脐带间充质干细胞分化为肌腱细胞及促进肩袖肌腱骨愈合的治疗潜力和机制。

IF 6.7 1区 工程技术 Q1 CELL & TISSUE ENGINEERING
Journal of Tissue Engineering Pub Date : 2025-01-29 eCollection Date: 2025-01-01 DOI:10.1177/20417314251315185
Youliang Shen, Yuelei Wang, Yidan Xu, Jie Wang, Chuqiang Yin, Zengshuai Han, Feng Shen, Ting Wang
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引用次数: 0

摘要

肩袖肌腱损伤常导致肩部疼痛和功能障碍。传统的治疗方法,如手术和物理治疗可以提供暂时的缓解,但很难实现肌腱的完全愈合,主要是因为肌腱细胞的修复能力有限。因此,探索新的治疗方法显得尤为迫切。通过体外实验探讨脐带间充质干细胞(UCMSCs)向肌腱细胞分化的机制,并评估其促进肌腱套损伤修复的潜力。利用生长因子CTGF、GDF-6、GDF-7诱导UCMSCs分化,通过单细胞测序分析分化过程中基因表达变化。通过构建Hes1过表达和动物模型,研究其在UCMSCs分化和肩袖损伤修复中的作用。CTGF是诱导UCMSCs向肌腱细胞分化的最佳因子。随着诱导时间的延长,UCMSCs表现出明显的肌腱细胞特征,如细胞形态发生变化,肌腱特异性蛋白(MKX、SCX、TNC)表达增加。单细胞测序分析揭示了分化过程中的关键细胞亚群和信号通路。此外,Hes1基因的过表达可显著促进UCMSCs向肌腱细胞的分化,并在动物模型中显示其在肌腱套损伤修复中的治疗作用。本研究证实了UCMSCs在肌腱损伤修复中的潜力,特别是Hes1在促进UCMSCs分化和肌腱袖肌腱骨愈合中的关键作用,为开发新的细胞治疗策略提供了理论基础和实验依据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Therapeutic potential and mechanisms of umbilical cord mesenchymal stem cells differentiating into tendon cells and promotion of rotator cuff tendon-bone healing.

Rotator cuff tendon injuries often lead to shoulder pain and dysfunction. Traditional treatments such as surgery and physical therapy can provide temporary relief, but it is difficult to achieve complete healing of the tendon, mainly because of the limited repair capacity of the tendon cells. Therefore, it is particularly urgent to explore new treatment methods. In vitro experiments were performed to explore the mechanism of differentiation of umbilical cord mesenchymal stem cells (UCMSCs) to tendon cells and to evaluate their potential in promoting rotator cuff injury repair. Growth factors such as CTGF, GDF-6, and GDF-7 were used to induce the differentiation of UCMSCs, and gene expression changes during the differentiation process were analyzed by single-cell sequencing. Hes1 overexpression and animal models were constructed to study its role in UCMSCs differentiation and rotator cuff injury repair. CTGF was the optimal factor for inducing the differentiation of UCMSCs into tendon cells. With increasing induction time, UCMSCs exhibited obvious tendon cell characteristics, such as changes in cell morphology and increased expression of tendon-specific proteins (MKX, SCX, and TNC). Single-cell sequencing analysis revealed key cellular subpopulations and signaling pathways during differentiation. Furthermore, overexpression of the Hes1 gene significantly promoted the differentiation of UCMSCs to tendon cells and showed its therapeutic effect in rotator cuff injury repair in an animal model. This study confirmed the potential of UCMSCs in tendon injury repair, especially the critical role of Hes1 in promoting UCMSCs differentiation and rotator cuff tendon-bone healing, which provides a theoretical basis and experimental rationale for the development of new cellular therapeutic strategies.

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来源期刊
Journal of Tissue Engineering
Journal of Tissue Engineering Engineering-Biomedical Engineering
CiteScore
11.60
自引率
4.90%
发文量
52
审稿时长
12 weeks
期刊介绍: The Journal of Tissue Engineering (JTE) is a peer-reviewed, open-access journal dedicated to scientific research in the field of tissue engineering and its clinical applications. Our journal encompasses a wide range of interests, from the fundamental aspects of stem cells and progenitor cells, including their expansion to viable numbers, to an in-depth understanding of their differentiation processes. Join us in exploring the latest advancements in tissue engineering and its clinical translation.
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