Biomimetic Dual‐Network Collagen Fibers with Porous and Mechanical Cues Reconstruct Neural Stem Cell Niche via AKT/YAP Mechanotransduction after Spinal Cord Injury

Author:

Zhao Haitao12,Xiong Tiandi23,Chu Yun23,Hao Wangping2,Zhao Tongtong23,Sun Xinyue23,Zhuang Yan23,Chen Bing4,Zhao Yannan4,Wang Jun1,Chen Yanyan23,Dai Jianwu234ORCID

Affiliation:

1. School of Biomedical Sciences and Engineering South China University of Technology, Guangzhou International Campus Guangzhou 511442 China

2. Key Laboratory for Nano‐Bio Interface Research Division of Nanobiomedicine Suzhou Institute of Nano‐Tech and Nano‐Bionics Chinese Academy of Sciences Suzhou 215123 China

3. School of Nano Technology and Nano Bionics University of Science and Technology of China Hefei 230026 China

4. State Key Laboratory of Molecular Development Biology Institute of Genetics and Developmental Biology Chinese Academy of Sciences Beijing 100101 China

Abstract

AbstractTissue engineering scaffolds can mediate the maneuverability of neural stem cell (NSC) niche to influence NSC behavior, such as cell self‐renewal, proliferation, and differentiation direction, showing the promising application in spinal cord injury (SCI) repair. Here, dual‐network porous collagen fibers (PCFS) are developed as neurogenesis scaffolds by employing biomimetic plasma ammonia oxidase catalysis and conventional amidation cross‐linking. Following optimizing the mechanical parameters of PCFS, the well‐matched Young's modulus and physiological dynamic adaptability of PCFS (4.0 wt%) have been identified as a neurogenetic exciter after SCI. Remarkably, porous topographies and curving wall‐like protrusions are generated on the surface of PCFS by simple and non‐toxic CO2 bubble‐water replacement. As expected, PCFS with porous and matched mechanical properties can considerably activate the cadherin receptor of NSCs and induce a series of serine‐threonine kinase/yes‐associated protein mechanotransduction signal pathways, encouraging cellular orientation, neuron differentiation, and adhesion. In SCI rats, implanted PCFS with matched mechanical properties further integrated into the injured spinal cords, inhibited the inflammatory progression and decreased glial and fibrous scar formation. Wall‐like protrusions of PCFS drive multiple neuron subtypes formation and even functional neural circuits, suggesting a viable therapeutic strategy for nerve regeneration and functional recovery after SCI.

Funder

National Basic Research Program of China

National Natural Science Foundation of China

Publisher

Wiley

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