Suppr超能文献

TET3促进人脐带间充质干细胞分化为少突胶质前体细胞以促进脊髓损伤恢复。

TET3-facilitated differentiation of human umbilical cord mesenchymal stem cells into oligodendrocyte precursor cells for spinal cord injury recovery.

作者信息

Zhang Yubo, Peng Zhibin, Guo Man, Wang Yangyang, Liu Jingsong, Liu Yishu, Li Mi, Wei Tianli, Li Pengfei, Zhao Yingwei, Wang Yansong

机构信息

Department of Orthopaedic Surgery, The First Affiliated Hospital of Harbin Medical University, 2075 Qunli Seventh Avenue, Daoli District, Harbin, 150001, Heilongjiang Province, China.

Department of Obstetrics, The Second Affiliated Hospital of Harbin Medical University, Harbin, 150000, Heilongjiang, China.

出版信息

J Transl Med. 2024 Dec 20;22(1):1118. doi: 10.1186/s12967-024-05929-7.

Abstract

BACKGROUND

Spinal cord injury (SCI) inflicts a severe burden on patients and lacks effective treatments. Owing to the poor regenerative capabilities of endogenous oligodendrocyte precursor cells (OPCs) following SCI, there is a growing interest in alternative sources, such as human umbilical cord mesenchymal stem cells (HUCMSCs). TET3 is a key DNA demethylase that plays an important role in neural differentiation, but its role in OPC formation is not well understood. This study aimed to explore the TET3-mediated one-step induction of HUCMSCs into OPCs.

METHODS

In vitro, HUCMSCs were induced into OPCs following TET3 overexpression. Changes of methylation and hydroxymethylation during differentiation were monitored, mechanisms involved in the TET3-driven HUCMSC differentiation into OPCs were identified by RNA sequencing. Methylation levels in NG2 and PDGFRA promoter region were detected using Bisulfite Polymerase Chain Reaction (BSP).In vivo, therapeutic effects of iOPCs were evaluated through a rat Allen's SCI model.

RESULTS

The in vitro analysis confirmed that TET3 enhances HUCMSC differentiation into OPCs, validitied by specific marker expression. The induced OPCs (iOPCs) exhibited methylation and hydroxymethylation patterns similar to native OPCs. BSP analysis demonstrated that TET3 overexpression significantly reduced CpG island methylation in the NG2 and PDGFRA promoter regions. RNA sequencing revealed that TET3 induces iOPCs to express a series of genes essential for OPC formation while inhibiting the signaling pathways that hinder OPC development. In a rat model of SCI, TET3-overexpressing HUCMSCs appear to have the potential to differentiate into iOPCs in vivo, suppressed secondary injury, and promoted functional recovery. The therapeutic effects of iOPCs on SCI were superior to those of standard mesenchymal stem cell treatments.

CONCLUSIONS

Our study demonstrated that TET3-mediated demethylation reshapes the methylation patterns of HUCMSCs, enabling their efficient one-step conversion into OPCs and significantly reducing the time required for cell preparation. This approach offers a potential strategy for early intervention in SCI. In an SCI model, TET3-induced OPCs contributed to spinal cord repair, providing novel insights into cell therapy strategies for SCI through the lens of methylation regulation.

摘要

背景

脊髓损伤(SCI)给患者带来沉重负担且缺乏有效治疗方法。由于脊髓损伤后内源性少突胶质前体细胞(OPCs)的再生能力较差,人们对替代来源的兴趣日益增加,例如人脐带间充质干细胞(HUCMSCs)。TET3是一种关键的DNA去甲基化酶,在神经分化中起重要作用,但其在OPC形成中的作用尚不清楚。本研究旨在探索TET3介导的将HUCMSCs一步诱导为OPCs的方法。

方法

在体外,TET3过表达后将HUCMSCs诱导为OPCs。监测分化过程中甲基化和羟甲基化的变化,通过RNA测序确定TET3驱动HUCMSCs分化为OPCs所涉及的机制。使用亚硫酸氢盐聚合酶链反应(BSP)检测NG2和PDGFRA启动子区域的甲基化水平。在体内,通过大鼠Allen's脊髓损伤模型评估诱导性OPCs(iOPCs)的治疗效果。

结果

体外分析证实TET3增强了HUCMSCs向OPCs的分化,这通过特异性标志物表达得以验证。诱导性OPCs(iOPCs)表现出与天然OPCs相似的甲基化和羟甲基化模式。BSP分析表明,TET3过表达显著降低了NG2和PDGFRA启动子区域的CpG岛甲基化。RNA测序显示,TET3诱导iOPCs表达一系列OPC形成所必需的基因,同时抑制阻碍OPC发育的信号通路。在大鼠脊髓损伤模型中,过表达TET3的HUCMSCs似乎有在体内分化为iOPCs的潜力,可抑制继发性损伤并促进功能恢复。iOPCs对脊髓损伤的治疗效果优于标准间充质干细胞治疗。

结论

我们的研究表明,TET3介导的去甲基化重塑了HUCMSCs的甲基化模式,使其能够高效地一步转化为OPCs,并显著缩短细胞制备所需时间。这种方法为脊髓损伤的早期干预提供了一种潜在策略。在脊髓损伤模型中,TET3诱导的OPCs有助于脊髓修复,从甲基化调控的角度为脊髓损伤的细胞治疗策略提供了新的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f40c/11662714/13cb66b6e3d2/12967_2024_5929_Fig1_HTML.jpg

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验