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Virus activated artificial ECM induces the osteoblastic differentiation of mesenchymal stem cells without osteogenic supplements

机译:病毒激活的人工ECM诱导非骨质源性补充的间充质干细胞的骨细胞分化

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Biochemical and topographical features of an artificial extracellular matrix (aECM) can direct stem cell fate. However, it is difficult to vary only the biochemical cues without changing nanotopography to study their unique role. We took advantage of two unique features of M13 phage, a non-toxic nanofiber-like virus, to generate a virus-activated aECM with constant ordered ridge/groove nanotopography but displaying different fibronectin-derived peptides (RGD, its synergy site PHSRN, and a combination of RGD and PHSRN). One feature is the self-assembly of phage into a ridge/groove structure, another is the ease of genetically surface-displaying a peptide. We found that the unique ridge/groove nanotopography and the display of RGD and PHSRN could induce the osteoblastic differentiation of mesenchymal stem cells (MSCs) without any osteogenic supplements. The aECM formed through self-assembly and genetic engineering of phage can be used to understand the role of peptide cues in directing stem cell behavior while keeping nanotopography constant.
机译:人造细胞外基质(AECM)的生化和地形特征可以引导干细胞命运。然而,难以改变生化线索而不改变纳米复印件以研究其独特作用。我们利用了M13噬菌体的两个独特特征,一种无毒的纳米纤维样病毒,产生一种具有恒定有序的脊/槽纳米发作的病毒活化的AECM,但显示不同的纤维连接蛋白衍生的肽(RGD,其协同部位PHSRN,以及RGD和PHSRN的组合)。一个特征是噬菌体的自组装成脊/槽结构,另一种是易于遗传表面显示肽的容易性。我们发现独特的脊/槽纳米复印件和RGD和PHSRN的显示可以诱导间充质干细胞(MSCs)的骨细胞分化而不具有任何骨质骨质增补。通过自组装和噬菌体的基因工程形成的AECM可用于理解肽提示在保持纳米复印件常数的同时引导干细胞行为的作用。

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