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首页> 外文期刊>Nanoscale >Polyelectrolyte multilayers of poly (l-lysine) and hyaluronic acid on nanostructured surfaces affect stem cell response
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Polyelectrolyte multilayers of poly (l-lysine) and hyaluronic acid on nanostructured surfaces affect stem cell response

机译:保利(赖氨酸)和聚电解质多层膜透明质酸纳米表面的影响干细胞的反应

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摘要

Laser interference lithography (LIL) and the layer-by-layer (LbL) technique are combined here for the first time to design a system with variable nanotopographies and surface viscoelasticity to regulate cell behavior. LIL is used to generate hexagonally arranged nanostructures of gold with different periodicity. In contrast, LBL is used to assemble a multilayer system of poly-l-lysine and hyaluronic acid on top of the nanostructures. Moreover, the viscoelastic properties of that system are controlled by chemical cross-linking. We show that the topography designed with LIL is still present after multilayer deposition and that the formation of the multilayer system renders the surfaces hydrophilic, which is opposite to the hydrophobic nature of pristine nanostructures. The heterogenic system is applied to study the effect on adhesion and differentiation of human adipose-derived stem cells (hADSC). We show that hADSC spreading is increasing with cross-linking degree on flat multilayers, while it is decreasing on nanostructures modified with multilayers. In addition, early effects on signal transduction processes are seen. Finally, hADSC differentiation into chondrogenic and osteogenic lineages is superior to adipogenic lineages on nanostructures modified with multilayers. Hence, the presented system offers great potential to guide stem cell differentiation on surfaces of implants and tissue engineering scaffolds.
机译:激光干涉光刻技术(LIL)和分层技术(LbL)技术相结合第一次来设计系统变量nanotopographies和表面粘弹性调节细胞的行为。用于生成六角排列的金纳米结构不同周期性。poly-l-lysine和多层系统透明质酸纳米结构的顶部。此外,粘弹性性质系统控制的化学交联。我们表明,李尔的地形设计多层沉积和后仍然存在多层系统的形成使表面亲水,这是相反的原始的疏水性纳米结构。研究对附着力的影响人类脂肪干细胞的分化细胞(hADSC)。增加交联程度上平多层膜,而减少与多层纳米结构修改。此外,早期对信号转导的影响过程是观察。分化成chondrogenic和成骨的血统比脂肪形成的血统与多层纳米结构修改。提出了系统提供了巨大的潜力引导干细胞分化的表面植入物和组织工程支架。

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