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Updated: Apr 4, 2026

Analysis of Actomyosin Dynamics at Local Cellular and Tissue Scales Using Time-lapse Movies of Cultured Drosophila Egg Chambers
Published on: June 3, 2019
Steady-state epithelial apical flatness is characterized by MLCK morphodynamics and asynchronous Ca2+ oscillations,
Hao Wu1, Emerson Herrmann2, Jeanette Hyer1
1Cardiovascular Research Institute, University of California San Francisco 555 Mission Bay Blvd South, San Francisco, CA 94158.
None:
The canonical simple epithelium is a flat sheet-like tissue of horizontally packed cells. While the basal surface is delineated by the basement membrane of extracellular matrix (ECM), little is known about how a flat apical surface is maintained, or if apical/basal dynamics are coordinated. The current study tests the role of the apical domain to define mechanisms involved in maintaining a flat apical geometry in an epithelium. When the basal geometry is modulated, Madin-Darby Canine Kidney (MDCK) cells adjust their morphology to maintain an overall apical flatness of the confluent layer. Pharmacological and transgenic disruption of non-muscle myosin ATPase and MLCK activity results in an uneven apical structure and overall loss of the flat geometry typical of a confluent epithelium. Surprisingly, transgenic experimentation showed that forces maintaining individual MDCK cell flatness are cell-autonomous. Finally, Ca2+ imaging reveals an asynchronous calcium flux across a confluent epithelium. Our results highlight that apical/basal cellular surfaces may not be tightly coordinated, but rather independently regulated. This study provides a new paradigm for how apical flatness is regulated at steady state.
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