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Multistructural biomimetic substrates for controlled cellular differentiation

机译:用于控制细胞分化的多结构仿生底物

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摘要

Multidimensional scaffolds are considered to be ideal candidates for regenerative medicine and tissue engineering based on their potential to provide an excellent microenvironment and direct the fate of the cultured cells. More recently, the use of stem cells in medicine has opened a new technological opportunity for controlled tissue formation. However, the mechanism through which the substrate directs the differentiation of stem cells is still rather unclear. Data concerning its specific surface chemistry, topology, and its signaling ability need to be further understood and analyzed. In our study, atomic force microscopy was used to study the stiffness, roughness, and topology of the collagen (Coll) and metallized collagen (MC) substrates, proposed as an excellent substrate for regenerative medicine. The importance of signaling molecules was studied by constructing a new hybrid signaling substrate that contains both collagen and laminin extracellular matrix (ECM) proteins. The cellular response-such as attachment capability, proliferation and cardiac and neuronal phenotype expression on the metallized and nonmetallized hybrid substrates (collagenClaminin)-was studied using MTT viability assay and immunohistochemistry studies. Our findings indicate that such hybrid materials could play an important role in the regeneration of complex tissues.
机译:多维支架基于其提供出色的微环境和指导培养细胞命运的潜力,被认为是再生医学和组织工程的理想候选者。最近,在医学中使用干细胞为控制组织的形成开辟了新的技术机会。但是,底物指导干细胞分化的机制仍不清楚。有关其特定表面化学,拓扑及其信号传导能力的数据需要进一步理解和分析。在我们的研究中,原子力显微镜用于研究胶原蛋白(Coll)和金属化胶原蛋白(MC)基质的刚度,粗糙度和拓扑,这被认为是再生医学的优良基质。通过构建包含胶原蛋白和层粘连蛋白细胞外基质(ECM)蛋白的新型杂交信号传递底物,研究了信号分子的重要性。使用MTT活力测定法和免疫组织化学研究了金属化和非金属化杂化底物(胶原蛋白Claminin)上的细胞反应,例如附着能力,增殖以及心脏和神经元表型的表达。我们的发现表明,这种杂化材料可能在复杂组织的再生中起重要作用。

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