Fan Na, Song Da, Ding Huairong, Yang Hongli, Xu Cong, Wang Chao, Yang Yikun
Zhong Yuan Academy of Biological Medicine, Liaocheng People's Hospital, Liaocheng, Shandong, 252000, China.
Department of Orthopedics, Liaocheng People's Hospital, Liaocheng, Shandong 252000, China; Department of Orthopedics, Beijing Jishuitan Hospital Liaocheng Hospital, Liaocheng, Shandong 252000, China.
Acta Biomater. 2025 Mar 1;194:122-139. doi: 10.1016/j.actbio.2025.01.025. Epub 2025 Jan 15.
Peripheral nerve injury (PNI) as a common clinical issue that presents significant challenges for repair. Factors such as donor site morbidity from autologous transplantation, slow recovery of long-distance nerve damage, and deficiencies in local cytokines and extracellular matrix contribute to the complexity of effective PNI treatment. It is extremely urgent to develop functional nerve guidance conduits (NGCs) as substitutes for nerve autografts. We fabricate an aligned topological scaffold by combining the E-jet 3D printing and electrospinning to exert synergistic topographical cue for peripheral nerve regeneration. To address the limitation of NGCs with hollow lumens in repairing long-distance nerve defects, we modified the internal microenvironment by filling the lumen with umbilical cord-derived decellularized extracellular matrix (dECM) hydrogels and extracellular vesicles (EVs). This approach led to the development of a functional HE-NGC. Herein, the HE-NGCs provided obvious guidance and proliferation to SCs and PC12 in vitro due to the sustained-release effect of dECM hydrogels and the outstanding proliferation-promoting role of EVs. The HE-NGCs was surgically implanted in vivo to bridge 12-mm gap sciatic nerve defect in rats and it had a satisfactory effect in reestablishment of the sciatic nerve, including the recovery of motor functions and the myelination. Further studies revealed that HE-NGCs might promoted axon growth by activating the PI3K/Akt/mTOR and inhibiting the MAPK signaling pathways. These findings indicate that HE-NGCs effectively promote nerve regeneration, offering a promising strategy for applications in peripheral nerve repair. STATEMENT OF SIGNIFICANCE: This study introduces an approach using an E-jet 3D printing system to fabricate three-dimensional aligned scaffolds with varying gap sizes, optimizing the structure for Schwann cells migration. We present, for the first time, a comprehensive investigation into the effects of EVs derived from umbilical cord mesenchymal stem cells on Schwann cells behavior. By leveraging the natural extracellular matrix (ECM), we significantly enhanced the efficacy and longevity of EVs encapsulated within a dECM hydrogel. Our provided strategy involves utilizing EVs to support nerve cell migration and proliferation along aligned NGCs. As the dECM hydrogel degrades, EVs are gradually released, facilitating the deposition of new ECM and enabling the repair of nerve defects up to 12-mm in length.
周围神经损伤(PNI)是一个常见的临床问题,对修复提出了重大挑战。自体移植供区发病、长距离神经损伤恢复缓慢以及局部细胞因子和细胞外基质的缺乏等因素,导致有效的PNI治疗变得复杂。开发功能性神经引导导管(NGC)作为神经自体移植物的替代品迫在眉睫。我们通过结合电子束3D打印和静电纺丝制造了一种排列有序的拓扑支架,为周围神经再生发挥协同地形学线索作用。为了解决中空管腔的NGC在修复长距离神经缺损方面的局限性,我们通过用脐带来源的脱细胞细胞外基质(dECM)水凝胶和细胞外囊泡(EV)填充管腔来改善内部微环境。这种方法促成了功能性HE-NGC的开发。在此,由于dECM水凝胶的缓释作用和EV出色的促增殖作用,HE-NGC在体外对雪旺细胞(SC)和嗜铬细胞瘤细胞(PC12)具有明显的引导和增殖作用。将HE-NGC手术植入大鼠体内以桥接12毫米间隙的坐骨神经缺损,其在坐骨神经重建方面具有令人满意的效果,包括运动功能的恢复和髓鞘形成。进一步研究表明,HE-NGC可能通过激活PI3K/Akt/mTOR并抑制MAPK信号通路促进轴突生长。这些发现表明,HE-NGC有效地促进神经再生,为周围神经修复应用提供了一种有前景的策略。重要性声明:本研究介绍了一种使用电子束3D打印系统制造具有不同间隙尺寸的三维排列支架的方法,优化结构以促进雪旺细胞迁移。我们首次全面研究了脐带间充质干细胞来源的EV对雪旺细胞行为的影响。通过利用天然细胞外基质(ECM),我们显著提高了包裹在dECM水凝胶中的EV的功效和寿命。我们提供的策略包括利用EV支持神经细胞沿着排列的NGC迁移和增殖。随着dECM水凝胶降解