AI Article Synopsis

  • Eukaryotic cells can change shape and move through tight spaces, but how this relates to their nuclei is still not well understood.
  • This study focuses on mesenchymal cancer cell nuclei as they travel through narrow hydrogel channels, revealing that migration speed and frequency peak when channel widths are similar to the nuclear diameter.
  • The researchers discovered that as nuclei migrate through these channels, they deform and change shape, with both pulling and pushing forces from the cytoskeleton playing a role in their movement under confinement.

Article Abstract

Eukaryotic cells show an astounding ability to remodel their shape and cytoskeleton and to migrate through pores and constrictions smaller than their nuclear diameter. However, the relation of nuclear deformation and migration dynamics in confinement remains unclear. Here, we study the mechanics and dynamics of mesenchymal cancer cell nuclei transitioning through three-dimensional compliant hydrogel channels. We find a biphasic dependence of migration speed and transition frequency on channel width, peaking at widths comparable to the nuclear diameter. Using confocal imaging and hydrogel bead displacement, we determine nuclear deformations and corresponding forces during confined migration. The nucleus deforms reversibly with a reduction in volume during confinement. With decreasing channel width, the nuclear shape during transmigration changes biphasically, concomitant with the transitioning dynamics. Our proposed physical model explains the observed nuclear shapes and transitioning dynamics in terms of the cytoskeletal force generation adapting from purely pulling-based to a combined pulling- and pushing-based mechanism with increasing nuclear confinement.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11338266PMC
http://dx.doi.org/10.1126/sciadv.adm9195DOI Listing

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