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Water-Air Interface to Mimic In Vitro Tumoral Cell Migration in Complex Micro-Environments

Articolo
Data di Pubblicazione:
2022
Abstract:
The long-known role of cell migration in physiological and pathological contexts still requires extensive research to be fully understood, mainly because of the intricate interaction between moving cells and their surroundings. While conventional assays fail to capture this complexity, recently developed 3D platforms better reproduce the cellular micro-environment, although often requiring expensive and time-consuming imaging approaches. To overcome these limitations, we developed a novel approach based on 2D micro-patterned substrates, compatible with conventional microscopy analysis and engineered to create micro-gaps with a length of 150 mu m and a lateral size increasing from 2 to 8 mu m, where a curved water-air interface is created on which cells can adhere, grow, and migrate. The resulting hydrophilic/hydrophobic interfaces, variable surface curvatures, spatial confinements, and size values mimic the complex micro-environment typical of the extracellular matrix in which aggressive cancer cells proliferate and migrate. The new approach was tested with two breast cancer cell lines with different invasive properties. We observed that invasive cells (MDA-MB-231) can align along the pattern and modify both their morphology and their migration rate according to the size of the water meniscus, while non-invasive cells (MCF-7) are only slightly respondent to the surrounding micro-environment. Moreover, the selected pattern highlighted a significative matrix deposition process connected to cell migration. Although requiring further optimizations, this approach represents a promising tool to investigate cell migration in complex environments.
Tipologia CRIS:
01.01 Articolo in rivista
Keywords:
cell migration; micro-patterned platform; cellular micro-environment
Elenco autori:
Conti, Martina; DAL ZILIO, Simone; Parisse, Pietro; Andolfi, Laura; Lazzarino, Marco
Autori di Ateneo:
ANDOLFI LAURA
DAL ZILIO SIMONE
LAZZARINO MARCO
PARISSE PIETRO
Link alla scheda completa:
https://iris.cnr.it/handle/20.500.14243/458271
Pubblicato in:
BIOSENSORS (BASEL)
Journal
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