Plos iconPlosSep 24, 2026 ~1 min source read

Mechanical polarity links adhesion-regulated protrusions to directional stability in glioblastoma cell migration

In particular, the degree to which protrusive forces are aligned or cancel each other, and how this governs migration efficiency, have remained unquantified. Here, we introduce mechanical polarity, a quantitative descriptor that captures the alignment of protrusive and adhesive forces driving migration.

Mechanical polarity links adhesion-regulated protrusions to directional stability in glioblastoma cell migration

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In particular, the degree to which protrusive forces are aligned or cancel each other, and how this governs migration efficiency, have remained unquantified.

By integrating time-lapse imaging of the glioblastoma-derived cells with a coarse-grained biophysical model incorporating catch- and slip-bond kinetics, we analyzed motility on fibronectin- and...

Here, we introduce mechanical polarity, a quantitative descriptor that captures the alignment of protrusive and adhesive forces driving migration.

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The useful part

In particular, the degree to which protrusive forces are aligned or cancel each other, and how this governs migration efficiency, have remained unquantified. Here, we introduce mechanical polarity, a quantitative descriptor that captures the alignment of protrusive and adhesive forces driving migration. By integrating time-lapse imaging of the glioblastoma-derived cells with a coarse-grained biophysical model incorporating catch- and slip-bond kinetics, we analyzed motility on fibronectin- and laminin-coated substrates.

How it works

  • This framework provides a quantitative basis for understanding force coordination in glioblastoma cell motility and offers a physical basis for strategies to suppress invasive behavior.
  • We demonstrate that while protrusive activity remains similar across environments, the fibronectin-fitted model exhibited less stable effective adhesion dynamics that led to poorly coordinated protrusions...
  • These differences are not fully captured by conventional descriptors of protrusion activity but are reflected in mechanical polarity.
  • Conversely, laminin promotes stable adhesions and the alignment of protrusive forces, a state characterized by high mechanical polarity.
  • Our results support mechanical polarity as a candidate physical descriptor linking molecular adhesion kinetics to cell-scale migration stability.

Details worth keeping

by Haruna Tagawa, Daisuke Kanematsu, Asako Katsuma, Naoyuki Inagaki, Yonehiro Kanemura, Yuichi Sakumura Glioblastoma invasion critically limits therapeutic outcomes, yet the physical principles that govern directional cell migration remain poorly understood.

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