Multimodal mechano-microscopy reveals mechanical phenotypes of breast cancer spheroids in three dimensions

dc.contributor.authorMowla, Alireza
dc.contributor.authorHepburn, Matt S.
dc.contributor.authorLi, Jiayue
dc.contributor.authorVahala, Danielle
dc.contributor.authorAmos, Sebastian E.
dc.contributor.authorHirvonen, Liisa M.
dc.contributor.authorSanderson, Rowan W.
dc.contributor.authorWijesinghe, Philip
dc.contributor.authorMaher, Samuel
dc.contributor.authorChoi, Yu Suk
dc.contributor.authorKennedy, Brendan F.
dc.date.accessioned2026-07-30T10:31:07Z
dc.date.issued2024-09
dc.descriptionThis research was funded by the National Science Center (Poland), grant number 2023/02/1/ST2/00002.
dc.description.abstractCancer cell invasion relies on an equilibrium between cell deformability and the biophysical constraints imposed by the extracellular matrix (ECM). However, there is little consensus on the nature of the local biomechanical alterations in cancer cell dissemination in the context of three-dimensional (3D) tumor microenvironments (TMEs). While the shortcomings of two-dimensional (2D) models in replicating in situ cell behavior are well known, 3D TME models remain underutilized because contemporary mechanical quantification tools are limited to surface measurements. Here, we overcome this major challenge by quantifying local mechanics of cancer cell spheroids in 3D TMEs. We achieve this using multimodal mechano-microscopy, integrating optical coherence microscopy-based elasticity imaging with confocal fluorescence microscopy. We observe that non-metastatic cancer spheroids show no invasion while showing increased peripheral cell elasticity in both stiff and soft environments. Metastatic cancer spheroids, however, show ECM-mediated softening in a stiff microenvironment and, in a soft environment, initiate cell invasion with peripheral softening associated with early metastatic dissemination. This exemplar of live-cell 3D mechanotyping supports that invasion increases cell deformability in a 3D context, illustrating the power of multimodal mechano-microscopy for quantitative mechanobiology in situ.
dc.description.sponsorshipThis research was funded by the National Science Center (Poland), grant number 2023/02/1/ST2/00002.
dc.identifier.citationAPL Bioeng. 8, 2024, 036113
dc.identifier.otherdoi: 10.1063/5.0213077
dc.identifier.urihttps://repozytorium.umk.pl/handle/item/7349
dc.language.isoeng
dc.publisherAIP Publishing
dc.rightsAttribution 4.0 Internationalen
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/
dc.subjectSignal-to-noise ratio
dc.subjectElastic modulus
dc.subjectOptical metrology
dc.subjectCoherence theory
dc.subjectOptical imaging
dc.subjectShear strain elastography imaging
dc.subjectDiseases and conditions
dc.subjectMicroscopy
dc.subjectBiomechanics
dc.subjectCell cultures
dc.titleMultimodal mechano-microscopy reveals mechanical phenotypes of breast cancer spheroids in three dimensions
dc.typeinfo:eu-repo/semantics/article

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