Human Adipose Tissue Lysate‐Based Hydrogel for Lasting Immunomodulation to Effectively Improve Spinal Cord Injury Repair

Author:

Wang Yu12345,Chai Ying‐Qian12,Cai Jie6,Huang Shan‐Shan12,Wang Ye‐Feng123,Yuan Shan‐Shan12,Wang Ji‐Long127,Shi Ke‐Qing12,Deng Jun‐Jie127ORCID

Affiliation:

1. Joint Centre of Translational Medicine The First Affiliated Hospital of Wenzhou Medical University Wenzhou Zhejiang 325000 China

2. Joint Centre of Translational Medicine Wenzhou Institute University of Chinese Academy of Sciences Wenzhou Zhejiang 325000 China

3. Department of Orthopedics (Spine Surgery) The First Affiliated Hospital of Wenzhou Medical University Wenzhou Zhejiang 325000 China

4. Key Laboratory of Intelligent Treatment and Life Support for Critical Diseases of Zhejiang Province Wenzhou Zhejiang 325000 China

5. Zhejiang Engineering Research Center for Hospital Emergency and Process Digitization Wenzhou Zhejiang 325000 China

6. Department of Orthopedics Xiaoshan Hospital Affiliated to Wenzhou Medical University Hangzhou Zhejiang 310000 China

7. Zhejiang Engineering Research Center for Tissue Repair Materials Wenzhou Institute University of Chinese Academy of Sciences Wenzhou Zhejiang 325000 China

Abstract

AbstractThe long‐term inflammatory microenvironment is one of the main obstacles to inhibit acute spinal cord injury (SCI) repair. The natural adipose tissue‐derived extracellular matrix hydrogel shows effective anti‐inflammatory regulation because of its unique protein components. However, the rapid degradation rate and removal of functional proteins during the decellularization process impair the lasting anti‐inflammation function of the adipose tissue‐derived hydrogel. To address this problem, adipose tissue lysate provides an effective way for SCI repair due to its abundance of anti‐inflammatory and nerve regeneration‐related proteins. Thereby, human adipose tissue lysate‐based hydrogel (HATLH) with an appropriate degradation rate is developed, which aims to in situ long‐term recruit and induce anti‐inflammatory M2 macrophages through sustainedly released proteins. HATLH can recruit and polarize M2 macrophages while inhibiting pro‐inflammatory M1 macrophages regardless of human or mouse‐originated. The axonal growth of neuronal cells also can be effectively improved by HATLH and HATLH‐induced M2 macrophages. In vivo experiments reveal that HATLH promotes endogenous M2 macrophages infiltration in large numbers (3.5 × 105/100 µL hydrogel) and maintains a long duration for over a month. In a mouse SCI model, HATLH significantly inhibits local inflammatory response, improves neuron and oligodendrocyte differentiation, enhances axonal growth and remyelination, as well as accelerates neurological function restoration.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Zhejiang Province

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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