Decoding EGFR ligand bias through an endocytic organelle platform
Jendrisek, G.; Mesa, D.; Freddi, S.; Miloro, G.; Tordonato, C.; Benvenuto, A. F.; Quarto, M.; Caputo, M.; Raimondi, A.; Caldieri, G.; Barbieri, E.; Pelicci, S.; Faretta, M.; Malabarba, M. G.; Chianese, D.; Begnozzi, F.; Pinton, P.; Bonora, M.; Di Fiore, P. P.; Sigismund, S.
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How growth factor receptors decode ligand identity into distinct cellular responses remains a fundamental question in cell signaling. Here, we identify a receptor-proximal mechanism that links ligand-specific EGFR activation to distinct endocytic and biological outputs. We show that EGF, but not TGF, selectively engages a RAC1-PLC{gamma}2-IP3R signaling axis that supports EGFR non-clathrin endocytosis (NCE). PLC{gamma}2, but not PLC{gamma}1, localizes to RTN3-dependent PM-ER contact sites, where it generates localized Ca{superscript 2} signals required for completion of NCE, mitochondrial activation and cell motility. This specificity requires the RAC-binding interface of PLC{gamma}2 and is associated with RAC1-dependent formation of CTxB-positive PM regions, indicating that spatial organization contributes to signaling specificity. TGF fails to efficiently assemble the EGFR-associated organelle platform and instead favors clathrin-dependent EGFR uptake, prolonged proliferative signaling, greater organoid yield, and reduced migration compared with EGF. Together, our findings identify the RAC1-PLC{gamma}2 axis as the key determinant that decodes EGFR ligand bias by coupling receptor trafficking to the metabolic program that supports cell migration.
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