García S, Sunyer R, Olivares A, Noailly J, Atencia J, Trepat X
Institute for Bioengineering of Catalonia (IBEC), Baldiri Reixac 15-21, 08028 Barcelona, Spain.
Lab Chip. 2015 Jun 21;15(12):2606-14. doi: 10.1039/c5lc00140d.
Cellular responses to chemical cues are at the core of a myriad of fundamental biological processes ranging from embryonic development to cancer metastasis. Most of these biological processes are also influenced by mechanical cues such as the stiffness of the extracellular matrix. How a biological function is influenced by a synergy between chemical concentration and extracellular matrix stiffness is largely unknown, however, because no current strategy enables the integration of both types of cues in a single experiment. Here we present a robust microfluidic device that generates a stable, linear and diffusive chemical gradient over a biocompatible hydrogel with a well-defined stiffness gradient. Device fabrication relies on patterned PSA (Pressure Sensitive Adhesive) stacks that can be implemented with minimal cost and lab equipment. This technique is suitable for long-term observation of cell migration and application of traction force microscopy. We validate our device by testing MDCK cell scattering in response to perpendicular gradients of hepatocyte growth factor (HGF) and substrate stiffness.
细胞对化学信号的反应是从胚胎发育到癌症转移等无数基本生物过程的核心。这些生物过程中的大多数也受到机械信号的影响,例如细胞外基质的硬度。然而,由于目前没有策略能够在单个实验中整合这两种信号,化学浓度与细胞外基质硬度之间的协同作用如何影响生物学功能在很大程度上尚不清楚。在此,我们展示了一种强大的微流控装置,该装置可在具有明确刚度梯度的生物相容性水凝胶上产生稳定、线性且扩散的化学梯度。装置制造依赖于图案化的压敏粘合剂(PSA)堆叠,其可以以最低的成本和实验室设备来实现。该技术适用于细胞迁移的长期观察以及牵引力显微镜的应用。我们通过测试MDCK细胞对肝细胞生长因子(HGF)垂直梯度和底物硬度的散射反应来验证我们的装置。