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The extracellular matrix (ECM) is comprised of a complex array of structural and crosslinking proteins including collagen, fibronectin and laminin. Although it is well established that the ECM provides important structural support for cellular tissues, there is increasing evidence to indicate that cells actively respond to physical changes in their ECM environment to regulate diverse cellular processes including cell survival, differentiation and cell migration. For example, differences in the rigidity of the ECM can drive mesenchymal stem cells towards different lineages, with soft substrates (~1 kPa) promoting neurogenic lineages while stiff (~25 kPa) substrates promote osteogenic differentiation1. Similarly, an increase in the stromal matrix rigidity has been shown to promote mammary epithelial cell tumorigenesis and invasion into the surrounding tissue2,3.
A particularly interesting aspect of this mechanosignaling activity results in a process known as durotaxis, in which cells migrate preferentially towards a more rigid substrate4,5. Cells constantly sense the physical characteristics of their extracellular environment through integrin receptor binding to the ECM. This, in turn, promotes the accumulation of numerous structural and signaling proteins to their cytoplasmic domains to drive the formation of adhesive structures known as focal adhesions or focal contacts6,7. Since integrins have no inherent enzymatic activity, signals are relayed from the ECM through these accessory proteins to coordinate the cell’s response to their changing environment8. Accordingly, the identification and characterization of the key proteins involved in regulating mechanosignaling and durotaxis is an important area of investigation.
Various model systems have been developed to study durotaxis in vitro, but most have utilized collagen-coated polyacrylamide substrates4. However, the preparation of the polyacrylamide substrates can be technically challenging and the collagen used in these assays must be chemically crosslinked to the substrate9. Polydimethylsiloxane (PDMS) substrates have been shown to exhibit comparable mechanical properties to the polyacrylamide substrates10. However, PDMS substrates are prepared by simply mixing a ratio of the base to crosslinker and these substrates can be coated with ECM proteins without the need for chemical crosslinking, thus making PDMS an easier tool to study the effects of rigidity on cell behavior. Herein, we describe how to prepare a simple durotaxis chamber in which a soft PDMS substrate is integrated with a rigid glass coverslip.
The assay, as outlined below, provides a quick and simple method to study durotaxis. For this study we used human U2OS osteosarcoma cells combined with siRNA-mediated knockdown of cdGAP to study the role of this focal adhesion protein in durotaxis11. Importantly, this protocol may be readily adapted to individual requirements. Other cell types may be substituted for the U2OS cells and any protein may be knocked down or overexpressed to determine the effects on cell behavior during durotaxis. Furthermore, this protocol may be adapted to incorporate fluorescently tagged proteins to analyze their dynamics and behavior using FRAP or FRET approaches.