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Micro-Mechanical Viscoelastic Properties of Crosslinked Hydrogels Using the Nano-Epsilon Dot Method

机译:纳米Epsilon点法分析交联水凝胶的微机械粘弹性

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摘要

Engineering materials that recapitulate pathophysiological mechanical properties of native tissues in vitro is of interest for the development of biomimetic organ models. To date, the majority of studies have focused on designing hydrogels for cell cultures which mimic native tissue stiffness or quasi-static elastic moduli through a variety of crosslinking strategies, while their viscoelastic (time-dependent) behavior has been largely ignored. To provide a more complete description of the biomechanical environment felt by cells, we focused on characterizing the micro-mechanical viscoelastic properties of crosslinked hydrogels at typical cell length scales. In particular, gelatin hydrogels crosslinked with different glutaraldehyde (GTA) concentrations were analyzed via nano-indentation tests using the nano-epsilon dot method. The experimental data were fitted to a Maxwell Standard Linear Solid model, showing that increasing GTA concentration results in increased instantaneous and equilibrium elastic moduli and in a higher characteristic relaxation time. Therefore, not only do gelatin hydrogels become stiffer with increasing crosslinker concentration (as reported in the literature), but there is also a concomitant change in their viscoelastic behavior towards a more elastic one. As the degree of crosslinking alters both the elastic and viscous behavior of hydrogels, caution should be taken when attributing cell response merely to substrate stiffness, as the two effects cannot be decoupled.
机译:在体外模拟天然组织的病理生理力学特性的工程材料对于仿生器官模型的开发很重要。迄今为止,大多数研究都集中在设计用于细胞培养的水凝胶,该凝胶通过多种交联策略模拟天然组织的硬度或准静态弹性模量,而其粘弹性(随时间变化)行为却被大大忽略。为了提供对细胞感觉到的生物力学环境的更完整描述,我们专注于表征典型细胞长度尺度下交联水凝胶的微机械粘弹性。特别是,使用纳米ε点法通过纳米压痕测试分析了与不同戊二醛(GTA)浓度交联的明胶水凝胶。将实验数据拟合到麦克斯韦标准线性固体模型中,表明增加的GTA浓度会导致瞬时弹性模量和平衡弹性模量增加以及特征弛豫时间更长。因此,不仅明胶水凝胶随着交联剂浓度的增加而变得更坚硬(如文献报道),而且它们的粘弹性行为也随之向着更具弹性的方向变化。由于交联度会改变水凝胶的弹性和粘性行为,因此在将细胞反应仅归因于基质刚度时应格外小心,因为这两种作用不能分离。

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