生物活性MgO/MgCO3/聚己内酯多梯度纤维通过调节雪旺细胞功能和激活无翼/整合酶-1信号通路促进周围神经再生

IF 17.2 1区 工程技术 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Zhi Yao, Ziyu Chen, Xuan He, Yihao Wei, Junyu Qian, Qiang Zong, Shuxian He, Lili Song, Lijia Ma, Sien Lin, Linlong Li, Lixiang Xue, Siu Ngor Fu, Jin Zhang, Ye Li, Deli Wang
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引用次数: 0

摘要

周围神经缺损是复杂的骨科挑战,临床干预效果有限。神经支架内的雪旺细胞增殖不足和功能障碍阻碍了神经修复的有效性。我们之前的研究表明,镁包封的生物活性水凝胶在修复神经缺损方面是有效的。然而,其镁离子的快速释放限制了其长期神经再生的功效,其分子机制尚不清楚。本研究利用静电纺丝技术制备MgO/MgCO3/聚己内酯(PCL)多梯度纳米纤维膜用于周围神经再生。我们的研究结果表明,通过仔细调整快速降解的MgO和缓慢降解的MgCO3的浓度或比例,以及电纺丝层数,多梯度支架在6周的时间内有效地维持了Mg2+的释放。此外,本研究还揭示了Mg2+诱导神经再生的机制,并证实Mg2+有效地促进了雪旺细胞的增殖、迁移和向修复表型的转变。通过转录组测序技术,研究发现无翼/整合酶-1 (Wingless/integrase-1, Wnt)信号通路是神经再生过程中影响雪旺细胞功能的重要机制。将MgO/MgCO3/PCL多梯度纳米纤维与3d工程PCL神经导管结合,植入大鼠10 mm的神经缺损后,术后12周显示出增强的轴突再生、髓鞘再生和肌肉组织神经再生。综上所述,本研究成功开发出具有可调节Mg2+释放特性的创新型多梯度长效MgO/MgCO3/PCL纳米纤维,强调了镁包埋生物材料治疗神经系统疾病的分子机制,为未来的临床应用奠定了坚实的理论基础。图形抽象
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Bioactive MgO/MgCO3/Polycaprolactone Multi-gradient Fibers Facilitate Peripheral Nerve Regeneration by Regulating Schwann Cell Function and Activating Wingless/Integrase-1 Signaling

Peripheral nerve defects present complex orthopedic challenges with limited efficacy of clinical interventions. The inadequate proliferation and dysfunction of Schwann cells within the nerve scaffold impede the effectiveness of nerve repair. Our previous studies suggested the effectiveness of a magnesium-encapsulated bioactive hydrogel in repairing nerve defects. However, its rapid release of magnesium ions limited its efficacy to long-term nerve regeneration, and its molecular mechanism remains unclear. This study utilized electrospinning technology to fabricate a MgO/MgCO3/polycaprolactone (PCL) multi-gradient nanofiber membrane for peripheral nerve regeneration. Our findings indicated that by carefully adjusting the concentration or proportion of rapidly degradable MgO and slowly degradable MgCO3, as well as the number of electrospun layers, the multi-gradient scaffold effectively sustained the release of Mg2+ over a period of 6 weeks. Additionally, this study provided insight into the mechanism of Mg2+-induced nerve regeneration and confirmed that Mg2+ effectively promoted Schwann cell proliferation, migration, and transition to a repair phenotype. By employing transcriptome sequencing technology, the study identified the Wingless/integrase-1 (Wnt) signaling pathway as a crucial mechanism influencing Schwann cell function during nerve regeneration. After implantation in 10 mm critically sized nerve defects in rats, the MgO/MgCO3/PCL multi-gradient nanofiber combined with a 3D-engineered PCL nerve conduit showed enhanced axonal regeneration, remyelination, and reinnervation of muscle tissue 12 weeks post-surgery. In conclusion, this study successfully developed an innovative multi-gradient long-acting MgO/MgCO3/PCL nanofiber with a tunable Mg2+ release property, which underscored the molecular mechanism of magnesium-encapsulated biomaterials in treating nervous system diseases and established a robust theoretical foundation for future clinical translation.

Graphical abstract

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来源期刊
CiteScore
18.70
自引率
11.20%
发文量
109
期刊介绍: Advanced Fiber Materials is a hybrid, peer-reviewed, international and interdisciplinary research journal which aims to publish the most important papers in fibers and fiber-related devices as well as their applications.Indexed by SCIE, EI, Scopus et al. Publishing on fiber or fiber-related materials, technology, engineering and application.
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