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January 23, 2026Development2 citationsOpen Access

Cell divisions both challenge and refine tissue boundaries in the Drosophila embryo

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VCVeronica CastleUniversity of TorontoMMM. F. MilesWestern UniversityRPRafael Perez-VicenteUniversity of Toronto

Key Points

  • This research investigates how cell divisions affect tissue boundary formation and stability in the Drosophila embryo.
  • Mathematical modeling to predict effects of ectoderm cell divisions on mesectoderm-ectoderm boundary.
  • In vivo suppression of ectoderm cell divisions to assess boundary integrity.
  • Laser ablation and cell tracking to evaluate junctional tension and cell movement.
  • Suppressing ectoderm divisions prevented cell mixing across the mesectoderm-ectoderm boundary.
  • Inhibiting ectoderm divisions reduced boundary linearity.
  • Cell divisions decreased junctional tension and increased cell movement in the ectoderm.

Abstract

Tissue boundaries pattern embryos, suppress tumours, and provide directional cues. Tissue boundaries are associated with supracellular cables formed by actin and the molecular motor non-muscle myosin II. Actomyosin cables generate tension that prevents cell mixing. Whether other cellular behaviours contribute to the formation of linear interfaces between cell populations remains unclear. In the Drosophila embryo, an actomyosin-based boundary separates the ectoderm from the mesectoderm, a group of neuronal and glial progenitors. Mathematical modelling predicted that cell divisions in the ectoderm challenge the mesectoderm-ectoderm (ME) boundary. Consistent with this, suppressing ectoderm cell divisions in vivo prevented cell mixing across the ME boundary when actomyosin-based tension was lost. Our mathematical model also predicted that cell divisions sharpen the ME boundary by reducing tension and increasing cell motility in the ectoderm. We found that inhibiting ectoderm divisions in vivo reduced boundary linearity. Using laser ablation and cell tracking, we demonstrated that cell divisions reduced junctional tension and increased cell movement in the ectoderm. Together, our results reveal that cell divisions facilitate cellular rearrangements to increase fluidity in a novel mechanism for boundary refinement.

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Cite This Study

Castle et al. (2026) studied this question.

synapsesocial.com/papers/69731089c8125b09b0d203behttps://doi.org/10.1242/dev.204817
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