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Three-Dimensional Photolithographic Micropatterning: A Novel Tool to Probe the Complexities of Cell Migration

机译:三维光刻微图案:探测细胞迁移复杂性的新型工具

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摘要

In order to independently study the numerous variables that influence cell movement, it will be necessary to employ novel tools and materials that allow for exquisite control of the cellular microenvirenment. In this work, we have applied advanced 3D micropatterning technology, known as two-photon laser scanning lithography (TP-LSL), to poly(ethylene glycol) (PEG) hydrogels modified with bioactive peptides in order to fabricate precisely designed microenvirenments to guide and quantitatively investigate cell migration. Specifically, TP-LSL was used to fabricate cell adhesive PEG-RGDS micropatterns on the surface of non-degradable PEG-based hydrogels (2D) and in the interior of proteolytically degradable PEG-based hydrogels (3D). HT1080 cell migration was guided down these adhesive micropatterns in both 2D and 3D, as observed via time-lapse microscopy. Differences in cell speed, cell persistence, and cell shape were observed based on variation of adhesive ligand, hydrogel composition, and patterned area for both 2D and 3D migration. Results indicated that HT1080s migrate faster and with lower persistence on 2D surfaces, while HT1080s migrating in 3D were smaller and more elongated. Further, cell migration was shown to have a biphasic dependence on PEG-RGDS concentration and cells moving within PEG-RGDS micropatterns were seen to move faster and with more persistence over time. Importantly, the work presented here begins to elucidate the multiple complex factors involved in cell migration, with typical confounding factors being independently controlled. The development of this unique platform will allow researchers to probe how cells behave within increasingly complex 3D microenvironments that begin to mimic specifically chosen aspects of the in vivo landscape.
机译:为了独立研究影响细胞运动的众多变量,将有必要采用新颖的工具和材料来精确控制细胞的微环境。在这项工作中,我们将先进的3D微图案化技术应用于生物活性肽修饰的聚乙二醇(PEG)水凝胶,该技术被称为双光子激光扫描光刻(TP-LSL),以制造精确设计的微环境以指导和定量研究细胞迁移。具体而言,TP-LSL用于在不可降解的PEG基水凝胶(2D)的表面和可蛋白水解的PEG基水凝胶(3D)的内部制造细胞粘合PEG-RGDS微图案。通过延时显微镜观察,HT1080细胞迁移在2D和3D模式下沿着这些粘附性微图案向下运动。基于粘合剂配体,水凝胶组成以及2D和3D迁移的图案化面积的变化,观察到了细胞速度,细胞持久性和细胞形状的差异。结果表明,HT1080s在2D表面上的迁移速度更快且持久性较低,而HT1080s在3D表面上的迁移更小且更细长。此外,显示出细胞迁移对PEG-RGDS浓度具有双相依赖性,并且观察到在PEG-RGDS微模式内移动的细胞随着时间推移移动更快并且具有更大的持久性。重要的是,此处介绍的工作开始阐明与细胞迁移有关的多种复杂因素,其中典型的混杂因素是独立控制的。这个独特平台的开发将使研究人员能够探究细胞在日益复杂的3D微环境中的行为,这些环境开始模仿体内景观的特定方面。

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  • 年(卷),期 -1(5),5
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  • 页码 817–827
  • 总页数 21
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