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首页> 外文期刊>Macromolecular bioscience >Tuning the Mechanical Properties of Poly(Ethylene Glycol) Microgel-Based Scaffolds to Increase 3D Schwann Cell Proliferation
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Tuning the Mechanical Properties of Poly(Ethylene Glycol) Microgel-Based Scaffolds to Increase 3D Schwann Cell Proliferation

机译:调整基于聚乙二醇的微凝胶支架的机械性能,以增加3D雪旺细胞增殖

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2D in vitro studies have demonstrated that Schwann cells prefer scaffolds with mechanical modulus approximately 10x higher than the modulus preferred by nerves, limiting the ability of many scaffolds to promote both neuron extension and Schwann cell proliferation. Therefore, the goals of this work are to develop and characterize microgel-based scaffolds that are tuned over the stiffness range relevant to neural tissue engineering and investigate Schwann cell morphology, viability, and proliferation within 3D scaffolds. Using thiol-ene reaction, microgels with surface thiols are produced and crosslinked into hydrogels using a multiarm vinylsulfone (VS). By varying the concentration of VS, scaffold stiffness ranges from 0.13 to 0.76 kPa. Cell morphology in all groups demonstrates that cells are able to spread and interact with the scaffold through day 5. Although the viability in all groups is high, proliferation of Schwann cells within the scaffold of G* = 0.53 kPa is significantly higher than other groups. This result is approximate to 5x lower than previously reported optimal stiffnesses on 2D surfaces, demonstrating the need for correlation of 3D cell response to mechanical modulus. As proliferation is the first step in Schwann cell integration into peripheral nerve conduits, these scaffolds demonstrate that the stiffness is a critical parameter to optimizing the regenerative process.
机译:体外2D研究表明,Schwann细胞更喜欢机械模量比神经优选模量高约10倍的支架,从而限制了许多支架促进神经元延伸和Schwann细胞增殖的能力。因此,这项工作的目标是开发和表征基于微凝胶的支架,该支架在与神经组织工程相关的硬度范围内进行调整,并研究3D支架内的Schwann细胞形态,活力和增殖。使用硫醇-烯反应,可生产具有表面硫醇的微凝胶,并使用多臂乙烯基砜(VS)交联成水凝胶。通过改变VS的浓度,脚手架的刚度范围从0.13到0.76 kPa。所有组中的细胞形态表明,细胞能够在第5天扩散并与支架相互作用。尽管所有组中的活力都很高,但G * = 0.53 kPa的支架中雪旺氏细胞的增殖明显高于其他组。该结果比2D表面上先前报告的最佳刚度低大约5倍,这表明需要将3D单元响应与机械模量关联起来。由于增殖是雪旺氏细胞整合到周围神经导管中的第一步,因此这些支架表明,刚度是优化再生过程的关键参数。

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