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

再生(生物学) 脊髓 纤维蛋白 自愈水凝胶 磁场 生物医学工程 材料科学 细胞生物学 解剖 生物 医学 免疫学 精神科 高分子化学 量子力学 物理
作者
Chun-Yi Yang,Zhe Meng,Kaiyuan Yang,Zhijun He,Zhaohui Hou,Jia Yang,Jingsong Lu,Zheng Cao,Shuhui Yang,Yi Chai,He Zhao,Lingyun Zhao,Xiaodan Sun,Guihuai Wang,Xiumei Wang
出处
期刊:Biofabrication [IOP Publishing]
卷期号:15 (3): 035022-035022 被引量:12
标识
DOI:10.1088/1758-5090/acdbec
摘要

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 −1 . It is found that the MNPs under the MF could enhance cell proliferation and neurotrophin secretion of PC12 cells in vitro . 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.
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