Cytochalasins Suppress 3D Migration of ECM-Embedded Tumoroids at Non-Toxic Concentrations

Klara Beslmüller1, Lieke J A van Megen1, Timo Struik1

  • 1Leiden Academic Centre for Drug Research, Faculty of Science, Leiden University, 2333 CC Leiden, The Netherlands.

Insights

Cofilin deletion and cytochalasin treatment inhibit cancer cell migration and metastasis. These findings identify cofilin and specific cytochalasins as potential migrastatic drug targets to suppress cancer spread.

Area of Science:

  • Cell Biology
  • Biophysics
  • Cancer Research

Background:

  • Cancer cell migration and metastasis are critical processes in cancer progression.
  • The F-actin cytoskeleton, particularly cell stiffness and dynamic remodeling, plays a key role in regulating cancer cell migration.
  • Migrastatic strategies aim to inhibit cancer invasion and spread.

Purpose of the Study:

  • To investigate the role of cofilin in cancer cell migration and metastasis.
  • To evaluate the efficacy and toxicity of F-actin-targeting drugs, specifically cytochalasins, in suppressing 3D cancer cell migration.

Main Methods:

  • Conditional knockout of cofilin in cancer cells.
  • 3D tumoroid culture models to assess cell invasion into the extracellular matrix.
  • Acoustic force spectroscopy to measure cell stiffness.
  • Evaluation of pharmacological inhibitors (cytochalasins) for their effects on 2D and 3D cell migration and toxicity.

Main Results:

  • Cofilin deletion prevented cancer cell migration from tumoroids into the extracellular matrix without affecting cell viability.
  • Cytochalasins B and D suppressed cancer cell escape from tumoroids and migration into the extracellular matrix at non-toxic concentrations in 3D cultures.
  • Non-toxic concentrations of cytochalasins reduced cell stiffness, as measured by acoustic force spectroscopy.

Conclusions:

  • Cofilin is a critical regulator of cancer cell migration and a potential target for migrastatic therapy.
  • Cytochalasins B and D demonstrate migrastatic potential by inhibiting 3D cancer cell migration and reducing cell stiffness at non-toxic doses.
  • These findings highlight cytochalasins as promising candidates for developing drugs to suppress metastatic spread.