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Mikalayeva, V.

Publications and source records attributed to Mikalayeva, V..

2 recordsLinked to original sources

Mono-Ubiquitylation-Dependent Rap2 Activation Regulates Lamellipodia Dynamics During Cell Migration

Cell migration is a complex process hallmarked by front-to-back cell polarity that is established by the highly dynamic actin cytoskeleton. Branched actin polymerization creates a lamellipodia at the leading edge of the cell, while the contractile acto-myosin cytoskeleton is present at the lagging edge. Rap2, a Ras GTPase family member, has previously been reported to localize to the lamellipodia as a result of Rab40/CRL5 E3 ubiquitin ligase induced tri-mono-ubiquitylation. However, how Rap2 functions and how mono-ubiquitylation targets Rap2 to the lamellipodia remained unclear. Here, we demonstrate that Rap2 is recruited to retracting lamellipodia ruffles where it inhibits RhoA and regulates lamellipodia dynamics and facilitates cell migration. Furthermore, using a variety of genetic and pharmacological techniques, we show that tri-mono-ubiquitylation is required for GEF-dependent Rap2 activation, a necessary step for Rap2 targeting to lamellipodia membrane. As such, we demonstrate how this unique mono-ubiquitylation of Rap2 regulates lamellipodia actin dynamics during cell migration. SUMMARYMono-ubiquitylation is necessary for activity and localization of the Rap2 GTPase. Here, we report that Rap2 lamellipodia and membrane dwell time is facilitated by mono-ubiquitylation dependent GEF activation. Furthermore, we demonstrate that mono-ubiquitylated Rap2 regulates lamellipodia dynamics through inhibiting RhoA activity.

cell biology↗

Rab40 GTPases regulate AMBRA1-mediated transcription and cell migration

The Rab40 subfamily are unique small monomeric GTPases that form CRL5-based ubiquitin E3 ligase complex and regulate ubiquitylation of specific target proteins. Recent studies have shown that Rab40s play an important role in regulating cell migration, but the underlying mechanisms of Rab40/CRL5 complex function are still not fully understood. In this study we identified AMBRA1 as a novel binding partner of Rab40 GTPases and showed that this interaction mediates a bi-directional crosstalk between CRL4 and CRL5 E3 ligases. Importantly, we found that Rab40/CRL5 ubiquitylates AMBRA1, which does not result in AMBRA1 degradation, but instead it seems to induce AMBRA1-dependent regulation of gene transcription. The global transcriptional profiles identified by RNA-seq showed that AMBRA1 regulates transcription of genes related to cell adhesion and migration. Additionally, we have shown that AMBRA1-dependent transcription regulation does not require the enzymatic activity of AMBRA1/CRL4, and that Rab40-induced AMBRA1 ubiquitylation leads to dissociation of AMBRA1/CRL4 complex. Taken together, our findings reveal a novel function of Rab40/CRL5 complex as an important regulator for AMBRA1-dependent transcription of genes involved in cell migration.

molecular biology↗