Biomimetic Multichannel Silk Nerve Conduits With Multicellular Spatiotemporal Distributions for Spinal Cord Injury Repair

Author:

Yuan Tao123ORCID,Li Wenzhao4,Zhou Minyu4,Wang Xiaocheng24ORCID,Wang Bing13,Zhao Yuanjin2456ORCID

Affiliation:

1. Department of Spine Surgery Second Xiangya Hospital of Central South University Changsha 410011 China

2. Department of Rheumatology and Immunology, Nanjing Drum Tower Hospital School of Biological Science and Medical Engineering, Southeast University Nanjing 210096 China

3. Hunan Digital Spine Research Institute Central South University Changsha 410011 China

4. Oujiang Laboratory (Zhejiang Lab for Regenerative Medicine, Vision and Brain Health), Wenzhou Institute University of Chinese Academy of Sciences Wenzhou Zhejiang 325001 China

5. Shenzhen Research Institute Southeast University Shenzhen 518071 China

6. Institute of Organoids on Chips Translational Research Henan Academy of Sciences Zhengzhou 450009 China

Abstract

AbstractBioengineered nerve conduits have shown great promise for spinal cord injury (SCI) repair, while their practical values are limited by poor regenerative efficacy and lack of multi‐level structural design. Here, inspired by the ingenious anatomy of natural spinal cords, a biomimetic multichannel silk nerve conduit (namely BNC@MSCs/SCs) with multicellular spatiotemporal distributions for effective SCI repair is presented. The biomimetic silk nerve conduit (BNC) with hierarchical channels and aligned pore structures is prepared via a modified directional freeze‐casting strategy. Such hierarchical structures provide appropriate space for the mesenchymal stem cells (MSCs) and Schwann cells (SCs) settled in specific channels, which contributes to the generation of BNC@MSCs/SCs resembling the cellular spatiotemporal distributions of natural spinal cords. The in vitro results reveal the facilitated SC migration and MSC differentiation in such BNC@MSCs/SCs multicellular system, which further promotes the tube formation and cell migration of endothelial cells as well as M2 polarization of macrophages. Moreover, BNC@MSCs/SCs can effectively promote the tissue repair and function recovery in SCI rats by attenuating glial scar formation while promoting neuron regeneration and myelin sheath reconstruction. Thus, it is believed that the biomimetic multichannel silk nerve conduits with multicellular spatiotemporal distributions are valuable for SCI repair and other neural tissue regeneration.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Publisher

Wiley

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