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Biology subjects

Grudtsyna, V.

Publications and source records attributed to Grudtsyna, V..

4 recordsLinked to original sources

Mechanical memory of confinement pressure governs expansion size in epithelial monolayers

Epithelial tissues undergo rapid expansion during development, repair, and morphogenesis, yet how tissue-scale growth is coordinated to re-establish homeostasis remains unclear. Here, we show that large epithelial monolayers confined at a wide range of initial densities and mechanochemical states robustly converge to the same final size and density upon release, despite differences in initial cell size, YAP activity, and cell number dynamics. To investigate the underlying mechanism, we combined quantitative experiments with a mechanochemical agent-based model in which mechanical pressure arising from confinement acts as a tissue-scale signal that modulates intracellular cell-cycle activity over time. Using this framework, we show that transient mechanical relaxation during confinement selectively elevates cell-cycle activity in higher-density tissues at the time of release, accelerating early expansion without disrupting final homeostatic outcomes. Together, these results reveal how epithelial tissues coordinate collective growth and robustly restore homeostasis during expansion. SignificanceMechanisms that re-establish homeostasis and coordinate cell proliferation in expanding epithelial tissues such as during development and tissue regeneration remain poorly understood. Here, we used a large 2D epithelial expansion model and agent-based modelling to demonstrate history-dependent regulation of colony growth, mediated by pressure sensing. We find that, typically, equilibration of pressure during confinement just before the onset of expansion results in all expanding tissues of a given starting size reaching a target density and final size independent of starting cell numbers. By transiently reducing actomyosin contractility during confinement, we selectively accelerate the expansion of high-density tissues. Our findings provide key insights into physical mechanisms that govern organ development and tissue repair.

cell biology↗

Packing-Driven Mechanotransduction: local crowding overrides adhesion and stiffness cues for YAP Activation in Cellular Collectives

The regulation of mechanotransduction is crucial for various cellular processes, including stem cell differentiation, wound healing, and cancer progression. While the activation of mechanotransduction has been extensively studied in single cells, it remains unclear whether similar mechanisms extend to mechanotransduction in multicellular collectives. Here, by focusing on Yes-associated protein (YAP), known as the master regulator of mechanotransduction, we reveal that the local packing fraction of cells acts as the primary determinant of YAP activation in cell collectives. We further show that local packing fraction modulates the isotropic stress landscape, with sparse regions experiencing large stress fluctuations and dense regions displaying stress equilibration. Remarkably, this packing fraction-dependent regulation persists even under conditions of disrupted force transmission through cell-cell and cell-substrate adhesion, suggesting a robust and conserved relation between YAP activation and local packing fraction in cell collectives. In particular, we show that local packing fraction-dependent activation of YAP in cell collectives is independent of substrate stiffness, E-cadherin expression, and myosin contractility, in stark contrast to YAP activation in single cells. Our results thus offer a new perspective on mechanotransduction, highlighting the critical role of local packing fraction of cells in dictating YAP dynamics within multicellular contexts. These insights have significant implications for tissue engineering and understanding tumour microenvironments, where cellular het-erogeneity often drives functional outcomes.

biophysics↗

Quantifying the shape of cells - from Minkowski tensors to p-atic order

P-atic liquid crystal theories offer new perspectives on how cells self-organize and respond to mechanical cues. Understanding and quantifying the underlying orientational orders is therefore essential for unraveling the physical mechanisms that govern tissue dynamics. Due to the deformability of cells this requires quantifying their shape. We introduce rigorous mathematical tools and a reliable framework for such shape analysis. Applying this to segmented cells in MDCK monolayers and computational approaches for active vertex models and multiphase field models allows to demonstrate independence of shape measures and the presence of various p-atic orders at the same time. This challenges previous findings and opens new pathways for understanding the role of orientational symmetries and p-atic liquid crystal theories in tissue mechanics and development.

biophysics↗

Extracellular matrix sensing via modulation of orientational order of integrins and F-actin in focal adhesions

Specificity of cellular responses to distinct cues from the extracellular matrix (ECM) requires precise and sensitive decoding of information from the cell surface. However, how known mechanisms of mechanosensing such as force dependent catch bonds and conformational changes in focal adhesion (FA) proteins can confer this sensitivity is not known. Using a combination of polarization microscopy and computational modeling, here we identify regulation of orientational order or molecular co-alignment of FA proteins as a mechanism able to precisely tune cell sensitivity to the ECM. We find that V integrins and F-actin in FAs show changes in orientational order in an ECM-mediated integrin activation dependent manner. This magnitude of orientational order is sensitive to changes in ECM density but independent of myosin-II activity though actomyosin contractility can further fine-tune it. A molecular clutch model for integrin binding ECM ligands demonstrates that orientational order of integrin-ECM binding and catch bonds tune cellular sensitivity to ECM density. This mechanism is also able to decouple ECM density changes from changes in ECM stiffness thus also contributing to specificity. Taken together, our results suggest relative geometric organization of FA components as an important regulator of mechanotransduction.

cell biology↗