浓缩生长因子对家兔面神经康复的作用及机制。

IF 5.8 3区 医学 Q1 MATERIALS SCIENCE, BIOMATERIALS Biomaterials Science Pub Date : 2025-01-20 DOI:10.1039/D4BM01454E
Xiaochen Yang, Zhengyao Hou, Kexin Wang, Jieying Li, Wei Shang, Lin Wang and Kai Song
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引用次数: 0

摘要

面神经损伤后的加速康复提出了独特的临床挑战。本研究评价了浓缩生长因子(CGF)对家兔面神经恢复模型和RSC96雪旺细胞的治疗作用。对CGF膜(CGF membrane, CGFM)进行表征,发现其具有嵌入血小板的三维纤维蛋白网络,并检测了具有代表性的生长因子TGF-β1、PDGF-BB、IGF-1、bFGF和VEGF。在体内,与Crush组相比,Crush + CGFM组表现出增强的轴突和髓鞘再生,增加的雪旺细胞增殖,改善的面神经功能。在体外,与对照组相比,CGF处理显著促进了RSC96细胞的增殖和迁移,促进了NG108-15细胞的轴突伸长。机制上,CGF处理导致PDGFRβ磷酸化显著增加。用SU16f抑制该途径可降低雪旺细胞活性,阻碍整体神经康复。这些结果强调了CGF通过促进轴突和髓鞘再生以及增强雪旺细胞生物活性来加速神经修复的潜力,其中PDGFRβ通路发挥了关键的调节作用。本研究强调了CGF作为一种有希望改善面神经康复的治疗策略。
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Efficacy and mechanisms of concentrated growth factor on facial nerve rehabilitation in a rabbit model†

Accelerated rehabilitation following facial nerve injury presents unique clinical challenges. This study evaluates the therapeutic effects of concentrated growth factor (CGF) on facial nerve recovery in a rabbit model and on RSC96 Schwann cells. Characterization of the CGF membrane (CGFM) revealed a three-dimensional fibrin network with embedded platelets, and representative growth factors, including TGF-β1, PDGF-BB, IGF-1, bFGF, and VEGF, were detected. In vivo, the Crush + CGFM group exhibited enhanced axon and myelin regeneration, increased Schwann cell proliferation, and improved facial nerve function compared to the Crush group. In vitro, CGF treatment significantly promoted the proliferation and migration of RSC96 cells and facilitated axon elongation in NG108-15 cells compared to controls. Mechanistically, CGF treatment led to a significant increase in PDGFRβ phosphorylation. Inhibition of this pathway with SU16f decreased Schwann cell activity and hindered overall nerve rehabilitation. These results underscore CGF's potential to accelerate nerve repair by promoting axon and myelin regeneration and enhancing Schwann cell biological activity, with the PDGFRβ pathway playing a crucial regulatory role. This study highlights CGF as a promising therapeutic strategy for improving facial nerve rehabilitation.

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来源期刊
Biomaterials Science
Biomaterials Science MATERIALS SCIENCE, BIOMATERIALS-
CiteScore
11.50
自引率
4.50%
发文量
556
期刊介绍: Biomaterials Science is an international high impact journal exploring the science of biomaterials and their translation towards clinical use. Its scope encompasses new concepts in biomaterials design, studies into the interaction of biomaterials with the body, and the use of materials to answer fundamental biological questions.
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Harnessing nanoparticles and bioorthogonal chemistries for improving precision of nuclear medicine. Back cover Acid responsive molybdenum (Mo)-based nanoparticles inhibit the cGAS-STING signaling pathway for sepsis therapy. Electrical hydrogel: electrophysiological-based strategy for wound healing. Wear-resistant antibacterial UHMWPE-based implant materials obtained by radiation crosslinking.
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