Issue 23, 2023

Magnetically controlled cyclic microscale deformation of in vitro cancer invasion models

Abstract

Mechanical cues play an important role in the metastatic cascade of cancer. Three-dimensional (3D) tissue matrices with tunable stiffness have been extensively used as model systems of the tumor microenvironment for physiologically relevant studies. Tumor-associated cells actively deform these matrices, providing mechanical cues to other cancer cells residing in the tissue. Mimicking such dynamic deformation in the surrounding tumor matrix may help clarify the effect of local strain on cancer cell invasion. Remotely controlled microscale magnetic actuation of such 3D in vitro systems is a promising approach, offering a non-invasive means for in situ interrogation. Here, we investigate the influence of cyclic deformation on tumor spheroids embedded in matrices, continuously exerted for days by cell-sized anisotropic magnetic probes, referred to as μRods. Particle velocimetry analysis revealed the spatial extent of matrix deformation produced in response to a magnetic field, which was found to be on the order of 200 μm, resembling strain fields reported to originate from contracting cells. Intracellular calcium influx was observed in response to cyclic actuation, as well as an influence on cancer cell invasion from 3D spheroids, as compared to unactuated controls. Furthermore, RNA sequencing revealed subtle upregulation of certain genes associated with migration and stress, such as induced through mechanical deformation, for spheroids exposed to actuation vs. controls. Localized actuation at one side of a tumor spheroid tended to result in anisotropic invasion toward the μRods causing the deformation. In summary, our approach offers a strategy to test and control the influence of non-invasive micromechanical cues on cancer cell invasion and metastasis.

Graphical abstract: Magnetically controlled cyclic microscale deformation of in vitro cancer invasion models

Supplementary files

Article information

Article type
Paper
Submitted
08 Apr 2023
Accepted
06 Oct 2023
First published
16 Oct 2023
This article is Open Access
Creative Commons BY-NC license

Biomater. Sci., 2023,11, 7541-7555

Magnetically controlled cyclic microscale deformation of in vitro cancer invasion models

D. O. Asgeirsson, A. Mehta, A. Scheeder, F. Li, X. Wang, M. G. Christiansen, N. Hesse, R. Ward, A. J. De Micheli, E. S. Ildiz, S. Menghini, N. Aceto and S. Schuerle, Biomater. Sci., 2023, 11, 7541 DOI: 10.1039/D3BM00583F

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