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揭示SKP-SCs介导的组织工程增强神经再生的分子蓝图。

Unveiling the molecular blueprint of SKP-SCs-mediated tissue engineering-enhanced neuroregeneration.

作者信息

Zhu Hui, Wang Ying, Xu Siyuan, Song Yunjian, Li Yifan, Wang Yiting, Sun Qiuwen, Tong Muyuan, Huang Tianyi, Pan Yulin, Wang Hongkui, Xu Xi, Xue Chengbin

机构信息

Research Center of Clinical Medicine, Affiliated Hospital of Nantong University, Key Laboratory of Neuroregeneration of Jiangsu and Ministry of Education, Co-innovation Center of Neuroregeneration, NMPA Key Laboratory for Research and Evaluation of Tissue Engineering Technology Products, Nantong University, Nantong, JS, 226001, P. R. China.

Medical School of Nantong University, Nantong, JS, 226001, P.R. China.

出版信息

J Nanobiotechnology. 2024 Dec 26;22(1):796. doi: 10.1186/s12951-024-03076-1.

Abstract

Peripheral nerve injury poses a significant challenge to the nervous system's regenerative capacity. We previously described a novel approach to construct a chitosan/silk fibroin nerve graft with skin-derived precursor-induced Schwann cells (SKP-SCs). This graft has been shown to promote sciatic nerve regeneration and functional restoration to a level comparable to that achieved by autologous nerve grafts, as evidenced by behavioral, histological, and electrophysiological assessments. However, the underlying molecular mechanisms based on SKP-SCs mediated tissue engineering-aid regeneration remain elusive. In the present work, we systematically identified gene modules associated with the differentiation of SKPs into SCs by employing weighted gene co-expression network analysis (WGCNA). By integrating transcriptomic data from the regenerated nerve segment, we constructed a network that delineated the molecular signatures of TENG aid neuroregeneration. Subsequent quantitative PCR (qPCR) validation was performed to substantiate the WGCNA findings. Our WGCNA approach revealed a robust molecular landscape, highlighting hub genes pivotal for tissue engineering-aid regeneration. Notably, the upregulation of specific genes was observed to coincide with the acquisition of SC characteristics. The qPCR validation confirmed the expression patterns of these genes, underscoring their role in promoting neuroregeneration. The current study harnesses the power of WGCNA to elucidate the molecular blueprint governing tissue engineering-aid regeneration. The identified gene modules and validated targets offer novel insights into the cellular and molecular underpinnings of tissue engineering-augmented neuroregeneration. These findings pave the way for developing targeted therapeutics and advanced tissue engineering grafts to enhance peripheral nerve repair.

摘要

周围神经损伤对神经系统的再生能力构成了重大挑战。我们之前描述了一种构建壳聚糖/丝素蛋白神经移植物的新方法,该移植物含有皮肤来源前体细胞诱导的雪旺细胞(SKP-SCs)。行为学、组织学和电生理学评估表明,这种移植物已被证明能促进坐骨神经再生和功能恢复,达到与自体神经移植物相当的水平。然而,基于SKP-SCs介导的组织工程辅助再生的潜在分子机制仍不清楚。在本研究中,我们通过加权基因共表达网络分析(WGCNA)系统地鉴定了与SKP向雪旺细胞分化相关的基因模块。通过整合再生神经节段的转录组数据,我们构建了一个描绘组织工程辅助神经再生分子特征的网络。随后进行了定量PCR(qPCR)验证以证实WGCNA的研究结果。我们的WGCNA方法揭示了一个强大的分子图谱,突出了对组织工程辅助再生至关重要的枢纽基因。值得注意的是,观察到特定基因的上调与雪旺细胞特征的获得相一致。qPCR验证证实了这些基因的表达模式,强调了它们在促进神经再生中的作用。当前的研究利用WGCNA的力量来阐明组织工程辅助再生的分子蓝图。所鉴定的基因模块和验证的靶点为组织工程增强神经再生的细胞和分子基础提供了新的见解。这些发现为开发靶向治疗方法和先进的组织工程移植物以增强周围神经修复铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/841f/11670488/9547d5e8e49d/12951_2024_3076_Fig1_HTML.jpg

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