Bin Wang, Bin Gu, Xue Hu, Jinbo Liu, Jian Lv, Peifeng Jiao, Wenjing Guo, Gensheng Wu, Zhonghua Ni, Gutian Zhao
Biodegradable nerve guidance conduits (NGCs) are compelling alternatives to autografts for repairing severe peripheral nerve injuries. However, a major obstacle in developing effective NGCs is their structural and functional mismatch with repair and regeneration, leading to inadequate neuronal guidance and improper axon dispersion. Herein, we report a biomimetic NGC that replicates the multiscale architecture of native nerves. It features aligned microchannels of clinically relevant lengths and nanotextured walls. The biomimetic topology is fabricated in poly(l-lactic acid) (PLLA) via an integrated forming technique that exploits strain-induced crystallization to control crack propagation. Comprehensive in vitro experiments confirm the exceptional thermal stability, mechanical robustness, and structural integrity of PLLA NGCs. Importantly, the synergistic micro- and nanoscale alignment is critical for directing axon growth and minimizing dispersion. By elucidating this novel fabrication mechanism and demonstrating dual-scale bioinspired architecture, our work establishes a new platform with the potential for large-gap peripheral nerve repair.