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同轴 3D 打印分层结构水凝胶支架,用于按需修复脊髓损伤。

Coaxial 3D printing of hierarchical structured hydrogel scaffolds for on-demand repair of spinal cord injury.

机构信息

School of Nano-Tech and Nano-Bionics, University of Science and Technology of China, Hefei 230026, China; CAS Key Laboratory of Nano-Bio Interface, Division of Nanobiomedicine, Suzhou Institute of Nano-Tech and Nano-Bionics, Chinese Academy of Sciences, Suzhou 215123, China.

The Second People's Hospital of Foshan, Affiliated Foshan Hospital of Southern Medical University, Foshan, Guangdong Province, China.

出版信息

Acta Biomater. 2023 Sep 15;168:400-415. doi: 10.1016/j.actbio.2023.07.020. Epub 2023 Jul 20.

Abstract

After spinal cord injury (SCI), endogenous neural stem cells (NSCs) near the damaged site are activated, but few NSCs migrate to the injury epicenter and differentiate into neurons because of the harsh microenvironment. It has demonstrated that implantation of hydrogel scaffold loaded with multiple cues can enhance the function of endogenous NSCs. However, programming different cues on request remains a great challenge. Herein, a time-programmed linear hierarchical structure scaffold is developed for spinal cord injury recovery. The scaffold is obtained through coaxial 3D printing by encapsulating a dual-network hydrogel (composed of hyaluronic acid derivatives and N-cadherin modified sodium alginate, inner layer) into a temperature responsive gelatin/cellulose nanofiber hydrogel (Gel/CNF, outer layer). The reactive species scavenger, metalloporphyrin, loaded in the outer layer is released rapidly by the degradation of Gel/CNF, inhibiting the initial oxidative stress at lesion site to protect endogenous NSCs; while the inner hydrogel with appropriate mechanical support, linear topology structure and bioactive cues facilitates the migration and neuronal differentiation of NSCs at the later stage of SCI treatment, thereby promoting motor functional restorations in SCI rats. This study offers an innovative strategy for fabrication of multifunctional nerve regeneration scaffold, which has potential for clinical treatment of SCI. STATEMENT OF SIGNIFICANCE: Two major challenges facing the recovery from spinal cord injury (SCI) are the low viability of endogenous neural stem cells (NSCs) within the damaged microenvironment, as well as the difficulty of neuronal regeneration at the injured site. To address these issues, a spinal cord-like coaxial scaffold was fabricated with free radical scavenging agent metalloporphyrin Mn (III) tetrakis (4-benzoic acid) porphyrin and chemokine N-cadherin. The scaffold was constructed by 3D bioprinting for time-programmed protection and modulation of NSCs to effectively repair SCI. This 3D coaxially bioprinted biomimetic construct enables multi-factor on-demand repair and may be a promising therapeutic strategy for SCI.

摘要

脊髓损伤(SCI)后,损伤部位附近的内源性神经干细胞(NSC)被激活,但由于微环境恶劣,很少有 NSC 迁移到损伤中心并分化为神经元。研究表明,植入负载多种线索的水凝胶支架可以增强内源性 NSC 的功能。然而,按需编程不同的线索仍然是一个巨大的挑战。本文开发了一种用于脊髓损伤恢复的时间编程线性分级结构支架。该支架通过同轴 3D 打印获得,将双网络水凝胶(由透明质酸衍生物和 N-钙粘蛋白修饰的海藻酸钠组成,内层)包封在温度响应的明胶/纤维素纳米纤维水凝胶(Gel/CNF,外层)中。外层负载的活性物质清除剂金属卟啉通过 Gel/CNF 的降解迅速释放,抑制损伤部位的初始氧化应激,保护内源性 NSC;而具有适当机械支撑、线性拓扑结构和生物活性线索的内层水凝胶有利于 SCI 治疗后期 NSC 的迁移和神经元分化,从而促进 SCI 大鼠的运动功能恢复。本研究为多功能神经再生支架的制备提供了一种创新策略,有望为 SCI 的临床治疗提供新方法。

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