Transplantation of Pre‐Differentiated 3D Neural Spheroids in Decellularized Extracellular Matrix Microgels Promotes Neuronal Network Reconstruction and Functional Recovery after Severe Spinal Cord Contusion

Author:

Zhang Kexin1,Rao Zilong1,Zuo Huiying1,Chu Hanyu1,Chen Jiaxin1,Cui Rui1,Zhu Shengwen1,Guo Xiaodong2,Hu Yong3,Quan Daping1,Bai Ying1ORCID

Affiliation:

1. Guangdong Engineering Technology Research Centre for Functional Biomaterials Key Laboratory for Polymeric Composite & Functional Materials of Ministry of Education School of Materials Science and Engineering Sun Yat‐sen University Guangzhou 510006 China

2. Department of Orthopaedics Union Hospital Tongji Medical College Huazhong University of Science and Technology Wuhan 430022 China

3. Department of Orthopedics and Traumatology Li Ka Shing Faculty of Medicine The University of Hong Kong Pokfulam Hong Kong 999077 China

Abstract

AbstractTraumatic spinal cord injury (SCI) causes massive death of neurons in the spinal cords and almost complete neurological dysfunctions. Transplantation of neural stem/progenitor cells (NSPCs) is acknowledged as one of the viable SCI treatments for complementing lost neurons and neural network reconstruction. However, administration of NSPCs suffers from extremely low survival rate and uncontrolled differentiation of the transplanted cells, which impairs the therapeutic effects significantly. Herein, NSPCs are encapsulated in decellularized spinal cord matrix (DSCM) microgels using a customized microfluidic system, then the obtained NSPCs‐encapsulated DSCM microgels (NSPC@DSCM‐MGs) are subjected to neuronal differentiation induction. Consequently, the resulting pre‐mature 3D neural spheroids are injected into severely contused spinal cords in rats. The DSCM microgels effectively protected the transplanted cells from shear damage and the inflammatory microenvironment at the lesion site. The survival and accommodation of the pre‐differentiated NSPC@DSCM‐MGs actively contributed to axonal regeneration, inhibiting glial scar formation, as well as remodeling the microenvironment that facilitated endogenous cell recruitment and neuronal network reconstruction. Consequentially, administration of the neural spheroids led to maintenance of spinal cord integrity, and significantly improved hindlimb locomotor function. This biomaterial‐based transplantation strategy has shown unique assets in cell protection and cell‐fate manipulation, which holds great promise in versatile biomedical applications.

Funder

Basic and Applied Basic Research Foundation of Guangdong Province

National Natural Science Foundation of China

Publisher

Wiley

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