Type I collagen and fibromodulin enhance the tenogenic phenotype of hASCs and their potential for tendon regeneration

IF 6.4 1区 医学 Q1 CELL & TISSUE ENGINEERING npj Regenerative Medicine Pub Date : 2023-12-14 DOI:10.1038/s41536-023-00341-z
Tian Tu, Yuan Shi, Boya Zhou, Xiaoyu Wang, Wenjie Zhang, Guangdong Zhou, Xiumei Mo, Wenbo Wang, Jinglei Wu, Wei Liu
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Abstract

Our previous work demonstrated the tendon-derived extracellular matrix (ECM) extracts as vital niches to specifically direct mesenchymal stem cells towards tenogenic differentiation. This study aims to further define the effective ECM molecules capable of teno-lineage induction on human adipose-derived stem cells (hASCs) and test their function for tendon engineering. By detecting the teno-markers expression levels in hASCs exposed to various substrate coatings, collagen I (COL1) and fibromodulin (FMOD) were identified to be the key molecules as a combination and further employed to the modification of poly(L-lactide-co-ε-caprolactone) electrospun nanoyarns, which showed advantages in inducting seeded hASCs for teno-lineage specific differentiation. Under dynamic mechanical loading, modified scaffold seeded with hASCs formed neo-tendon in vitro at the histological level and formed better tendon tissue in vivo with mature histology and enhanced mechanical properties. Primary mechanistic investigation with RNA sequencing demonstrated that the inductive mechanism of these two molecules for hASCs tenogenic differentiation was directly correlated with positive regulation of peptidase activity, regulation of cell-substrate adhesion and regulation of cytoskeletal organization. These biological processes were potentially affected by LOC101929398/has-miR-197-3p/TENM4 ceRNA regulation axis. In summary, COL1 and FMOD in combination are the major bioactive molecules in tendon ECM for likely directing tenogenic phenotype of hASCs and certainly valuable for hASCs-based tendon engineering.

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I 型胶原蛋白和纤维二聚体可增强 hASCs 的致腱表型及其肌腱再生潜力
我们之前的工作表明,肌腱来源的细胞外基质(ECM)提取物是重要的利基,可以特异性地指导间充质干细胞向肌腱分化。本研究旨在进一步确定能够诱导人脂肪来源干细胞(hASCs)肌腱谱系的有效ECM分子,并测试其在肌腱工程中的功能。通过检测不同底物涂层下的hASCs中teno-marker的表达水平,发现胶原I (COL1)和纤维调节素(FMOD)是关键分子组合,并将其用于聚l -乳酸-co-ε-己内酯电纺丝纳米纱的修饰,在诱导种子hASCs向teno-lineage特异性分化方面具有优势。在动态力学载荷作用下,植入hASCs的改性支架在体外组织水平上形成新生肌腱,在体内形成更好的肌腱组织,组织成熟,力学性能增强。通过RNA测序的初步机制研究表明,这两种分子诱导hASCs成腱分化的机制与正向调节肽酶活性、调节细胞底物粘附和调节细胞骨架组织直接相关。这些生物过程可能受到LOC101929398/has-miR-197-3p/TENM4 ceRNA调控轴的影响。综上所述,COL1和FMOD组合是肌腱ECM中主要的生物活性分子,可能指导hASCs的成腱鞘表型,对基于hASCs的肌腱工程具有一定的价值。
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来源期刊
npj Regenerative Medicine
npj Regenerative Medicine Engineering-Biomedical Engineering
CiteScore
10.00
自引率
1.40%
发文量
71
审稿时长
12 weeks
期刊介绍: Regenerative Medicine, an innovative online-only journal, aims to advance research in the field of repairing and regenerating damaged tissues and organs within the human body. As a part of the prestigious Nature Partner Journals series and in partnership with ARMI, this high-quality, open access journal serves as a platform for scientists to explore effective therapies that harness the body's natural regenerative capabilities. With a focus on understanding the fundamental mechanisms of tissue damage and regeneration, npj Regenerative Medicine actively encourages studies that bridge the gap between basic research and clinical tissue repair strategies.
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