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去分化人脐带间充质干细胞重编程内源性人基质细胞衍生因子-1α表达参与缺氧缺血性脑损伤大鼠的神经修复。

Dedifferentiated human umbilical cord mesenchymal stem cell reprogramming of endogenous hSDF-1α expression participates in neural restoration in hypoxic-ischemic brain damage rats.

作者信息

Xiaoqin Zhou, Jia Liu, Mengjie Dai, Jialu Gu, Yang Bi, Yuting Wang, Huajian Hu, Bo Liu, Xiaojun Zhang, Zhongyue Li, Jie Chen, Tingyu Li, Xue Zhan

机构信息

Department of Gastroenterology, Ministry of Education Key Laboratory of Child Development and Disorders, National Clinical Research Center for Child Health and Disorders (Chongqing), 401122, PR China.

International Science and Technology Cooperation Base of Child Development and Critical Disorders, Children's Hospital of Chongqing Medical University, Chongqing, 401122, PR China.

出版信息

Genes Dis. 2020 Feb 18;8(3):331-343. doi: 10.1016/j.gendis.2020.01.012. eCollection 2021 May.

Abstract

The transplantation of human umbilical cord mesenchymal stem cells (hUC-MSCs) can promote hypoxic-ischemic brain damage (HIBD) nerve repair, but finding suitable seed cells to optimize transplantation and improve treatment efficiency is an urgent problem to be solved. In this study, we induced hUC-MSCs into dedifferentiated hUC-MSCs (De-hUC-MSCs), and the morphology, stem cell surface markers, proliferation and tri-directional differentiation ability of the De-hUC-MSCs and hUC-MSCs were detected. A whole-gene chip was utilized for genome cluster, gene ontology and KEGG pathway analyses of differentially expressed genes. De-hUC-MSCs were transplanted into HIBD rats, and behavioral experiments and immunofluorescence assays were used to assess the therapeutic effect. A lentivirus vector for human stromal cell-derived factor-1 (hSDF-1α) was constructed, and the role of hSDF-1α in the neuroprotective effect and mechanism of De-hUC-MSCs was verified. De-hUC-MSCs displayed similar cell morphology, stem cell surface marker expression, cell proliferation and even three-dimensional differentiation ability as hUC-MSCs but exhibited greater treatment potential . The reprogramming mechanism of hSDF-1α participated in the dedifferentiation process. By successfully constructing a stable hSDF-1α cell line, we found that De-hUC-MSCs might participate in nerve repair through the hSDF-1α/CXCR4/PI3K/Akt pathway. De-hUC-MSCs reprogramming of endogenous hSDF-1α expression may mediate the hSDF-1α/CXCR4/PI3K/Akt pathway involved in nerve repair in HIBD rats.

摘要

人脐带间充质干细胞(hUC-MSCs)移植可促进缺氧缺血性脑损伤(HIBD)神经修复,但寻找合适的种子细胞以优化移植并提高治疗效率是亟待解决的问题。在本研究中,我们将hUC-MSCs诱导为去分化hUC-MSCs(De-hUC-MSCs),并检测了De-hUC-MSCs和hUC-MSCs的形态、干细胞表面标志物、增殖及三向分化能力。利用全基因芯片对差异表达基因进行基因组聚类、基因本体和KEGG通路分析。将De-hUC-MSCs移植到HIBD大鼠体内,采用行为学实验和免疫荧光检测评估治疗效果。构建人基质细胞衍生因子-1(hSDF-1α)慢病毒载体,验证hSDF-1α在De-hUC-MSCs神经保护作用及机制中的作用。De-hUC-MSCs与hUC-MSCs表现出相似的细胞形态、干细胞表面标志物表达、细胞增殖甚至三维分化能力,但具有更大的治疗潜力。hSDF-1α的重编程机制参与了去分化过程。通过成功构建稳定的hSDF-1α细胞系,我们发现De-hUC-MSCs可能通过hSDF-1α/CXCR4/PI3K/Akt通路参与神经修复。De-hUC-MSCs对内源性hSDF-1α表达的重编程可能介导hSDF-1α/CXCR4/PI3K/Akt通路参与HIBD大鼠的神经修复。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/035e/8093640/2aeff9f293eb/gr1.jpg

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