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Hockenberry, M. A.

Publications and source records attributed to Hockenberry, M. A..

2 recordsLinked to original sources

Measurement of cellular traction forces during confined migration

To migrate efficiently through tissues, cells must transit through small constrictions within the extracellular matrix. However, in vivo environments are geometrically, mechanically, and chemically complex, and it has been difficult to understand how each of these parameters contribute to the propulsive strategy utilized by cells in these diverse settings. To address this, we employed a sacrificial micromolding approach to generate polymer substrates with tunable stiffness, controlled adhesivity, and user-defined microscale geometries. We combined this together with live-cell imaging and three-dimensional traction force microscopy (TFM) to quantify the forces that cells use to transit through constricting channels. Surprisingly, we observe that cells migrating through compliant constrictions take longer to transit and experience greater nuclear deformation than those migrating through more rigid constrictions. TFM reveals that this deformation is generated by inwardly directed contractile forces that decrease the size of the opening and pull the walls closed around the nucleus. These findings show that nuclear deformation during confined migration can be accomplished by internal cytoskeletal machinery rather than by reactive forces from the substrate, and our approach provides a mechanism to test between different models for how cells translocate their nucleus through narrow constrictions. The methods, analysis, and results presented here will be useful to understand how cells choose between propulsive strategies in different physical environments. Significance StatementCell migration is critical for both physiological events like wound healing and pathological events like metastasis. Understanding how cells move through complex environments will assist efforts to enhance or inhibit such processes. We developed a method to quantify the forces that cells use to move through multidimensional environments, including through narrow constrictions like those in tissues. Surprisingly, we find that cells transiting through soft constrictions take longer and deform more than those transiting through rigid constrictions, and we connect this finding to inwardly directed contractile forces generated by migrating cells. Together, this work reveals a key role for substrate rigidity to regulate cell transit through confining geometries and provides a quantitative platform to investigate similar processes in other settings.

biophysics↗

Zyxin and non-muscle myosin are required for single fibroblast durotaxis, but Rho-kinase activity and the Arp2/3 complex are dispensable

Durotaxis, migration of cells directed by stiffness gradient, is critical in development and disease. To study the molecular determinants of single cell durotaxis, we developed an all-in-one photopolymerized hydrogel system containing areas of stiffness gradients with different slopes, along with uniform stiffness (soft and stiff) regions. We find that fibroblasts rely on non-muscle myosin II (NMII) activity and the LIM-domain protein zyxin for durotaxis on both steep and shallow stiffness gradients. Importantly, unlike haptotaxis, the Arp2/3 complex is dispensable for durotaxis on both stiffness gradients. Lack of Arp2/3 results in a filopodia-based durotactic migration that is equally efficient as that of lamellipodia-based durotactic migration. Finally, we reveal an essential role for the actin-bundler fascin in the formation and asymmetric distribution of filopodia during filopodia-based durotaxis in shallow, but not steep, stiffness gradient. Together, our all-in-one hydrogel system can serve as a platform to identify, discriminate, and characterize stiffness gradient specific molecular mechanisms that cells employ to efficiently durotax.

cell biology↗