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Lopez-Gay, J.

Publications and source records attributed to Lopez-Gay, J..

3 recordsLinked to original sources

Differential turnover of apicobasal regulators drives emergent mechano-response and shape homeostasis

Epithelial cell shape plays a fundamental role in tissue dynamics. Numerous studies have established how cells drastically change their shape to promote epithelial tissue morphogenesis. However, the mechanisms enabling cells to maintain their shape remain far less understood. Here, leveraging live imaging in Drosophila epithelial tissue and theoretical modeling, we identify an emergent mechano-chemical feedback that ensures junction length and cell shape stability, without requiring a dedicated molecular force sensor. We find that an increase in junction length is associated with a passive dilution of E-Cadherin, followed by an increase in Myosin-II-dependent contractility that reduces junction length. Theoretically, we show that this regulation of junction length generically emerges when negative and positive regulators of contractility have distinct kinetics. Experiments confirm that E-Cadherin acts as a negative regulator with slow turnover. Mechanistically, local dilution of E-Cadherin passively lifts an inhibition on lateral apicobasal polarity components, allowing the RhoGEF Cyst -- with its fast turnover -- to accumulate and increase contractility. Perturbing this feedback results in aberrant cell junction and shape regulation, thereby compromising the ability of the tissue to buffer local mechanical fluctuations and global mechanical stresses. Altogether, we propose that differential turnover between apical and lateral polarity complexes provides an emergent mechano-response for junction length and cell shape homeostasis.

biophysics↗

Spatial inhibition of RhoA by RhoGAP15B promotes protrusive activity during collective cell migration

The Rho family GTPases RhoA, Rac1 and Cdc42 are well established regulators of collective migration by driving the formation of cellular protrusions and by regulating actomyosin contraction and adhesion. However, how their activation and inhibition are spatially and temporally coordinated remains unclear. Using GFP knock-in lines, we systematically characterized the localization patterns of all Drosophila RhoGEFs (activators) and RhoGAPs (inhibitors) in border cells, an in vivo model of collective migration. We have further combined RNAi screening with GFP-based validation of depletion efficiency to assess the functional significance of those RhoGEF/GAPs expressed in border cells. This identified RhoGAP15B as a localized inhibitor of RhoA activity at the border cell cortex. RhoGAP15B regulates cluster morphology and is enriched at the leading cell front, where it restrains actomyosin contractility to promote protrusive behavior. Our findings reveal RhoGAP15B as a key spatial RhoA regulator and highlight that patterned RhoGAP and RhoGEF activities are essential for coordinating cortical contraction and protrusion dynamics during collective migration.

cell biology↗

Systematic characterization of Drosophila RhoGEF/GAP localizations uncovers regulators of mechanosensing and junction formation during epithelial cell division.

Cell proliferation is central to epithelial tissue development, repair and homeostasis. During cell division, small RhoGTPases control both actomyosin dynamics and cell-cell junction remodelling to faithfully segregate the duplicated genome while maintaining tissue polarity and integrity. To decipher the mechanisms of RhoGTPases spatiotemporal regulation during epithelial cell division, we generated a transgenic fluorescently tagged library for Drosophila Rho Guanine exchange factors (GEF) and GTPase activating proteins (GAP), and systematically characterized their endogenous distributions by time- lapse microscopy. Thereby, we unveiled candidate regulators of the interplay between actomyosin and junctional dynamics during epithelial cell division. Building on these findings, we uncovered that during cytokinesis, Cysts and RhoGEF4 play sequential roles in mechanosensing and de novo junction formation, respectively. We foresee that the RhoGEF/GAP library will be a key resource to understand the broad range of biological processes regulated by RhoGTPases.

developmental biology↗