ArticleActa biomaterialia2022
Patterned photocrosslinking to establish stiffness anisotropies in fibrous 3D hydrogels.
Article in Acta biomaterialia, 2022. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 9 papers.
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Who cites it
9 citing papers in PubMed, 17 citations in OpenAlex.
- Cell-Extracellular Matrix Feedback Results in Spontaneous Cell Polarization and Heterogeneous Remodeling in 3D Isotropic and Aligned Discrete-Fiber Models of Cell-Mediated Remodeling.Cellular and molecular bioengineering · 2026Article
- Nuclear deformation acts as a mechanical switch to drive breast cancer cell migration in a confined microenvironment.Theranostics · 2026Article
- An optical system for cellular mechanostimulation in 3D hydrogels.Acta biomaterialia · 2024Article
- Precision Hydrogels for the Study of Cancer Cell Mechanobiology.Advanced healthcare materials · 2023Review
- Biological Scaffolds Assembled with Magnetic Nanoparticles for Bone Tissue Engineering: A Review.Materials (Basel, Switzerland) · 2023Review
- Cell mediated remodeling of stiffness matched collagen and fibrin scaffolds.Scientific reports · 2022Article
- Functions and clinical significance of mechanical tumor microenvironment: cancer cell sensing, mechanobiology and metastasis.Cancer communications (London, England) · 2022Review
- Cells on Hydrogels with Micron-Scaled Stiffness Patterns Demonstrate Local Stiffness Sensing.Nanomaterials (Basel, Switzerland) · 2022Article
- Visible-Light Stiffness Patterning of GelMA Hydrogels TowardsFrontiers in cell and developmental biology · 2022Article
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Authors and funding
4 authors at 1 institution in 1 country.
Funding
Abstract
Cells are known to constantly interact with their local extracellular matrix (ECM) and respond to a variety of biochemical and mechanical cues received from the ECM. Nonetheless, comprehensive understanding of cell-ECM interactions has been elusive. Many studies rely on analysis of cell behavior on 2D substrates, which do not reflect a natural cell environment. Further, lack of dynamic control over local stiffness anisotropies and fiber alignment hinders progress in studies in naturally derived fibrous 3D cultures. Here, we present a cell-safe method of patterned photocrosslinking, which can aid in studying biological hypotheses related to mechanotransduction in 3D hydrogels. As previously described by our group, ruthenium-catalyzed photocrosslinking (RCP) of selected ECM regions promotes localized increase in stiffness mediated by focused blue laser light in a confocal microscope. In this study, we further demonstrate that RCP can induce localized strain stiffening and fiber alignment outside of the selected crosslinked region and induce stiffness anisotropy biased towards the direction of fiber alignment. MDA-MB-231 cells are shown to respond to RCP-induced changes in local ECM architecture and display directional bias towards the direction of fiber alignment, as compared to control cells. Further, the effect of patterned crosslinking on a stiffness landscape is measured using multi-axes optical tweezers active microrheology (AMR) with backscattered laser beam illumination. AMR validates RCP as a suitable tool for creating distinct stiffness anisotropies which promote directed migration of cells, further underscoring the usefulness of RCP in cell-ECM studies. STATEMENT OF SIGNIFICANCE: Studies on cell-ECM interactions in 3D cultures have often been hindered by the lack of available tools to dynamically alter local ECM stiffness and fiber alignment. Here, we present a non-invasive, cell-safe and easily applicable method of patterned photocrosslinking, which can aid in studying biological hypotheses in fibrous 3D hydrogels. Ruthenium-catalyzed crosslinking (RCP) of selected fibrin ECM regions promotes localized increase in stiffness and creates distinct stiffness anisotropies in the presence of the focused blue laser light. Outside of the crosslinked region, RCP causes fiber alignment and strain stiffening in the ECM, verified using multi-axes optical tweezers active microrheology (AMR). Following RCP, human breast cancer MDA-MB-231 exhibit directed cell migration, validating usefulness of this method in cell-ECM studies.
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