A N‐Cadherin Nano‐Antagonist Hydrogel Enhances Recovery From Spinal Cord Injury by Impeding Glial Scarring

Author:

Liu Qiuling1,Peng Sufen2,Tang Qiao2,Li Can2,Chen Jiayi2,Pang Peng3,Liu Wen4,Zhou Xiaoyan5,Cai Xianlong2,Lin Hongsheng1,Xue Wei26,Ji Xin2ORCID,Ji Zhisheng1

Affiliation:

1. Department of Orthopedics The First Affiliated Hospital Jinan University Guangzhou 510632 China

2. Key Laboratory of Biomaterials of Guangdong Higher Education Institutes Engineering Technology Research Center of Drug Carrier of Guangdong Department of Biomedical Engineering Jinan University Guangzhou 510632 China

3. The Second Affiliated Hospital Guangzhou Medical University Guangzhou 510260 China

4. School of Public Health Guangzhou Medical University Guangzhou 511436 China

5. Guangdong Academy of Sciences Guangzhou 510316 China

6. MOE Key Laboratory of Tumor Molecular Biology Jinan University Guangzhou 510632 China

Abstract

AbstractThe role of glial scars in the pathophysiology of spinal cord injury (SCI) is widely recognized, as they pose physical barriers against axonal regeneration and persistent chronic inflammation by releasing cytotoxic agents, thereby impeding nerve repair. Consequently, preventing glial scarring has emerged as an important therapeutic objective in SCI management. Following SCI, astrocytes undergo a phenotypic transition into scar‐forming astrocytes, which critically depends on the activation of inflammatory responses and the integrin‐N‐cadherin pathway. To explore improved SCI treatment, a nano‐antagonist hydrogel (Nano‐ant Gel), comprising N‐cadherin nano‐antagonists and a polyphenol hydrogel designed to inhibit glial scarring by mitigating inflammatory response and modulating astrocyte behavior, thereby facilitating spinal cord‐injury repair, is developed and characterized. The hydrogel exhibits notable anti‐inflammatory properties, specific calcium ion‐adsorption capabilities, and antagonistic effects against N‐cadherin, effectively impeding the formation and aggregation of scar‐forming astrocytes. Its efficacy is comprehensively assessed using a model of contusive SCI, with which it effectively inhibits glial scar formation and promotes axonal regeneration. Notably, the Nano‐ant Gel significantly improves the locomotor functions of mice with SCI, suggesting that it represents a promising approach for treating the condition.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Guangdong Province

China Postdoctoral Science Foundation

Basic and Applied Basic Research Foundation of Guangdong Province

Publisher

Wiley

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