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外磁场通过磁响应排列纤维蛋白水凝胶非侵入性地刺激大鼠脊髓再生。

External magnetic field non-invasively stimulates spinal cord regeneration in rat via a magnetic-responsive aligned fibrin hydrogel.

机构信息

State Key Laboratory of New Ceramics and Fine Processing, Key Laboratory of Advanced Materials of Ministry of Education, School of Materials Science and Engineering, Tsinghua University, Beijing 100084, People's Republic of China.

Department of Neurosurgery, Beijing Tsinghua Changgung Hospital, School of Clinical Medicine, Tsinghua University, Beijing 102218, People's Republic of China.

出版信息

Biofabrication. 2023 Jun 16;15(3). doi: 10.1088/1758-5090/acdbec.

Abstract

Magnetic stimulation is becoming an attractive approach to promote neuroprotection, neurogenesis, axonal regeneration, and functional recovery in both the central nervous system and peripheral nervous system disorders owing to its painless, non-invasive, and deep penetration characteristics. Here, a magnetic-responsive aligned fibrin hydrogel (MAFG) was developed to import and amplify the extrinsic magnetic field (MF) locally to stimulate spinal cord regeneration in combination with the beneficial topographical and biochemical cues of aligned fibrin hydrogel (AFG). Magnetic nanoparticles (MNPs) were embedded uniformly in AFG during electrospinning to endow it magnetic-responsive feature, with saturation magnetization of 21.79 emu g. It is found that the MNPs under the MF could enhance cell proliferation and neurotrophin secretion of PC12 cells. The MAFG that was implanted into a rat with 2 mm complete transected spinal cord injury (SCI) effectively enhanced neural regeneration and angiogenesis in the lesion area, thus leading to significant recovery of motor function under the MF (MAFG@MF). This study suggests a new multimodal tissue engineering strategy based on multifunctional biomaterials that deliver multimodal regulatory signals with the integration of aligned topography, biochemical cues, and extrinsic MF stimulation for spinal cord regeneration following severe SCI.

摘要

由于其无痛、非侵入性和深穿透的特点,磁刺激正成为一种有吸引力的方法,可促进中枢神经系统和周围神经系统疾病的神经保护、神经发生、轴突再生和功能恢复。在这里,开发了一种磁响应性取向纤维蛋白水凝胶(MAFG),以将外磁场(MF)局部导入和放大,结合取向纤维蛋白水凝胶(AFG)的有益的地形和生化线索来刺激脊髓再生。在静电纺丝过程中,将磁性纳米颗粒(MNPs)均匀地嵌入 AFG 中,赋予其磁响应特性,饱和磁化强度为 21.79 emu g。结果发现,MF 下的 MNPs 可以增强 PC12 细胞的增殖和神经营养因子的分泌。植入完全横断 2mm 脊髓损伤(SCI)大鼠的 MAFG 可有效促进损伤区域的神经再生和血管生成,从而在 MF 下(MAFG@MF)显著恢复运动功能。这项研究提出了一种新的基于多功能生物材料的多模态组织工程策略,该策略可提供多种调节信号,整合了取向形貌、生化线索和外磁场刺激,用于严重 SCI 后的脊髓再生。

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