Literature DB >> 29861816

Deciphering the relative contribution of vascular inflammation and blood rheology in metastatic spreading.

Hilaria Mollica, Alessandro Coclite1, Marco E Miali, Rui C Pereira1, Laura Paleari, Chiara Manneschi1, Andrea DeCensi, Paolo Decuzzi1.   

Abstract

Vascular adhesion of circulating tumor cells (CTCs) is a key step in cancer spreading. If inflammation is recognized to favor the formation of vascular "metastatic niches," little is known about the contribution of blood rheology to CTC deposition. Herein, a microfluidic chip, covered by a confluent monolayer of endothelial cells, is used for analyzing the adhesion and rolling of colorectal (HCT-15) and breast (MDA-MB-231) cancer cells under different biophysical conditions. These include the analysis of cell transport in a physiological solution and whole blood over a healthy and a TNF-α inflamed endothelium with a flow rate of 50 and 100 nl/min. Upon stimulation of the endothelial monolayer with TNF-α (25 ng/ml), CTC adhesion increases from 2 to 4 times whilst cell rolling velocity only slightly reduces. Notably, whole blood also enhances cancer cell deposition from 2 to 3 times, but only on the unstimulated vasculature. For all tested conditions, no statistically significant difference is observed between the two cancer cell types. Finally, a computational model for CTC transport demonstrates that a rigid cell approximation reasonably predicts rolling velocities while cell deformability is needed to model adhesion. These results would suggest that, within microvascular networks, blood rheology and inflammation contribute similarly to CTC deposition, thereby facilitating the formation of metastatic niches along the entire network, including the healthy endothelium. In microfluidic-based assays, neglecting blood rheology would significantly underestimate the metastatic potential of cancer cells.

Entities:  

Year:  2018        PMID: 29861816      PMCID: PMC5957635          DOI: 10.1063/1.5022879

Source DB:  PubMed          Journal:  Biomicrofluidics        ISSN: 1932-1058            Impact factor:   2.800


  44 in total

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9.  Microfluidic endothelium for studying the intravascular adhesion of metastatic breast cancer cells.

Authors:  Jonathan W Song; Stephen P Cavnar; Ann C Walker; Kathryn E Luker; Mudit Gupta; Yi-Chung Tung; Gary D Luker; Shuichi Takayama
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10.  Investigation of Tumor Cell Behaviors on a Vascular Microenvironment-Mimicking Microfluidic Chip.

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  4 in total

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  4 in total

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