通过磁响应同轴纤维输送 TGFβ3 可降低体外脊髓星形胶质细胞的反应性

IF 4.3 3区 材料科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC ACS Applied Electronic Materials Pub Date : 2024-06-27 DOI:10.1002/adbi.202300531
Jessica L. Funnell, Jasper Fougere, Diana Zahn, Silvio Dutz, Ryan J. Gilbert
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引用次数: 0

摘要

脊髓损伤(SCI)会压迫脊髓,杀死损伤部位的神经元和胶质细胞,导致长期炎症和疤痕,从而阻碍再生。星形胶质细胞是脊髓中的主要胶质细胞,在脊髓损伤后会发生反应,导致不良后果。抗炎细胞因子转化生长因子β3(TGFβ3)已被证明可减轻星形胶质细胞的反应性;然而,长期暴露于TGFβ3对反应性星形胶质细胞表型的影响尚未得到探讨。本研究探讨了磁性核壳电纺纤维是否可用于利用外加磁场改变 TGFβ3 的释放率,最终根据 SCI 的严重程度应用定制的药物递送。在外壳中加入超顺磁性氧化铁纳米粒子(SPIONs),在芯溶液中加入TGFβ3,然后进行同轴电纺,就制成了磁性芯壳纤维。磁场刺激使纤维中TGFβ3的释放率在7天内提高了25%,释放的TGFβ3使关键星形胶质细胞反应性标志物的基因表达减少了至少两倍。这是首次通过磁性纤维磁性传递生物活性蛋白,并评估持续释放的 TGFβ3 对反应性星形胶质细胞表型的影响的研究。
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Delivery of TGFβ3 from Magnetically Responsive Coaxial Fibers Reduces Spinal Cord Astrocyte Reactivity In Vitro

A spinal cord injury (SCI) compresses the spinal cord, killing neurons and glia at the injury site and resulting in prolonged inflammation and scarring that prevents regeneration. Astrocytes, the main glia in the spinal cord, become reactive following SCI and contribute to adverse outcomes. The anti-inflammatory cytokine transforming growth factor beta 3 (TGFβ3) has been shown to mitigate astrocyte reactivity; however, the effects of prolonged TGFβ3 exposure on reactive astrocyte phenotype have not yet been explored. This study investigates whether magnetic core-shell electrospun fibers can be used to alter the release rate of TGFβ3 using externally applied magnetic fields, with the eventual application of tailored drug delivery based on SCI severity. Magnetic core-shell fibers are fabricated by incorporating superparamagnetic iron oxide nanoparticles (SPIONs) into the shell and TGFβ3 into the core solution for coaxial electrospinning. Magnetic field stimulation increased the release rate of TGFβ3 from the fibers by 25% over 7 days and released TGFβ3 reduced gene expression of key astrocyte reactivity markers by at least twofold. This is the first study to magnetically deliver bioactive proteins from magnetic fibers and to assess the effect of sustained release of TGFβ3 on reactive astrocyte phenotype.

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CiteScore
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4.30%
发文量
567
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