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首页> 外文期刊>Clinical Orthopaedics and Related Research >Emerging ideas: Evaluation of stem cells genetically modified with scleraxis to improve rotator cuff healing.
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Emerging ideas: Evaluation of stem cells genetically modified with scleraxis to improve rotator cuff healing.

机译:新兴思路:评估经巩膜基因修饰的干细胞,以改善肩袖愈合。

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BACKGROUND: Rotator cuffs heal with an interposed layer of scar tissue that makes repairs prone to failure. Cell-based biologic therapies have the potential to augment this healing process. Scleraxis (Scx) is a transcription factor that is involved in tendon development during embryogenesis, and may help drive stem cells toward tenocyte differentiation in adults. QUESTIONS/HYPOTHESIS: (1) Overexpression of Scx with adenoviral-mediated gene transfer in stem cells will drive pluripotent stem cells toward tenoblastogenic lineages in vitro; (2) the application of these genetically modified cells will result in improved histologic and biomechanical healing of rotator cuff repairs. METHOD OF STUDY: For the first hypothesis, we will determine whether stem cells derived from various sources can differentiate into tenocytes when genetically modified with Scx in vitro. We will assess morphologic features of cells with light microscopy, and gene expression analyses to confirm phenotypes consistent with tenocyte differentiation. For the second hypothesis, we will determine whether these genetically modified cells augment rotator cuff repairs in a rat model based on histology and biomechanical outcomes. SIGNIFICANCE: Development of this technology may substantially advance our ability to repair large to massive rotator cuff tears while limiting the rates of anatomic failure.
机译:背景:肩袖愈合后插入一层疤痕组织,使修复容易失败。基于细胞的生物疗法具有增强这一愈合过程的潜力。巩膜硬化(Scx)是一种在胚胎发生过程中参与肌腱发育的转录因子,可以帮助驱动干细胞向成年男性的肌腱细胞分化。问题/假设:(1)腺病毒介导的基因转移在干细胞中过度表达Scx会使多能干细胞在体外向成膜成神经细胞谱系发展; (2)这些转基因细胞的应用将改善肩袖修复的组织学和生物力学愈合。研究方法:对于第一个假设,我们将确定在体外用Scx进行基因修饰后,源自各种来源的干细胞是否可以分化为肌腱细胞。我们将通过光学显微镜和基因表达分析来评估细胞的形态特征,以确认与肌腱细胞分化相一致的表型。对于第二个假设,我们将基于组织学和生物力学结果确定这些转基因细胞是否在大鼠模型中增强了肩袖的修复。启示:这项技术的发展可能会大大提高我们修复大型到大型肩袖撕裂的能力,同时还能限制解剖学上的失败率。

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