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Updated: Aug 8, 2026

A High-throughput Cell Microarray Platform for Correlative Analysis of Cell Differentiation and Traction Forces
Published on: March 1, 2017
A new family of Cdc42 effector proteins, CEPs, function in fibroblast and epithelial cell shape changes
D S Hirsch1, D M Pirone, P D Burbelo
1Department of Oncology, Lombardi Cancer Center, Georgetown University Medical Center, Washington, DC 20007, USA.
Abstract:
Cdc42, a Rho GTPase, regulates the organization of the actin cytoskeleton by its interaction with several distinct families of downstream effector proteins. Here, we report the identification of four new Cdc42-binding proteins that, along with MSE55, constitute a new family of effector proteins. These molecules, designated CEPs, contain three regions of homology, including a Cdc42 binding domain and two unique domains called CI and CII. Experimentally, we have verified that CEP2 and CEP5 bind Cdc42. Expression of CEP2, CEP3, CEP4, and CEP5 in NIH-3T3 fibroblasts induced pseudopodia formation. Fibroblasts coexpressing dominant negative Cdc42 with CEP2 or expressing a Cdc42/Rac interactive binding domain mutant of CEP2 did not induce pseudopodia formation. In primary keratinocytes, CEP2- and CEP5-expressing cells showed reduced F-actin localization at the adherens junctions with an increase in thin stress fibers that extended the length of the cell body. Keratinocytes expressing CEPs also showed an altered vinculin distribution and a loss of E-cadherin from adherens junctions. Similar effects were observed in keratinocytes expressing constitutively active Cdc42, but were not seen with a Cdc42/Rac interactive binding domain mutant of CEP2. These results suggest that CEPs act downstream of Cdc42 to induce actin filament assembly leading to cell shape changes.
Insights
Researchers identified Cdc42 and associated effector proteins (CEPs) that regulate actin cytoskeleton organization. CEPs mediate Cdc42
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Cdc42, a Rho GTPase, is crucial for actin cytoskeleton organization.
- It interacts with downstream effector proteins to regulate cellular processes.
Purpose of the Study:
- To identify and characterize novel Cdc42 effector proteins.
- To elucidate the role of these new proteins in actin dynamics and cell morphology.
Main Methods:
- Identification of novel Cdc42-binding proteins.
- Expression studies in NIH-3T3 fibroblasts and primary keratinocytes.
- Analysis of actin cytoskeleton organization, cell shape changes, and protein localization.
Main Results:
- Four new Cdc42-binding proteins, designated CEPs, were identified, forming a new effector family.
- CEP expression induced pseudopodia formation in fibroblasts and altered actin organization in keratinocytes.
- CEP function is dependent on Cdc42 interaction, as dominant-negative Cdc42 or CEP mutants blocked these effects.
Conclusions:
- CEPs act downstream of Cdc42 to regulate actin filament assembly.
- CEPs play a significant role in mediating Cdc42-induced cell shape changes.
- These findings expand our understanding of Cdc42 signaling pathways.
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