Kong, P.R. China

5. Department of Ophthalmology, The University of Hong Kong , Pokfulam, Hong Kong, P.R. China

6. Guangdong-Hong Kong-Macau Institute of CNS Regeneration, Jinan University , Guangzhou, P.R. China

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

8. Faculty of Engineering and Industrial Sciences, Swinburne University of Technology , Boroondara, VIC 3122, Australia

9. 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 , Songjiang, Shanghai, 201600, P.R. China

Abstract

Abstract Currently, more and more patients suffer from peripheral nerve injury due to trauma, tumor and other causes worldwide. Biomaterial-based nerve conduits are increasingly recognized as a potential alternative to nerve autografts for the treatment of peripheral nerve injury. However, an ideal nerve conduit must offer topological guidance and biochemical and electrical signal transduction mechanisms. In this work, aligned conductive nanofibrous scaffolds comprising polylactic-co-glycolic acid and multiwalled carbon nanotubes (MWCNTs) were fabricated via coaxial electrospinning, and nerve growth factor (NGF) and Lycium barbarum polysaccharides (LBP) purified from the wolfberry were loaded on the core and shell layers of the nanofibers, respectively. LBP were confirmed to accelerate long-distance axon regeneration after severe peripheral nerve injury. In addition, the synergistic promotion of LBP and NGF on nerve cell proliferation and neurite outgrowth was demonstrated. MWCNTs were introduced into the aligned fibers to further increase the electrical conductivity, which promoted the directional growth and neurite extension of neurons in vitro. Further, the combination of conductive fibrous scaffolds with electrical stimulation that mimics endogenous electric fields significantly promoted the differentiation of PC12 cells and the axon outgrowth of neurons. Based on robust cell-induced behaviors, conductive composite fibers with optimized fiber alignment may be used for the promotion of nerve recovery.

Funder

National Natural Science Foundation of China

Guangdong Basic and Applied Basic Research Foundation

Jiao Tong University Star Program Medical and Industrial Cross Research Fund

Science and Technology Commission of Shanghai Municipality

Sino German Science Foundation Research Exchange Center

King Saud University

Publisher

Oxford University Press (OUP)

Subject

Biomaterials

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