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Combined Notch and PDGF Signaling Enhances Migration and Expression of Stem Cell Markers while Inducing Perivascular Cell Features in Muscle Satellite Cells

机译:组合的凹口和PDGF信号传导增强干细胞标记物的迁移和表达,同时诱导肌肉卫星细胞中的血管细胞特征

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摘要

Summary: Satellite cells are responsible for skeletal muscle regeneration. Upon activation, they proliferate as transient amplifying myoblasts, most of which fuse into regenerating myofibers. Despite their remarkable differentiation potential, these cells have limited migration capacity, which curtails clinical use for widespread forms of muscular dystrophy. Conversely, skeletal muscle perivascular cells have less myogenic potential but better migration capacity than satellite cells. Here we show that modulation of Notch and PDGF pathways, involved in developmental specification of pericytes, induces perivascular cell features in adult mouse and human satellite cell-derived myoblasts. DLL4 and PDGF-BB-treated cells express markers of perivascular cells and associate with endothelial networks while also upregulating markers of satellite cell self-renewal. Moreover, treated cells acquire trans-endothelial migration ability while remaining capable of engrafting skeletal muscle upon intramuscular transplantation. These results extend our understanding of muscle stem cell fate plasticity and provide a druggable pathway with clinical relevance for muscle cell therapy. : Gerli and Moyle and colleagues show that treatment with molecules involved in developmental specification of pericytes (DLL4 and PDGF-BB) alters satellite cell fate and provides them with features potentially relevant for novel cell therapy protocols. Keywords: muscle stem cells, satellite cells, stem cell fate, reprogramming, perivascular cells, muscle regeneration, muscular dystrophy, cell therapy, NOTCH, PDGF
机译:发明内容:卫星细胞负责骨骼肌再生。在激活后,它们随着瞬时放大肌细胞增殖,其中大部分是融合到再生肌纤维中的肌细胞。尽管有着显着的分化潜力,但这些细胞具有有限的迁移能力,这为广泛的肌营养不良造成了临床用途。相反,骨骼肌羽毛血管细胞具有较少的肌致势,但比卫星细胞更好地迁移。在这里,我们表明陷波和PDGF途径的调节,涉及围网的发育规范,诱导成年小鼠和人卫星细胞衍生的肌细胞中的血管细胞特征。 DLL4和PDGF-BB处理的细胞表达血管外细胞的标记,并与内皮网络相关联,同时还上调卫星细胞自我更新的标记。此外,经处理的细胞获得了反式内皮迁移能力,同时剩余能够在肌内移植时嵌入骨骼肌。这些结果延长了对肌肉干细胞的塑性的理解,并提供一种可用于肌肉细胞疗法的临床相关性的可耐用途径。 :Gerli和Moyle及其同事表明,涉及涉及截瘫的发育规范的分子(DLL4和PDGF-BB)的治疗改变了卫星电池命运,并为它们提供了与新细胞治疗方案有关的特征。关键词:肌肉干细胞,卫星细胞,干细胞命运,重编程,大脑细胞,肌肉再生,肌营养不良,细胞疗法,缺口,PDGF

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