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Rottner, K.

Publications and source records attributed to Rottner, K..

2 recordsLinked to original sources

Cell-substrate adhesion drives Scar/WAVE activation and phosphorylation, which controls pseudopod lifetime

The Scar/WAVE complex is the principal catalyst of pseudopod and lamellipod formation. Here we show that Scar/WAVEs proline-rich domain is polyphosphorylated after the complex is activated. Treatments that stop activation block phosphorylation in both Dictyostelium and mammalian cells. This implies that phosphorylation modulates pseudopods after they have been formed, rather than controlling whether a protrusion is initiated. Unexpectedly, activation-dependent phosphorylation is not promoted by chemotactic signalling, or by signal-dependent kinases such as ERKs, but is greatly stimulated by cell:substrate adhesion. Scar/WAVE that has been mutated to be either unphosphorylatable or phosphomimetic is activated normally, and rescues the phenotype of scar- cells, demonstrating that phosphorylation is dispensible for activation and actin regulation. However, pseudopods and patches of Scar/WAVE complex recruitment last substantially longer in unphosphorylatable mutants, altering cell polarisation and the efficiency of migration. We conclude that pseudopod engagement with substratum is more important than extracellular signals at regulating Scar/WAVEs activity, and that phosphorylation acts as a timer, restricting pseudopod lifetime by promoting Scar/WAVE turnover.

cell biology

RhoG and Cdc42 can contribute to Rac-dependent lamellipodia formation through WAVE Regulatory Complex-binding

Cell migration frequently involves the formation of lamellipodial protrusions, the initiation of which requires Rac GTPases signalling to heteropentameric WAVE regulatory complex (WRC). While Rac-related RhoG and Cdc42 can potently stimulate lamellipodium formation, so far presumed to occur by upstream signalling to Rac activation, we show here that the latter can be bypassed by RhoG and Cdc42 given that WRC has been artificially activated. This evidence arises from generation of B16-F1 cells simultaneously lacking both Rac GTPases and WRC, followed by reconstitution of lamellipodia formation with specific Rho-GTPase and differentially active WRC variant combinations. We conclude that formation of canonical lamellipodia requires WRC activation through Rac, but can possibly be tuned, in addition, by WRC interactions with RhoG and Cdc42.

cell biology