Optogenetic control of PLC-γ1 activity polarizes cell motility
Appalabhotla, R.; Siesser, P. F.; Truscott, H.; Hajicek, N.; Sondek, J.; Bear, J. E.; Haugh, J. M.
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Phospholipase C-{gamma}1 (PLC-{gamma}1) signaling is required for mesenchymal chemotaxis, but is it sufficient to bias motility? PLC-{gamma}1 enzyme activity is basally autoinhibited, and light-controlled membrane recruitment of wild-type PLC-{gamma}1 (OptoPLC-{gamma}1) in Plcg1-null fibroblasts does not trigger lipid hydrolysis, complicating efforts to isolate its contribution. Utilizing cancer-associated mutations to investigate the regulatory logic of PLC-{gamma}1, we demonstrate that a hallmark of enzyme activity, phosphorylated Tyr783 (pTyr783), is not a proxy for activity level, but is rather a marker of dysregulated autoinhibition. Accordingly, OptoPLC-{gamma}1 with a deregulating mutation (P867R, S345F, or D1165H) exhibits elevated phosphorylation, and membrane localization of such is sufficient to activate substrate hydrolysis and concomitant motility responses. In particular, local recruitment of OptoPLC-{gamma}1 S345F polarizes cell motility and migration on demand. This response is spatially dose-sensitive and only partially reduced by blocking canonical PLC-{gamma}1 signaling yet is lipase-dependent. Our findings reframe the interpretation of PLC-{gamma}1 regulation and demonstrate that local activation of PLC-{gamma}1 is sufficient to direct cell motility.
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