Key Laboratory of Neuroregeneration of Jiangsu and Ministry of Education and Co-innovation Center of Neuroregeneration, Nantong University, Nantong, China; Clinical Medical Research Center, The Third Affiliated Hospital of Soochow University, Changzhou, China.
Key Laboratory of Neuroregeneration of Jiangsu and Ministry of Education and Co-innovation Center of Neuroregeneration, Nantong University, Nantong, China.
Acta Biomater. 2021 Oct 15;134:190-203. doi: 10.1016/j.actbio.2021.07.026. Epub 2021 Jul 18.
Our previous studies have shown that extracellular vesicles from skin-derived precursor Schwann cells (SKP-SC-EVs) promote neurite outgrowth of sensory and motor neurons in vitro. This study was aimed at generating an artificial nerve graft incorporated with SKP-SC-EVs to examine in vivo effects of SKP-SC-EVs on peripheral nerve regeneration. Here SKP-SC-EVs were isolated and then identified by morphological observation and phenotypic marker expression. Following co-culture with SCs or motoneurons, SKP-SC-EVs were internalized, showing the capability to enhance SC viability or motoneuron neurite outgrowth. In vitro, SKP-SC-EVs released from Matrigel could maintain cellular uptake property and neural activity. Nerve grafts were developed by incorporating Matrigel-encapsulated SKP-SC-EVs into silicone conduits. Functional evaluation, histological investigation, and morphometric analysis were performed to compare the nerve regenerative outcome after bridging the 10-mm long sciatic nerve defect in rats with our developed nerve grafts, silicone conduits (filled with vehicle), and autografts respectively. Our developed nerve grafts significantly accelerated the recovery of motor, sensory, and electrophysiological functions of rats, facilitated outgrowth and myelination of regenerated axons, and alleviated denervation-induced atrophy of target muscles. Collectively, our findings suggested that incorporation of SKP-SC-EVs into nerve grafts might represent a promising paradigm for peripheral nerve injury repair. STATEMENT OF SIGNIFICANCE: Nerve grafts have been progressively developed to meet the increasing requirements for peripheral nerve injury repair. Here we reported a design of nerve grafts featured by incorporation of Matrigel-encapsulated extracellular vesicles from skin-derived precursor Schwann cells (SKP-SC-EVs), because SKP-SC-EVs were found to possess in vitro neural activity, thus raising the possibility of cell-free therapy. Our developed nerve grafts yielded the satisfactory outcome of nerve grafting in rats with a 10-mm long sciatic nerve defect, as evaluated by functional and morphological assessments. The promoting effects of SKP-SC-EVs-incorporating nerve grafts on peripheral nerve regeneration might benefit from in vivo biological cues afforded by SKP-SC-EVs, which had been released from Matrigel and then internalized by residual neural cells in sciatic nerve stumps.
我们之前的研究表明,来源于皮肤前体细胞 Schwann 细胞(SKP-SC-EVs)的细胞外囊泡在体外促进感觉神经元和运动神经元的轴突生长。本研究旨在生成一种内含 SKP-SC-EVs 的人工神经移植物,以研究 SKP-SC-EVs 对周围神经再生的体内作用。在此,通过形态观察和表型标志物表达对 SKP-SC-EVs 进行分离和鉴定。在与施万细胞或运动神经元共培养后,SKP-SC-EVs 被内化,显示出增强施万细胞活力或运动神经元轴突生长的能力。在体外,从 Matrigel 中释放的 SKP-SC-EVs 可以保持细胞摄取特性和神经活性。通过将 Matrigel 包封的 SKP-SC-EVs 纳入硅胶导管来开发神经移植物。通过我们开发的神经移植物、硅胶导管(填充有载体)和自体移植物分别桥接大鼠 10mm 长坐骨神经缺损,进行功能评估、组织学研究和形态计量学分析,以比较神经再生结果。我们开发的神经移植物显著促进了大鼠运动、感觉和电生理功能的恢复,促进了再生轴突的生长和髓鞘形成,并减轻了失神经诱导的靶肌肉萎缩。总之,我们的研究结果表明,将 SKP-SC-EVs 纳入神经移植物可能代表一种有前途的周围神经损伤修复方法。
神经移植物不断发展,以满足对外周神经损伤修复日益增长的需求。在这里,我们报告了一种神经移植物的设计,其特点是包含来源于皮肤前体细胞 Schwann 细胞(SKP-SC-EVs)的 Matrigel 包封细胞外囊泡,因为 SKP-SC-EVs 具有体外神经活性,从而为无细胞治疗提供了可能性。我们开发的神经移植物在大鼠 10mm 长坐骨神经缺损的神经移植中产生了满意的结果,通过功能和形态评估进行评估。SKP-SC-EVs 包埋神经移植物对周围神经再生的促进作用可能受益于 SKP-SC-EVs 提供的体内生物学线索,这些线索已从 Matrigel 中释放,并被坐骨神经残端中的残留神经细胞内化。