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Microenvironment complexity and matrix stiffness regulate breast cancer cell activity in a 3D in vitro model
- Source :
- Scientific Reports, Scientific reports (Nature Publishing Group) 6 (2016). doi:10.1038/srep35367, info:cnr-pdr/source/autori:Cavo, Marta; Fato, Marco; Penuela, Leonardo; Beltrame, Francesco; Raiteri, Roberto; Scaglione, Silvia/titolo:Microenvironment complexity and matrix stiffness regulate breast cancer cell activity in a 3D in vitro model/doi:10.1038%2Fsrep35367/rivista:Scientific reports (Nature Publishing Group)/anno:2016/pagina_da:/pagina_a:/intervallo_pagine:/volume:6
- Publication Year :
- 2016
- Publisher :
- Nature Publishing Group, 2016.
-
Abstract
- Three-dimensional (3D) cell cultures represent fundamental tools for the comprehension of cellular phenomena both in normal and in pathological conditions. In particular, mechanical and chemical stimuli play a relevant role on cell fate, cancer onset and malignant evolution. Here, we use mechanically-tuned alginate hydrogels to study the role of substrate elasticity on breast adenocarcinoma cell activity. The hydrogel elastic modulus (E) was measured via atomic force microscopy (AFM) and a remarkable range (150–4000 kPa) was obtained. A breast cancer cell line, MCF-7, was seeded within the 3D gels, on standard Petri and alginate-coated dishes (2D controls). Cells showed dramatic morphological differences when cultured in 3D versus 2D, exhibiting a flat shape in both 2D conditions, while maintaining a circular, spheroid-organized (cluster) conformation within the gels, similar to those in vivo. Moreover, we observed a strict correlation between cell viability and substrate elasticity; in particular, the number of MCF-7 cells decreased constantly with increasing hydrogel elasticity. Remarkably, the highest cellular proliferation rate, associated with the formation of cell clusters, occurred at two weeks only in the softest hydrogels (E = 150–200 kPa), highlighting the need to adopt more realistic and a priori defined models for in vitro cancer studies.
- Subjects :
- 0301 basic medicine
Alginates
Cell Survival
Cellular differentiation
Cell
Cell Culture Techniques
Breast Neoplasms
02 engineering and technology
Cell fate determination
Adenocarcinoma
In Vitro Techniques
Microscopy, Atomic Force
Article
03 medical and health sciences
Tissue engineering
Glucuronic Acid
Cell Line, Tumor
Elastic Modulus
medicine
Pressure
Tumor Microenvironment
Cluster Analysis
Humans
Cell Lineage
Viability assay
Cell Proliferation
Multidisciplinary
Tissue Engineering
Chemistry
Cell growth
Hexuronic Acids
Cell Differentiation
Hydrogels
021001 nanoscience & nanotechnology
Flow Cytometry
cancer tissue engineering
mechanobiology: bioengineering
Elasticity
030104 developmental biology
medicine.anatomical_structure
Cell culture
Self-healing hydrogels
Biophysics
MCF-7 Cells
Female
0210 nano-technology
Subjects
Details
- Language :
- English
- Database :
- OpenAIRE
- Journal :
- Scientific Reports, Scientific reports (Nature Publishing Group) 6 (2016). doi:10.1038/srep35367, info:cnr-pdr/source/autori:Cavo, Marta; Fato, Marco; Penuela, Leonardo; Beltrame, Francesco; Raiteri, Roberto; Scaglione, Silvia/titolo:Microenvironment complexity and matrix stiffness regulate breast cancer cell activity in a 3D in vitro model/doi:10.1038%2Fsrep35367/rivista:Scientific reports (Nature Publishing Group)/anno:2016/pagina_da:/pagina_a:/intervallo_pagine:/volume:6
- Accession number :
- edsair.doi.dedup.....0943caad5e11170ef4ca428fbc833e09
- Full Text :
- https://doi.org/10.1038/srep35367