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Updated: May 27, 2026

Investigating the Function of Coronin A in the Early Starvation Response of Dictyostelium discoideum by Aggregation Assays
Published on: June 18, 2016
Multiple regulatory mechanisms for the Dictyostelium Roco protein GbpC
Arjan Kortholt1, Wouter N van Egmond, Katarzyna Plak
1Department of Cell Biochemistry, University of Groningen, Nijenborgh 7, 9747 AG Groningen, The Netherlands.
Abstract:
GbpC is a multidomain Roco protein in Dictyostelium, involved in transduction of intracellular cGMP that is produced by chemotactic signals. We have shown previously that cGMP binding to GbpC induces an intramolecular signaling cascade by activating subsequently the GEF, Ras, and kinase domains. In this study, we report on the cellular localization of GbpC. In resting cells, the protein is present in the cytoplasm, but GbpC rapidly translocates to the cell boundary upon stimulation with the chemoattractant cAMP. Also, during the formation of cell-cell streams and osmotic shock, the protein localizes toward the plasma membrane and actin cytoskeleton. The translocation upon cAMP stimulation occurs downstream of heterotrimeric G proteins but is independent of guanylyl cyclases and the previously identified cGMP-induced intramolecular signaling cascade in GbpC. Mutations in the GRAM domain of GbpC lead to disturbed membrane association and inactivation of GbpC function during chemotaxis in vivo. Furthermore, we show that the GRAM domain itself associates with cellular membranes and binds various phospholipids in vitro. Together, the results show that GbpC receives multiple input signals that are both required for functional activity in vivo. cAMP-stimulation induces a cGMP-dependent signaling cascade, leading to activation of kinase activity, and, independently, cAMP induces a GRAM-dependent translocation of GbpC toward the plasma membrane and cell cortex, where it may locally phosphorylate effector proteins, which are needed for proper biological activity.
Insights
Guanosine monophosphate-binding protein C (GbpC) translocates to the cell membrane upon cAMP stimulation, a process crucial for chemotaxis in Dictyostelium. This translocation, mediated by its GRAM domain, is independent of its internal signaling cascade.
Area of Science:
- Cell Biology
- Biochemistry
- Molecular Biology
Background:
- GbpC is a multidomain Roco protein in Dictyostelium involved in cyclic guanosine monophosphate (cGMP) signal transduction.
- Previous studies showed cGMP binding activates GbpC's GEF, Ras, and kinase domains via an intramolecular cascade.
Purpose of the Study:
- To investigate the cellular localization and regulation of GbpC in response to chemotactic signals.
- To elucidate the role of the GbpC GRAM domain in its localization and function.
Main Methods:
- Immunofluorescence microscopy to track GbpC localization in Dictyostelium cells.
- Biochemical assays to study GRAM domain interactions with phospholipids.
- Analysis of GbpC function in chemotaxis using mutant strains.
Main Results:
- GbpC translocates from the cytoplasm to the cell boundary upon cAMP stimulation.
- This translocation is downstream of G-proteins but independent of guanylyl cyclases and the cGMP-induced cascade.
- Mutations in the GRAM domain disrupt membrane association and GbpC function during chemotaxis.
- The GRAM domain binds phospholipids and associates with cellular membranes.
Conclusions:
- GbpC integrates multiple signals, including cGMP-dependent activation and GRAM domain-mediated membrane translocation.
- cAMP stimulation triggers both GbpC's internal signaling cascade and its relocation to the cell cortex.
- Membrane-associated GbpC may phosphorylate local effector proteins essential for chemotaxis.
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