This work defines the requirements for cell-substrate adhesion in cultured human cells using orthogonal, large-scale functional genetic approaches and identifies established and uncharacterized regulators of adhesion, including genes involved in mitosis, focal adhesions, actin regulation, and membrane trafficking.
Abstract
Cellular adhesion is critical for tissue organization and integrity, but the full complement of proteins required for proper adhesion remains unresolved. Here, we define the requirements for cell-substrate adhesion in cultured human cells using orthogonal, large-scale functional genetic approaches. Using mechanical assays to test the maintenance (“shake-off”) or formation of adhesion and parallel large-scale assays of cell morphology, we identify dozens of gene targets with roles in adhesion. Our analyses reveal dynamic requirements for adhesion across timepoints and cell lines. We additionally conduct targeted downstream mechanistic analyses to resolve the molecular basis for altered adhesion. Collectively, we identify established and uncharacterized regulators of adhesion, including genes involved in mitosis, focal adhesions, actin regulation, and membrane trafficking. Unexpectedly, we find that cells that fail cytokinesis display impaired adhesion, with strongly altered actin organization and nuclear dynamics. Together, this work provides a comprehensive view of the genetic requirements for cell-substrate adhesion.
This work shows that SWAP70 is rapidly recruited to regions of intense actin remodeling at the synaptic interface, where it forms a stable network with slower turnover than filamentous actin, indicating that SWAP70 cooperates with the linear actin filament to help stabilize the cortical cytoskeleton.
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The cell membrane hosts initial interactions between receptors and ligands for subsequent cellular functions. However, how the membrane spatiotemporally regulates binding mechanics in living cells remains unclear. Using magnetic tweezers, we developed a single-molecule platform to reveal that dissociation forces of i...
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Leukocyte adhesion and migration are fundamental processes in immune responses, relying on the precise spatiotemporal regulation of integrin-mediated signaling. Although paxillin is known to function as a crucial adaptor protein in adhesion complexes, how its expression is regulated during dynamic cell motility remai...
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Directional cell migration requires cells to sense extracellular cues and coordinate adhesion, cytoskeletal remodelling and polarity, yet the molecular regulators that integrate these events remain incompletely defined. PTTG1-binding factor (PBF/PTTG1IP) is a transmembrane glycoprotein extensively characterised in path...