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人胚胎干细胞源性间充质干细胞在编织丝素-胶原蛋白支架中的促腱组织工程作用及其机制

Efficacy of hESC-MSCs in knitted silk-collagen scaffold for tendon tissue engineering and their roles.

机构信息

Center for Stem Cell and Tissue Engineering, School of Medicine, Zhejiang University, Hangzhou, China.

出版信息

Biomaterials. 2010 Dec;31(36):9438-51. doi: 10.1016/j.biomaterials.2010.08.011. Epub 2010 Sep 26.

DOI:10.1016/j.biomaterials.2010.08.011
PMID:20870282
Abstract

Human embryonic stem cells (hESC) and their differentiated progenies are an attractive cell source for transplantation therapy and tissue engineering. Nevertheless, the utility of these cells for tendon tissue engineering has not yet been adequately explored. This study incorporated hESC-derived mesenchymal stem cells (hESC-MSCs) within a knitted silk-collagen sponge scaffold, and assessed the efficacy of this tissue-engineered construct in promoting tendon regeneration. When subjected to mechanical stimulation in vitro, hESC-MSCs exhibited tenocyte-like morphology and positively expressed tendon-related gene markers (e.g. Collagen type I & III, Epha4 and Scleraxis), as well as other mechano-sensory structures and molecules (cilia, integrins and myosin). In ectopic transplantation, the tissue-engineered tendon under in vivo mechanical stimulus displayed more regularly aligned cells and larger collagen fibers. This in turn resulted in enhanced tendon regeneration in situ, as evidenced by better histological scores and superior mechanical performance characteristics. Furthermore, cell labeling and extracellular matrix expression assays demonstrated that the transplanted hESC-MSCs not only contributed directly to tendon regeneration, but also exerted an environment-modifying effect on the implantation site in situ. Hence, tissue-engineered tendon can be successfully fabricated through seeding of hESC-MSCs within a knitted silk-collagen sponge scaffold followed by mechanical stimulation.

摘要

人胚胎干细胞(hESC)及其分化后代是一种很有吸引力的细胞来源,可用于移植治疗和组织工程。然而,这些细胞在肌腱组织工程中的应用尚未得到充分探索。本研究将 hESC 来源的间充质干细胞(hESC-MSCs)种植于编织丝胶原海绵支架内,并评估该组织工程构建物在促进肌腱再生方面的功效。在体外力学刺激下,hESC-MSCs 呈现出肌腱细胞样形态,并阳性表达肌腱相关基因标志物(如胶原 I 和 III、Epha4 和 Scleraxis),以及其他力学感受结构和分子(纤毛、整合素和肌球蛋白)。在异位移植中,在体内力学刺激下的组织工程化肌腱显示出更规则排列的细胞和更大的胶原纤维。这反过来又导致了原位更好的肌腱再生,表现为更好的组织学评分和更优异的力学性能特征。此外,细胞标记和细胞外基质表达分析表明,移植的 hESC-MSCs 不仅直接促进了肌腱再生,而且对原位植入部位具有环境修饰作用。因此,通过将 hESC-MSCs 种植于编织丝胶原海绵支架内并进行力学刺激,可以成功构建组织工程化肌腱。

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