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Gierse, C.

Publications and source records attributed to Gierse, C..

3 recordsLinked to original sources

Rnd3 regulates cell morphodynamics by spatial restriction of cell contraction signaling

Cell migration is enabled by dynamic changes in cell shape, which are controlled by spatio-temporal activity patterns of the Rho GTPases Rac1 and RhoA. Classical models proposed that these activity patterns are generated by mutual inhibition between the front signal Rac1 and the back signal RhoA, leading to opposing gradients that define the direction of cell migration. However, direct measurements of signal crosstalk showed that Rac1 can activate RhoA, which is incompatible with mutual inhibition. Furthermore, opposing Rac1 and RhoA gradients generated by mutual inhibition would need to overlap at least partially in the cell center. In contrast, both Rac and Rho activities were largely absent in the cell center, and both found to be highly localized near the cell edge in the cell periphery. Here, we hypothesized that these spatio-temporal Rho GTPase activity patterns are generated by the mutual inhibition between RhoA and the unconventional Rho family member Rnd3. Using rapid, optogenetic and chemical perturbations, we confirmed this mutual inhibitory crosstalk. However, we found that this crosstalk does not lead to the expected mutually exclusive spatio-temporal patterns of Rnd3 activity and cell retraction in spontaneously migrating, unperturbed cells. Instead, Rnd3 activity was even slightly elevated during cell retraction and was surprisingly depleted during cell protrusion. We discovered that this depletion is caused by the inhibition of Rnd3 by Rac1 activity, and that this newly identified inhibition is much more pronounced compared to the inhibition of Rnd3 by Rho. By combining rapid optogenetic perturbations with pharmacological manipulations, we found that Rac1 inhibition by Rnd3 is mediated by p21-activated kinases (PAKs). Investigations into the function of Rnd3 showed that it is required for the tight spatio-temporal regulation of the cell contraction/retraction signal Rho, and that it prevents ectopic, highly dynamic, spontaneous Rho activity pulses within the whole cell attachment area. Interestingly, protrusion-retraction dynamics were also severely inhibited in the absence of Rnd3, and its overexpression stimulated this process. Taken together, we show that Rac and not Rho acts as the major Rnd3 inhibitor in cells. Furthermore, our findings support a mechanism, in which Rnd3 acts as a global inhibitor of Rho that spatially restricts Rho activity to regions near the edge of migrating cells.

cell biology↗

The ROCK1 PH domain interacts with active Rho to transduce cell contraction signals

The spatio-temporal regulation of cell contraction is crucial for numerous biological processes. In particular, contraction pulses in the cell cortex contribute to mechanotransduction and tissue rearrangements during embryonic development. We previously identified a signaling network that generates mechanosensitive contraction pulses in adherent mammalian cells via positive and negative feedback regulation of the small GTPase RhoA. Our investigations into the molecular mechanism of this process revealed surprising observations that challenge prevailing models of ROCK1 regulation. In particular, we identified a novel RhoA binding site in the ROCK1 PHC1 tandem domain that is sufficient for dynamic recruitment leading to increased Rho activity within subcellular regions of the cell cortex. AlphaFold-guided mutagenesis supports a direct interaction between these molecules. Functional investigations show that the PHC1 domain is required for efficient recruitment to active Rho, and that it plays a role in the transduction of Rho activity via ROCK1 to Myosin II activation. Based on the newly identified Rho binding site at the C-terminus of ROCK1, we propose a model for ROCK1 activation, which can resolve inconsistencies between previous biochemical and structural studies.

cell biology↗

Non-muscle Myosin II acts as a negative feedback mediator to control cell contraction dynamics

Local cell contraction dynamics play a crucial role in tissue and cell morphogenesis. Contractions near the cell edge drive highly dynamic cell shape changes during cell migration and contraction pulses in central cell attachment areas are involved in mechanotransduction. Previously, we identified a signal network in adherent mammalian cells, that generates mechanosensitive contraction pulses, in which the cell contraction regulator Rho is controlled by fast positive feedback amplification via GEF-H1, and by a slow negative feedback that depends on actomyosin activity. However, the precise mechanism of this negative feedback in adherent cells, in particular if it is mediated via actin or Myosin-based components, was still unclear. Here, using numerical simulations of this system, we predicted that the cell contraction signal network dynamics are strongly inhibited both by inhibition and by constitutive activation of the actomyosin component Myosin-II. We confirmed these predictions experimentally by direct inhibition of Myosin-II and by activation via constitutively active ROCK1. Furthermore, constitutive activation of Myosin-II leads to an accumulation of Myosin-II next to the nuclei which spatially correlated with a corresponding shift of Rho activity dynamics from the cell center to the cell edge, showing that constant Myosin activation can spatially restrict cell contraction dynamics. Finally, light-induced rapid recruitment of ROCK1 to the plasma membrane strongly activated and recruited Myosin-II, and at the same time depleted Actin and inhibited Rho activity at the plasma membrane. We conclude that negative feedback in the cell contraction signal network of adherent mammalian cells is mediated by Myosin-II, and that actin does not act as the predominant inhibitor in this system.

cell biology↗