Mussel shell-derived pro-regenerative scaffold with conductive porous multi-scale-patterned microenvironment for spinal cord injury repair

Author:

Yin Wenming,Yang Chang,Liu Dan,Cha Shuhan,Cai Liu,Ye Genlan,Song XiaopingORCID,Zhang Jifeng,Qiu Xiaozhong

Abstract

Abstract It is well-established that multi-scale porous scaffolds can guide axonal growth and facilitate functional restoration after spinal cord injury (SCI). In this study, we developed a novel mussel shell-inspired conductive scaffold for SCI repair with ease of production, multi-scale porous structure, high flexibility, and excellent biocompatibility. By utilizing the reducing properties of polydopamine, non-conductive graphene oxide (GO) was converted into conductive reduced graphene oxide (rGO) and crosslinked in situ within the mussel shells. In vitro experiments confirmed that this multi-scale porous Shell@PDA-GO could serve as structural cues for enhancing cell adhesion, differentiation, and maturation, as well as promoting the electrophysiological development of hippocampal neurons. After transplantation at the injury sites, the Shell@PDA-GO provided a pro-regenerative microenvironment, promoting endogenous neurogenesis, triggering neovascularization, and relieving glial fibrosis formation. Interestingly, the Shell@PDA-GO could induce the release of endogenous growth factors (NGF and NT-3), resulting in the complete regeneration of nerve fibers at 12 weeks. This work provides a feasible strategy for the exploration of conductive multi-scale patterned scaffold to repair SCI.

Funder

National Natural Science Foundation of China

Medical Research Project of Guangdong Province

Key Research & Development Program of Guangzhou Regenerative Medicine and Health Guangdong Laboratory

Shenzhen Fundamental Research Key Project

Science and Technology Planning Project of Guangdong Province

Guangdong Basic and Applied Basic Research Foundation

Publisher

IOP Publishing

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