Laboratory of Thermodynamics in Emerging Technologies, Institute of Energy Technology, Department of Mechanical and Process Engineering, ETH Zürich, CH-8092 Zürich, Switzerland.
Macromol Biosci. 2013 Aug;13(8):973-83. doi: 10.1002/mabi.201200416. Epub 2013 Jun 19.
Understanding the mechanisms of interstitial cancer migration is of great scientific and medical interest. Creating 3D platforms, conducive to optical microscopy and mimicking the physical parameters (in plane and out of plane) involved in interstitial migration, is a major step forward in this direction. Here, a novel approach is used to directly print free-form, 3D micropores on basal scaffolds containing microgratings optimized for contact guidance. The platforms so formed are validated by monitoring cancer cell migration and micropore penetration with high-resolution optical microscopy. The shapes, sizes and deformability of the micropores are controllable, paving the way to decipher their role in interstitial migration.
理解间质癌迁移的机制具有重要的科学和医学意义。创建有利于光学显微镜并模拟间质迁移所涉及的物理参数(平面内和平面外)的 3D 平台,是朝这个方向迈出的重要一步。在这里,使用一种新颖的方法直接在基底支架上打印自由形式的 3D 微孔,基底支架包含针对接触引导而优化的微光栅。通过使用高分辨率光学显微镜监测癌细胞迁移和微孔穿透,对如此形成的平台进行验证。微孔的形状、大小和可变形性是可控的,为解析它们在间质迁移中的作用铺平了道路。