ArticleAPL bioengineering2020
Dermal fibroblasts and triple-negative mammary epithelial cancer cells differentially stiffen their local matrix.
Article in APL bioengineering, 2020. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 7 papers.
What it found
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Who cites it
7 citing papers in PubMed, 12 citations in OpenAlex.
- Active Microrheology Reveals Distinct ECM Mechanical Signatures Induced by Stromal Cells of Different Tissue Origins during Vascular Morphogenesis.ACS biomaterials science & engineering · 2026Article
- Unexpected softening of a fibrous matrix by contracting inclusions.Acta biomaterialia · 2024Article
- Micromechanical remodeling of the extracellular matrix by invading tumors: anisotropy and heterogeneity.Soft matter · 2022Article
- Cell mediated remodeling of stiffness matched collagen and fibrin scaffolds.Scientific reports · 2022Article
- Patterned photocrosslinking to establish stiffness anisotropies in fibrous 3D hydrogels.Acta biomaterialia · 2022Article
- Passive and Active Microrheology for Biomedical Systems.Frontiers in bioengineering and biotechnology · 2022Review
- Cell contact guidance via sensing anisotropy of network mechanical resistance.Proceedings of the National Academy of Sciences of the United States of America · 2021Article
Corrections and comments
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Authors and funding
3 authors at 1 institution in 1 country.
Funding
No grant is acknowledged in the PubMed record.
Abstract
The bulk measurement of extracellular matrix (ECM) stiffness is commonly used in mechanobiology. However, past studies by our group show that peri-cellular stiffness is quite heterogeneous and divergent from the bulk. We use optical tweezers active microrheology (AMR) to quantify how two phenotypically distinct migratory cell lines establish dissimilar patterns of peri-cellular stiffness. Dermal fibroblasts (DFs) and triple-negative human breast cancer cells MDA-MB-231 (MDAs) were embedded within type 1 collagen (T1C) hydrogels polymerized at two concentrations: 1.0 mg/ml and 1.5 mg/ml. We found DFs increase the local stiffness of 1.0 mg/ml T1C hydrogels but, surprisingly, do not alter the stiffness of 1.5 mg/ml T1C hydrogels. In contrast, MDAs predominantly do not stiffen T1C hydrogels as compared to cell-free controls. The results suggest that MDAs adapt to the bulk ECM stiffness, while DFs regulate local stiffness to levels they intrinsically prefer. In other experiments, cells were treated with transforming growth factor-β1 (TGF-β1), glucose, or ROCK inhibitor Y27632, which have known effects on DFs and MDAs related to migration, proliferation, and contractility. The results show that TGF-β1 alters stiffness anisotropy, while glucose increases stiffness magnitude around DFs but not MDAs and Y27632 treatment inhibits cell-mediated stiffening. Both cell lines exhibit an elongated morphology and local stiffness anisotropy, where the stiffer axis depends on the cell line, T1C concentration, and treatment. In summary, our findings demonstrate that AMR reveals otherwise masked mechanical properties such as spatial gradients and anisotropy, which are known to affect cell behavior at the macro-scale. The same properties manifest with similar magnitude around single cells.
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Registered trials
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