Key cellular decisions, such as proliferation or growth arrest, typically occur at spatially defined locations within tissues. Loss of this spatial control is a hallmark of many diseases, including cancer. Yet, how these patterns are established is incompletely understood. Here, we report that physical and architectural features of a multicellular sheet inform cells about their proliferative capacity through mechanical regulation of YAP and TAZ, known mediators of Hippo signaling and organ growth. YAP/TAZ activity is confined to cells exposed to mechanical stresses, such as stretching, location at edges/curvatures contouring an epithelial sheet, or stiffness of the surrounding extracellular matrix. We identify the F-actin-capping/severing p...
The Hippo-YAP pathway regulates organ size by modulating cell proliferation and apoptosis. Yu et al....
Signalling from the extracellular matrix (ECM) is a fundamental cellular input that sustains prolife...
Mechanical strain regulates the development, organization, and function of multicellular tissues, bu...
SummaryKey cellular decisions, such as proliferation or growth arrest, typically occur at spatially ...
AbstractOrgan size is controlled by the concerted action of biochemical and physical processes. Alth...
Morphogenesis requires spatiotemporal regulation of cell shape and proliferation, both regulated by ...
Mechanical signals are important regulators of cellular proliferation and differentiation. Two trans...
Background & Aims In vitro, several data indicate that cell function can be regulated by the mechani...
Cells perceive their microenvironment not only through soluble signals but also through physical and...
Cells perceive their microenvironment not only through soluble signals but also through physical and...
Regulation of F-actin dynamics is key for multiple aspects of cell biology. Recent work indicates th...
In the last few years, YAP/TAZ emerged as powerful regulators of growth and tumor malignancy. YAP/TA...
How mammalian cells regulate their physical size is currently poorly understood, in part due to the ...
Mechanical tensions are usually generated during development at spatially defined regions within tis...
SummaryMechanical forces affect all the tissues of our bodies. Experiments conducted mainly on cultu...
The Hippo-YAP pathway regulates organ size by modulating cell proliferation and apoptosis. Yu et al....
Signalling from the extracellular matrix (ECM) is a fundamental cellular input that sustains prolife...
Mechanical strain regulates the development, organization, and function of multicellular tissues, bu...
SummaryKey cellular decisions, such as proliferation or growth arrest, typically occur at spatially ...
AbstractOrgan size is controlled by the concerted action of biochemical and physical processes. Alth...
Morphogenesis requires spatiotemporal regulation of cell shape and proliferation, both regulated by ...
Mechanical signals are important regulators of cellular proliferation and differentiation. Two trans...
Background & Aims In vitro, several data indicate that cell function can be regulated by the mechani...
Cells perceive their microenvironment not only through soluble signals but also through physical and...
Cells perceive their microenvironment not only through soluble signals but also through physical and...
Regulation of F-actin dynamics is key for multiple aspects of cell biology. Recent work indicates th...
In the last few years, YAP/TAZ emerged as powerful regulators of growth and tumor malignancy. YAP/TA...
How mammalian cells regulate their physical size is currently poorly understood, in part due to the ...
Mechanical tensions are usually generated during development at spatially defined regions within tis...
SummaryMechanical forces affect all the tissues of our bodies. Experiments conducted mainly on cultu...
The Hippo-YAP pathway regulates organ size by modulating cell proliferation and apoptosis. Yu et al....
Signalling from the extracellular matrix (ECM) is a fundamental cellular input that sustains prolife...
Mechanical strain regulates the development, organization, and function of multicellular tissues, bu...