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Water permeation drives tumor cell migration in confined microenvironments.


ABSTRACT: Cell migration is a critical process for diverse (patho)physiological phenomena. Intriguingly, cell migration through physically confined spaces can persist even when typical hallmarks of 2D planar migration, such as actin polymerization and myosin II-mediated contractility, are inhibited. Here, we present an integrated experimental and theoretical approach ("Osmotic Engine Model") and demonstrate that directed water permeation is a major mechanism of cell migration in confined microenvironments. Using microfluidic and imaging techniques along with mathematical modeling, we show that tumor cells confined in a narrow channel establish a polarized distribution of Na+/H+ pumps and aquaporins in the cell membrane, which creates a net inflow of water and ions at the cell leading edge and a net outflow of water and ions at the trailing edge, leading to net cell displacement. Collectively, this study presents an alternate mechanism of cell migration in confinement that depends on cell-volume regulation via water permeation.

SUBMITTER: Stroka KM 

PROVIDER: S-EPMC4365996 | biostudies-literature | 2014 Apr

REPOSITORIES: biostudies-literature

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Water permeation drives tumor cell migration in confined microenvironments.

Stroka Kimberly M KM   Jiang Hongyuan H   Chen Shih-Hsun SH   Tong Ziqiu Z   Wirtz Denis D   Sun Sean X SX   Konstantopoulos Konstantinos K  

Cell 20140410 3


Cell migration is a critical process for diverse (patho)physiological phenomena. Intriguingly, cell migration through physically confined spaces can persist even when typical hallmarks of 2D planar migration, such as actin polymerization and myosin II-mediated contractility, are inhibited. Here, we present an integrated experimental and theoretical approach ("Osmotic Engine Model") and demonstrate that directed water permeation is a major mechanism of cell migration in confined microenvironments  ...[more]

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