Nanofibrous Guidance Conduits with Multiple Gradient Cues for Spinal Cord Repair

X Xindan Zhang (Department of Emergency Medicine, State Key Laboratory of Biotherapy, West China Hospital, Sichuan University) W Wen Guo J Jiangang Zhang F Feng Xiong (State Key Laboratory of Wheat Improvement, College of Life Science, Shandong Agricultural University) Z Zehao Yao J Jiaqi Lin S Shuyun Hu (Beijing Laboratory of Biomedical Materials Beijing University of Chemical Technology Beijing 100029 P. R. China) Q Qingsheng Liu F Feng Tian N Nana Zhao (State Key Laboratory of Chemical Resource Engineering, Key Lab of Biomedical Materials of Natural Macromolecules (Beijing University of Chemical Technology), Ministry of Education, Beijing Laboratory of Biomedical Materials, Beijing University of Chemical Technology, No. 15 Beisanhuan East Road, Beijing 100029, China) Y Yonglai Lu (Beijing Laboratory of Biomedical Materials Beijing University of Chemical Technology Beijing 100029 P. R. China) J Jiliang Zhai (Peking Union Medical College Hospital Chinese Academy of Medical Science and Peking Union Medical College Beijing 100730 P. R. China) Y Yunfeng Lu J Jiajia Xue

Abstract

Abstract Spinal cord injury (SCI) is a debilitating condition that leads to severe disabilities and imposes significant economic and social burdens. Current therapeutic strategies primarily focus on symptom management, with limited success in promoting full neurological recovery. In response to this challenge, the design of novel guidance conduits incorporating multiple gradient cues, inspired is reported by biological processes, to enhance spinal cord repair. These conduits are fabricated using electrospinning and masked coaxial electrospraying, a simple yet effective method that integrates topological, haptotactic, and chemotactic cues into a single scaffold. The synergy of these cues significantly promoted cell migration, neural stem cell differentiation into neurons, and axonal extension, resulting in substantial improvements in spinal cord regeneration and functional recovery in a rat model. Single‐nucleus RNA sequencing further demonstrated that the guidance conduit inhibited fibroblast proliferation, preserved microglial homeostasis, restored cellular proportions, and facilitated the regeneration of neuronal axons, dendrites, and synapses. This work presents an innovative, versatile platform for fabricating tissue scaffolds that integrate multiple gradient cues, offering a promising strategy for SCI treatment and broader tissue regeneration applications.

Article Details

Volume / Issue Vol. 37, Issue 28
Published July 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (14)

X

Xindan Zhang

Department of Emergency Medicine, State Key Laboratory of Biotherapy, West China Hospital, Sichuan University

W

Wen Guo

J

Jiangang Zhang

F

Feng Xiong

State Key Laboratory of Wheat Improvement, College of Life Science, Shandong Agricultural University

Z

Zehao Yao

J

Jiaqi Lin

S

Shuyun Hu

Beijing Laboratory of Biomedical Materials Beijing University of Chemical Technology Beijing 100029 P. R. China

Q

Qingsheng Liu

F

Feng Tian

N

Nana Zhao

State Key Laboratory of Chemical Resource Engineering, Key Lab of Biomedical Materials of Natural Macromolecules (Beijing University of Chemical Technology), Ministry of Education, Beijing Laboratory of Biomedical Materials, Beijing University of Chemical Technology, No. 15 Beisanhuan East Road, Beijing 100029, China

Y

Yonglai Lu

Beijing Laboratory of Biomedical Materials Beijing University of Chemical Technology Beijing 100029 P. R. China

J

Jiliang Zhai

Peking Union Medical College Hospital Chinese Academy of Medical Science and Peking Union Medical College Beijing 100730 P. R. China

Y

Yunfeng Lu

J

Jiajia Xue